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<front>
<journal-meta>
<journal-id journal-id-type="publisher-id">Front. Mar. Sci.</journal-id>
<journal-title>Frontiers in Marine Science</journal-title>
<abbrev-journal-title abbrev-type="pubmed">Front. Mar. Sci.</abbrev-journal-title>
<issn pub-type="epub">2296-7745</issn>
<publisher>
<publisher-name>Frontiers Media S.A.</publisher-name>
</publisher>
</journal-meta>
<article-meta>
<article-id pub-id-type="doi">10.3389/fmars.2017.00161</article-id>
<article-categories>
<subj-group subj-group-type="heading">
<subject>Marine Science</subject>
<subj-group>
<subject>Original Research</subject>
</subj-group>
</subj-group>
</article-categories>
<title-group>
<article-title>Net Community Metabolism and Seawater Carbonate Chemistry Scale Non-intuitively with Coral Cover</article-title>
</title-group>
<contrib-group>
<contrib contrib-type="author" corresp="yes">
<name><surname>Page</surname> <given-names>Heather N.</given-names></name>
<xref ref-type="aff" rid="aff1"><sup>1</sup></xref>
<xref ref-type="author-notes" rid="fn001"><sup>&#x0002A;</sup></xref>
<uri xlink:href="http://loop.frontiersin.org/people/406177/overview"/>
</contrib>
<contrib contrib-type="author">
<name><surname>Courtney</surname> <given-names>Travis A.</given-names></name>
<xref ref-type="aff" rid="aff1"><sup>1</sup></xref>
<uri xlink:href="http://loop.frontiersin.org/people/353053/overview"/>
</contrib>
<contrib contrib-type="author">
<name><surname>Collins</surname> <given-names>Andrew</given-names></name>
<xref ref-type="aff" rid="aff2"><sup>2</sup></xref>
</contrib>
<contrib contrib-type="author">
<name><surname>De Carlo</surname> <given-names>Eric H.</given-names></name>
<xref ref-type="aff" rid="aff3"><sup>3</sup></xref>
<uri xlink:href="http://loop.frontiersin.org/people/434011/overview"/>
</contrib>
<contrib contrib-type="author">
<name><surname>Andersson</surname> <given-names>Andreas J.</given-names></name>
<xref ref-type="aff" rid="aff1"><sup>1</sup></xref>
<uri xlink:href="http://loop.frontiersin.org/people/234431/overview"/>
</contrib>
</contrib-group>
<aff id="aff1"><sup>1</sup><institution>Scripps Institution of Oceanography, University of California, San Diego</institution> <country>San Diego, CA, United States</country></aff>
<aff id="aff2"><sup>2</sup><institution>Pacific Marine Environmental Laboratory, National Oceanic and Atmospheric Administration</institution> <country>Seattle, WA, United States</country></aff>
<aff id="aff3"><sup>3</sup><institution>Department of Oceanography, University of Hawaii at Manoa</institution> <country>Honolulu, HI, United States</country></aff>
<author-notes>
<fn fn-type="edited-by"><p>Edited by: Hajime Kayanne, University of Tokyo, Japan</p></fn>
<fn fn-type="edited-by"><p>Reviewed by: Atsushi Watanabe, Tokyo Institute of Technology, Japan; Emma Camp, University of Technology, Sydney, Australia</p></fn>
<fn fn-type="corresp" id="fn001"><p>&#x0002A;Correspondence: Heather N. Page <email>hnpage&#x00040;ucsd.edu</email></p></fn>
<fn fn-type="other" id="fn002"><p>This article was submitted to Coral Reef Research, a section of the journal Frontiers in Marine Science</p></fn></author-notes>
<pub-date pub-type="epub">
<day>30</day>
<month>05</month>
<year>2017</year>
</pub-date>
<pub-date pub-type="collection">
<year>2017</year>
</pub-date>
<volume>4</volume>
<elocation-id>161</elocation-id>
<history>
<date date-type="received">
<day>15</day>
<month>01</month>
<year>2017</year>
</date>
<date date-type="accepted">
<day>12</day>
<month>05</month>
<year>2017</year>
</date>
</history>
<permissions>
<copyright-statement>Copyright &#x000A9; 2017 Page, Courtney, Collins, De Carlo and Andersson.</copyright-statement>
<copyright-year>2017</copyright-year>
<copyright-holder>Page, Courtney, Collins, De Carlo and Andersson</copyright-holder>
<license xlink:href="http://creativecommons.org/licenses/by/4.0/"><p>This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) or licensor are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.</p></license>
</permissions>
<abstract>
<p>Coral cover and reef health have been declining globally as reefs face local and global stressors including higher temperature and ocean acidification (OA). Ocean warming and acidification will alter rates of benthic reef metabolism (i.e., primary production, respiration, calcification, and CaCO<sub>3</sub> dissolution), but our understanding of community and ecosystem level responses is limited in terms of functional, spatial, and temporal scales. Furthermore, dramatic changes in coral cover and benthic metabolism could alter seawater carbonate chemistry on coral reefs, locally alleviating or exacerbating OA. This study examines how benthic metabolic rates scale with changing coral cover (0&#x02013;100%), and the subsequent influence of these coral communities on seawater carbonate chemistry based on mesocosm experiments in Bermuda and Hawaii. In Bermuda, no significant differences in benthic metabolism or seawater carbonate chemistry were observed for low (40%) and high (80%) coral cover due to large variability within treatments. In contrast, significant differences were detected between treatments in Hawaii with benthic metabolic rates increasing with increasing coral cover. Observed increases in daily net community calcification and nighttime net respiration scaled proportionally with coral cover. This was not true for daytime net community organic carbon production rates, which increased the most between 0 and 20% coral cover and then less so between 20 and 100%. Consequently, diel variability in seawater carbonate chemistry increased with increasing coral cover, but absolute values of pH, &#x003A9;<sub>a</sub>, and pCO<sub>2</sub> were not significantly different during daytime. To place the results of the mesocosm experiments into a broader context, <italic>in situ</italic> seawater carbon dioxide (CO<sub>2</sub>) at three reef sites in Bermuda and Hawaii were also evaluated; reefs with higher coral cover experienced a greater range of diel CO<sub>2</sub> levels, complementing the mesocosm results. The results from this study highlight the need to consider the natural complexity of reefs and additional biological and physical factors that influence seawater carbonate chemistry on larger spatial and longer temporal scales. Coordinated efforts combining various research approaches (e.g., experiments, field studies, and models) will be required to better understand how benthic metabolism integrates across functional, spatial, and temporal scales, and for making predictions on how coral reefs will respond to climate change.</p>
</abstract>
<kwd-group>
<kwd>coral reef</kwd>
<kwd>metabolism</kwd>
<kwd>carbon chemistry</kwd>
<kwd>ocean acidification</kwd>
<kwd>coral cover</kwd>
</kwd-group>
<contract-num rid="cn001">OCE 09-28406</contract-num>
<contract-num rid="cn001">OCE 12-55042</contract-num>
<contract-num rid="cn002">NA14OAR4170071</contract-num>
<contract-sponsor id="cn001">National Science Foundation<named-content content-type="fundref-id">10.13039/100000001</named-content></contract-sponsor>
<contract-sponsor id="cn002">National Oceanic and Atmospheric Administration<named-content content-type="fundref-id">10.13039/100000192</named-content></contract-sponsor>
<counts>
<fig-count count="8"/>
<table-count count="2"/>
<equation-count count="3"/>
<ref-count count="99"/>
<page-count count="17"/>
<word-count count="12859"/>
</counts>
</article-meta>
</front>
<body>
<sec sec-type="intro" id="s1">
<title>Introduction</title>
<p>Coral reefs are one of the most diverse ecosystems in the world and provide numerous ecosystem goods and services including habitat provision, shoreline protection, nutrition, medicinal compounds, and monetary revenue from fisheries and tourism (Moberg and Folke, <xref ref-type="bibr" rid="B77">1999</xref>; Costanza et al., <xref ref-type="bibr" rid="B25">2014</xref>). The total economic valuation of the services provided by coral reefs has been estimated at several billions of U.S. dollars per year (de Groot et al., <xref ref-type="bibr" rid="B31">2012</xref>; Costanza et al., <xref ref-type="bibr" rid="B25">2014</xref>). In recent decades, the function of worldwide coral reefs has changed drastically owing to shifts in community structure with declines in coral cover and increases in turf and fleshy macroalgae (Wilkinson, <xref ref-type="bibr" rid="B99">2008</xref>; Costanza et al., <xref ref-type="bibr" rid="B25">2014</xref>; Chen et al., <xref ref-type="bibr" rid="B21">2015</xref>; Bruno and Valdivia, <xref ref-type="bibr" rid="B19">2016</xref>). In the Indo-Pacific region during 1980-1983, the majority of surveyed coral reefs had 20&#x02013;50% coral cover with some reefs having up to 100% coral cover. In contrast, in 2003, the highest coral cover reported for this region was 70% with most reefs having less than 30% coral cover (Bruno and Selig, <xref ref-type="bibr" rid="B18">2007</xref>). Similarly, reefs in the Caribbean have experienced massive declines in coral cover from an average of 50% in the mid-1970s to 10% now (Gardner et al., <xref ref-type="bibr" rid="B44">2003</xref>).</p>
<p>The global trend of decreasing coral cover has been attributed to both local and global factors including disease outbreaks (Harvell et al., <xref ref-type="bibr" rid="B47">1999</xref>), overfishing (Hughes et al., <xref ref-type="bibr" rid="B54">2007</xref>), nutrient and sediment pollution (Koop et al., <xref ref-type="bibr" rid="B64">2001</xref>; Szmant, <xref ref-type="bibr" rid="B92">2002</xref>), storm damage, and climate change (Hoegh-Guldberg et al., <xref ref-type="bibr" rid="B50">2007</xref>; Buddemeier et al., <xref ref-type="bibr" rid="B20">2008</xref>; De&#x00027;ath et al., <xref ref-type="bibr" rid="B29">2012</xref>; Bruno and Valdivia, <xref ref-type="bibr" rid="B19">2016</xref>). The major climate change concerns are prolonged periods of elevated seawater temperature, which can lead to mass coral bleaching events (Glynn, <xref ref-type="bibr" rid="B46">1993</xref>; Brown, <xref ref-type="bibr" rid="B16">1997</xref>; Hoegh-Guldberg, <xref ref-type="bibr" rid="B49">1999</xref>; Baker et al., <xref ref-type="bibr" rid="B12">2008</xref>; Rodgers et al., <xref ref-type="bibr" rid="B83">2015</xref>), and ocean acidification (OA), i.e., a reduction in seawater pH and saturation state with respect to the calcium carbonate mineral aragonite (&#x003A9;<sub><italic>a</italic></sub>) resulting from oceanic uptake of anthropogenic CO<sub>2</sub>. It has been hypothesized that OA could cause reefs to shift from states of net accretion to states of net calcium carbonate (CaCO<sub>3</sub>) dissolution and erosion (Kleypas and Yates, <xref ref-type="bibr" rid="B63">2009</xref>; Silverman et al., <xref ref-type="bibr" rid="B87">2009</xref>; Eyre et al., <xref ref-type="bibr" rid="B40">2014</xref>; Enochs et al., <xref ref-type="bibr" rid="B38">2016</xref>).</p>
<p>The potential response of corals and coral reef community metabolism (i.e., primary production, respiration, calcification, and CaCO<sub>3</sub> dissolution) to ocean warming and acidification has been studied extensively in laboratory and mesocosm experiments. Coral calcification rates are typically reduced when exposed to low seawater pH and &#x003A9;<sub>a</sub> (Marubini et al., <xref ref-type="bibr" rid="B74">2003</xref>; Ohde and Hossain, <xref ref-type="bibr" rid="B79">2004</xref>; Anthony et al., <xref ref-type="bibr" rid="B10">2008</xref>; Holcomb et al., <xref ref-type="bibr" rid="B52">2010</xref>; Comeau et al., <xref ref-type="bibr" rid="B24">2013</xref>; Horvath et al., <xref ref-type="bibr" rid="B53">2016</xref>), which also has been observed for coral communities and rates of net community calcification (NCC &#x0003D; gross calcification &#x02013; gross CaCO<sub>3</sub> dissolution) (e.g., Langdon et al., <xref ref-type="bibr" rid="B67">2000</xref>; Leclerq et al., <xref ref-type="bibr" rid="B68">2000</xref>; Andersson et al., <xref ref-type="bibr" rid="B4">2009</xref>; Anthony et al., <xref ref-type="bibr" rid="B8">2013</xref>). Similarly, relatively modest warming above summer maximum temperatures has been shown to affect coral skeletal growth and calcification negatively, although small increases in seawater temperature have been observed to increase coral calcification rates (Jokiel and Coles, <xref ref-type="bibr" rid="B55">1990</xref>; Marshall and Clode, <xref ref-type="bibr" rid="B73">2004</xref>; Bahr et al., <xref ref-type="bibr" rid="B11">2016</xref>). In general, coral primary production and net community organic carbon production (NCP &#x0003D; primary production &#x02013; autotrophic and heterotrophic respiration) decrease under elevated seawater temperatures (Coles and Jokiel, <xref ref-type="bibr" rid="B23">1977</xref>; Brown, <xref ref-type="bibr" rid="B16">1997</xref>) due to increasing rates of respiration, but the response of these processes to OA is less clear (Andersson et al., <xref ref-type="bibr" rid="B6">2011</xref>). Langdon and Atkinson (<xref ref-type="bibr" rid="B65">2005</xref>) observed increased NCP for coral communities exposed to high pCO<sub>2</sub> and low pH seawater in flume experiments, but other experiments have reported a decrease or no effect on NCP under similar conditions (e.g., Anthony et al., <xref ref-type="bibr" rid="B8">2013</xref>; Page et al., <xref ref-type="bibr" rid="B80">2016</xref>). However, temperature and/or OA induced coral bleaching generally results in a reduction in NCP owing to decreased photosynthesis and increased respiration (Anthony et al., <xref ref-type="bibr" rid="B10">2008</xref>; Crawley et al., <xref ref-type="bibr" rid="B27">2010</xref>). Concurrent with the effects of warming and OA on coral reef metabolic processes, decreasing coral cover will also affect these processes. To date, this has received relatively little attention. As a result of decreasing coral cover, metabolic rates could change in non-intuitive ways because of changing resource availability, flow regime, boundary layer thickness, and intra- and inter specific competition (Lesser et al., <xref ref-type="bibr" rid="B69">1994</xref>; Tanner, <xref ref-type="bibr" rid="B93">1995</xref>; Ferrier-Pag&#x000E8;s et al., <xref ref-type="bibr" rid="B43">2003</xref>; Evensen and Edmunds, <xref ref-type="bibr" rid="B39">2016</xref>).</p>
<p>Understanding how coral reef metabolism will change in response to decreasing coral cover and ocean warming and acidification is critical because it relates to a reef&#x00027;s ability to accrete CaCO<sub>3</sub> and its ability to locally alleviate or exacerbate OA (Anthony et al., <xref ref-type="bibr" rid="B9">2011</xref>; Kleypas et al., <xref ref-type="bibr" rid="B62">2011</xref>; Jury et al., <xref ref-type="bibr" rid="B59">2013</xref>; Andersson et al., <xref ref-type="bibr" rid="B7">2014</xref>; Page et al., <xref ref-type="bibr" rid="B80">2016</xref>). Coral reef metabolism can have a significant influence on the local seawater carbonate chemistry (Bates, <xref ref-type="bibr" rid="B13">2002</xref>; Bates et al., <xref ref-type="bibr" rid="B14">2010</xref>; Hofmann et al., <xref ref-type="bibr" rid="B51">2011</xref>; Andersson and Mackenzie, <xref ref-type="bibr" rid="B5">2012</xref>; Shaw et al., <xref ref-type="bibr" rid="B86">2012</xref>; Drupp et al., <xref ref-type="bibr" rid="B36">2013</xref>), and diel and seasonal variations in coral reef CO<sub>2</sub> parameters (e.g., pCO<sub>2</sub>, pH, and &#x003A9;<sub>a</sub>) are much greater than in the open ocean. Many reefs may periodically already experience seawater pCO<sub>2</sub>, pH, and &#x003A9;<sub>a</sub> levels predicted to occur in the open ocean by the end of the century (Andersson and Mackenzie, <xref ref-type="bibr" rid="B5">2012</xref>; Shaw et al., <xref ref-type="bibr" rid="B86">2012</xref>; Drupp et al., <xref ref-type="bibr" rid="B36">2013</xref>; Manzello et al., <xref ref-type="bibr" rid="B72">2014</xref>; Albright et al., <xref ref-type="bibr" rid="B1">2015</xref>) owing to strongly positive NCC, close to balanced trophic status, and negative NCP occurring at night. Positive NCC decreases dissolved inorganic carbon (DIC) and total alkalinity (TA) in a ratio of 1:2 resulting in a reduction of pH and &#x003A9;<sub>a</sub> while negative NCP decrease pH and &#x003A9;<sub>a</sub> owing to increased DIC. Furthermore, variations in metabolic rates and ratios of NCC to NCP between benthic functional groups (e.g., coral, turf and fleshy algae, coralline algae, sand, etc.) lead to different influences on seawater carbonate chemistry depending on community composition and structure (Anthony et al., <xref ref-type="bibr" rid="B8">2013</xref>; Jokiel et al., <xref ref-type="bibr" rid="B56">2014</xref>; Page et al., <xref ref-type="bibr" rid="B80">2016</xref>), and these effects could either alleviate or enhance local seawater acidification or alkalinization. Based on mainly mesocosm and modeling experiments, changing community composition in favor of increasing coral cover has resulted in higher rates of NCC relative to NCP, causing a decrease in average seawater pH and &#x003A9;<sub>a</sub>, while the opposite has been true for a decrease in coral cover in favor of macroalgae (Kleypas et al., <xref ref-type="bibr" rid="B62">2011</xref>; Page et al., <xref ref-type="bibr" rid="B80">2016</xref>).</p>
<p>The current understanding of the potential impacts of environmental perturbations to coral community metabolism and the effect of changing community structure on seawater carbonate chemistry is limited with respect to the functional, spatial, and temporal scales of these impacts. To date, researchers have been constrained to extrapolating short term individual or community level responses observed in aquaria or mesocosm experiments to larger functional (e.g., ecosystems), spatial (e.g., regions or world), and/or temporal (e.g., years) scales. This approach often assumes that the whole response of coral reefs is equal to the sum of their individual components and frequently lacks consideration for the natural complexity of coral reefs, where organisms do not exist in isolation, but rather interact with other organisms and their physical environment (Mumby and van Woesik, <xref ref-type="bibr" rid="B78">2014</xref>; Andersson et al., <xref ref-type="bibr" rid="B3">2015</xref>; Edmunds et al., <xref ref-type="bibr" rid="B37">2016</xref>). Being able to integrate effects of environmental perturbations on metabolic rates across functional scales, from organisms to reefs, however, is critical to better understand the fate of coral reefs in a future warmer and less alkaline ocean. Edmunds et al. (<xref ref-type="bibr" rid="B37">2016</xref>) proposed that existing ecological theories, namely metabolic theory of ecology (MTE; Brown et al., <xref ref-type="bibr" rid="B17">2004</xref>), could provide the framework for this integration of metabolic rates. MTE states that allometric scaling between body size and metabolic rates governs ecological principles at higher functional scales (Brown et al., <xref ref-type="bibr" rid="B17">2004</xref>). For example, net coral community calcification can be estimated as long as one knows (1) the functional relationship between coral colony size and calcification rate and (2) the abundance of different colony sizes within a reef (Edmunds et al., <xref ref-type="bibr" rid="B37">2016</xref>). One of the first steps to develop a MTE for coral reefs is to better understand how colony sizes and coral densities relate to physiological rates in controlled, experimental settings, and then gradually evaluate these relationships for increasingly complex natural settings.</p>
<p>In this study, the main objectives were to examine the influence of different coral densities on rates of NCC and NCP (here referred to as &#x0201C;benthic metabolism&#x0201D;) as well as their influence on the overlying seawater carbonate chemistry in two different locations, Bermuda and Hawaii. Through two sets of mesocosm experiments, we tested two hypotheses: (1) High coral cover has higher NCC and NCP rates compared to low coral cover, and rates scale proportionally to the percent coral cover, and (2) As a consequence of higher NCC and NCP rates, high coral cover results in greater diel variability of seawater pH, pCO<sub>2</sub>, and &#x003A9;<sub>a</sub> compared to low coral cover. As a complement to the mesocosm experiments, we also evaluated <italic>in situ</italic> seawater CO<sub>2</sub> measurements from three contrasting reef locations with different coral cover in Bermuda and Hawaii. It is not our intention to quantitatively link and connect the mesocosm results with these field observations, as this would require a range of additional data, but simply to provide a broader context in which to place the results of the mesocosm experiments. We also hope that these data will stimulate additional research aimed at quantitatively connecting experimental and field results which, combined, will strengthen our understanding of the links between coral communities, benthic metabolism, and seawater carbonate chemistry.</p>
</sec>
<sec sec-type="materials and methods" id="s2">
<title>Materials and methods</title>
<p>Two mesocosm experiments were conducted to examine the relationships between coral cover, benthic metabolism, and diel seawater carbonate chemistry. An initial experiment was conducted at the Bermuda Institute of Ocean Sciences (BIOS) in 2012 to examine the effects of two treatments (40 and 80% coral cover) on daytime (06:00&#x02013;00:00) seawater carbonate chemistry. This initial study was followed up by an experiment at the Hawaii Institute of Marine Biology (HIMB) in 2016 to include more coral cover treatments (20&#x02013;100% coral cover) as well as a complete diel cycle (Table <xref ref-type="table" rid="T1">1</xref>). These two sites (BIOS and HIMB) were primarily chosen because they contain outdoor, flow-through mesocosm facilities that experience natural fluctuations in environmental conditions representative of conditions experienced on a coral reef and allow control of flow rates. They also represent contrasting coral reef characteristics (e.g., different latitudes, high terrestrial vs. low terrestrial material inputs, and Atlantic vs. Pacific Oceans) and different dominant coral species.</p>
<table-wrap position="float" id="T1">
<label>Table 1</label>
<caption><p>Experimental design for mesocosm experiments in Bermuda and Hawaii.</p></caption>
<table frame="hsides" rules="groups">
<thead><tr>
<th valign="top" align="left"><bold>Experiment</bold></th>
<th valign="top" align="left"><bold>Day(s)</bold></th>
<th valign="top" align="center"><bold>Hours sampled</bold></th>
<th valign="top" align="center"><bold>Treatments (% Coral Cover)</bold></th>
<th valign="top" align="center"><bold>Replication unit</bold></th>
</tr>
</thead>
<tbody>
<tr>
<td valign="top" align="left">Bermuda 2012</td>
<td valign="top" align="left">August 29</td>
<td valign="top" align="center">6:00&#x02013;0:00</td>
<td valign="top" align="center">0, 40, 80</td>
<td valign="top" align="center">Mesocosm (<italic>n</italic> &#x0003D; 3)</td>
</tr>
<tr>
<td valign="top" align="left">Hawaii 2016</td>
<td valign="top" align="left">June 13&#x02013;14, June 15&#x02013;16</td>
<td valign="top" align="center">18:00&#x02013;18:00</td>
<td valign="top" align="center">0, 20, 40, 60, 80, 100</td>
<td valign="top" align="center">Days (<italic>n</italic> &#x0003D; 2)</td>
</tr>
</tbody>
</table>
</table-wrap>
<sec>
<title>Experiment 1: Bermuda 2012</title>
<sec>
<title>Experimental design</title>
<p>The experimental system at BIOS pumped filtered seawater from Ferry Reach, Bermuda into carboys which had gravity-fed flow into nine flow-through mesocosms with the dimensions 53 &#x000D7; 39 &#x000D7; 30.5 cm and flow rates (&#x000B1;1 std) averaging 1.67 &#x000B1; 0.12 L min<sup>&#x02212;1</sup> (residence time, &#x003C4; &#x0003D; 0.64 &#x000B1; 0.28 h). Additionally, two fountain pumps circulated water within each mesocosm, ensuring that the seawater was well-mixed and corals were provided with extensive water flow. To prevent extreme temperature and light stress to the corals, shades were kept over the mesocosms throughout the experiment.</p>
<p>The coral communities in the mesocosms were made up of the scleractinian corals <italic>Diploria labyrinthiformis, Porites astreoides</italic>, and <italic>Madracis aurentenra</italic>, which are common to reefs in Bermuda (Bates et al., <xref ref-type="bibr" rid="B14">2010</xref>; Courtney et al., <xref ref-type="bibr" rid="B26">2016</xref>). Most of the corals had been previously collected from the Bermuda reef platform and acclimated to mesocosm conditions for over a year. However, to obtain higher coral cover in the mesocosms, additional <italic>M. aurentenra</italic> corals were collected from a shallow patch reef and acclimated for 1 week. Two coral cover treatments (40 and 80%) and controls (0% coral cover) were replicated in three mesocosms each (<italic>n</italic> &#x0003D; 3 per treatment). The 40% coral cover treatment contained five medium-sized colonies (&#x0003C;25 cm diameter) of <italic>D. labyrinthiformis</italic> and <italic>P. astreoides</italic> whereas 10 colonies total (five of each species) were used in the 80% coral cover treatment; <italic>M. aurentenra</italic> were filled in around these colonies to obtain the desired coral cover percentages.</p>
</sec>
<sec>
<title>Sampling protocol</title>
<p>Seawater chemistry was monitored every 1&#x02013;3 h from 06:00 to 00:00 (18 h total) on 29 August 2012 in order to encompass the full daylight period. Relative light intensity was measured using HOBO Pendant&#x000AE; temperature/light data loggers (Onset Computer Corporation) set to record light every 10 min. Seawater temperature (&#x000B1;0.15&#x000B0;C) and salinity (&#x000B1;1.0% of reading) were measured hourly using a YSI 556 multiprobe sensor, which was calibrated immediately prior to the experiment. Every 3 h, seawater samples were collected in 200 mL glass Kimax bottles for dissolved inorganic carbon (DIC) and total alkalinity (TA) analyses. These samples were immediately poisoned with a saturated solution of mercuric chloride to halt any biological activity in the samples.</p>
</sec>
<sec>
<title>Sample analyses</title>
<p>Seawater samples were shipped to Scripps Institution of Oceanography (SIO) where they were analyzed for DIC and TA. DIC was measured using an Automated Infra-Red Inorganic Carbon Analyzer (AIRICA, Marianda Inc.) equipped with an infrared LI-COR 7000 CO<sub>2</sub>/H<sub>2</sub>O differential, non-dispersive infrared (NDIR) gas analyzer while TA was measured using an open-cell potentiometric acid-titration procedure outlined in Best Practices for Seawater CO<sub>2</sub> Measurements (Dickson et al., <xref ref-type="bibr" rid="B34">2007</xref>). Precision for both instruments was typically within &#x000B1;3 &#x003BC;mol kg<sup>&#x02212;1</sup> while the accuracies, calculated as the average (&#x000B1;1 std) offset from certified reference material (CRM) values, were 1.45 &#x000B1; 2.62 (<italic>n</italic> &#x0003D; 45) and &#x02212;0.85 &#x000B1; 1.51 (<italic>n</italic> &#x0003D; 24) &#x003BC;mol kg<sup>&#x02212;1</sup> for DIC and TA, respectively.</p>
</sec>
</sec>
<sec>
<title>Experiment 2: Hawaii 2016</title>
<sec>
<title>Experimental design</title>
<p>The mesocosm facility at HIMB (Smith et al., <xref ref-type="bibr" rid="B89">1977</xref>; Andersson et al., <xref ref-type="bibr" rid="B4">2009</xref>; Page et al., <xref ref-type="bibr" rid="B80">2016</xref>) pumps water from Kaneohe Bay into a main header tank. This header tank flows into smaller header tanks that feed flow-through mesocosms with the dimensions 117 &#x000D7; 117 &#x000D7; 50 cm. Water flows up into the mesocosm from the center of the bottom, causing seawater to be well-mixed and providing plenty of flow for corals. Flow rates for the mesocosms averaged 10.81 &#x000B1; 0.14 L min<sup>&#x02212;1</sup> (&#x003C4; &#x0003D; 0.74 &#x000B1; 0.01 h) while water depth was &#x0007E;0.35 m. Mesocosms were kept exposed to full sunlight since the reef from which corals were collected was approximately the same depth as the mesocosms.</p>
<p>Two of the dominant coral species, <italic>Montipora capitata</italic> and <italic>Porites compressa</italic>, were collected from the patch reef along the north side of Coconut Island. These are among the five dominant coral species in the state of Hawaii (Rodgers et al., <xref ref-type="bibr" rid="B83">2015</xref>). Five coral cover treatments in addition to a control (0% coral cover) were set up in the mesocosms: 20, 40, 60, 80, and 100%. These percentages were composed of approximately half <italic>M. capitata</italic> and half <italic>P. compressa</italic> (Supplementary Figure <xref ref-type="supplementary-material" rid="SM1">1</xref>). These coral communities were acclimated to mesocosm conditions for 36 h before beginning sampling on the first day.</p>
</sec>
<sec>
<title>Sampling protocol</title>
<p>Seawater chemistry was sampled every 1&#x02013;3 h for two diel (24 h) cycles (18:00&#x02013;18:00) during June of 2016, following a similar protocol described for Experiment 1. HOBO loggers recorded relative light levels every 5 min. Seawater temperature (&#x000B1; 0.2&#x000B0;C) and salinity (&#x000B1; 1.0% of reading) were measured hourly using a handheld YSI Professional Plus multi-probe sensor which was calibrated to the certified salinity value (psu) for a CRM (Dickson Laboratory, SIO) immediately prior to each diel cycle. Every 3 h, seawater samples were collected in 250 mL glass Pyrex borosilicate bottles for DIC and TA analyses; these samples were immediately poisoned with a saturated solution of mercuric chloride.</p>
</sec>
<sec>
<title>Sample analyses</title>
<p>Seawater samples were shipped to SIO where they were analyzed for DIC and TA using the same protocol as Experiment 1. Once again, the precision of the instruments was &#x000B1;3 &#x003BC;mol kg<sup>&#x02212;1</sup>. The instrument accuracies were &#x02212;1.31 &#x000B1; 2.98 (<italic>n</italic> &#x0003D; 62) and 0.33 &#x000B1; 2.21 (<italic>n</italic> &#x0003D; 23) &#x003BC;mol kg<sup>&#x02212;1</sup> for DIC and TA, respectively.</p>
</sec>
</sec>
<sec>
<title>Data analysis and calculations of mesocosm experiments</title>
<p>The HOBO loggers recorded relative light levels as lux. However, photosynthesis only utilizes specific wavelengths of light, and thus, photosynthetically available radiation (PAR) provides more insight into the light levels that can drive autotrophic carbon fixation. We converted lux to PAR by using the following equation: PAR (&#x003BC;mol photons m<sup>&#x02212;2</sup> s<sup>&#x02212;1</sup>) &#x0003D; LUX &#x000F7; 51.2 (Valiela, <xref ref-type="bibr" rid="B95">1984</xref>; Smith et al., <xref ref-type="bibr" rid="B88">2013</xref>).</p>
<p>Because the source water at each location passes through several ecosystems that modify carbon chemistry over diel cycles (Andersson and Mackenzie, <xref ref-type="bibr" rid="B5">2012</xref>), variability in seawater carbonate chemistry of treatment mesocosms was due to changes both in the source water and modifications by the coral communities in the mesocosms. Additionally, plankton in the seawater may have modified seawater DIC and TA. To eliminate the influences of source water variability and plankton on seawater DIC and TA, and simply evaluate the influence of the benthic community in each mesocosm, the average control values were subtracted from treatment values. Thus, the resulting residual of DIC and TA of the treatment tanks represent modifications owing solely to the specific benthic community within each tank. Values of DIC and TA can be used to calculate NCC and NCP rates by modifying standard equations (Langdon et al., <xref ref-type="bibr" rid="B66">2010</xref>) to:</p>
<disp-formula id="E1"><mml:math id="M1"><mml:mtable columnalign='left'><mml:mtr><mml:mtd><mml:mtext>NCC</mml:mtext><mml:mo>=</mml:mo><mml:mo>&#x02212;</mml:mo><mml:mrow><mml:mo stretchy="true">[</mml:mo><mml:mrow><mml:mfrac><mml:mrow><mml:msub><mml:mrow><mml:mtext>TA</mml:mtext></mml:mrow><mml:mrow><mml:mtext>Treatment</mml:mtext></mml:mrow></mml:msub><mml:mo>&#x02212;</mml:mo><mml:msub><mml:mrow><mml:mtext>TA</mml:mtext></mml:mrow><mml:mrow><mml:mtext>Average</mml:mtext><mml:mo>&#x000A0;</mml:mo><mml:mtext>Control</mml:mtext></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mo>&#x003C4;</mml:mo><mml:mrow><mml:mtext>Treatment</mml:mtext></mml:mrow></mml:msub></mml:mrow></mml:mfrac></mml:mrow></mml:mrow></mml:mtd></mml:mtr><mml:mtr><mml:mtd><mml:mtext>&#x000A0;&#x000A0;&#x000A0;&#x000A0;&#x000A0;&#x000A0;&#x000A0;&#x000A0;&#x000A0;&#x000A0;&#x000A0;&#x000A0;&#x000A0;&#x000A0;&#x000A0;</mml:mtext><mml:mrow><mml:mrow><mml:mo>&#x000D7;</mml:mo><mml:mo>&#x003C1;</mml:mo><mml:mo>&#x000D7;</mml:mo><mml:mtext>H</mml:mtext><mml:mo>&#x000D7;</mml:mo><mml:mn>0.5</mml:mn></mml:mrow><mml:mo stretchy="true">]</mml:mo></mml:mrow><mml:mtext>mmol&#x000A0;</mml:mtext><mml:msup><mml:mtext>m</mml:mtext><mml:mrow><mml:mo>&#x02212;</mml:mo><mml:mn>2</mml:mn></mml:mrow></mml:msup><mml:mtext>&#x000A0;</mml:mtext><mml:msup><mml:mtext>h</mml:mtext><mml:mrow><mml:mo>&#x02212;</mml:mo><mml:mn>1</mml:mn></mml:mrow></mml:msup></mml:mtd></mml:mtr><mml:mtr><mml:mtd><mml:mtext>NCP</mml:mtext><mml:mo>=</mml:mo><mml:mo>&#x02212;</mml:mo><mml:mrow><mml:mo stretchy="true">[</mml:mo><mml:mrow><mml:mfrac><mml:mrow><mml:msub><mml:mrow><mml:mtext>DIC</mml:mtext></mml:mrow><mml:mrow><mml:mtext>Treatment</mml:mtext></mml:mrow></mml:msub><mml:mo>&#x02212;</mml:mo><mml:mo>&#x000A0;</mml:mo><mml:msub><mml:mrow><mml:mtext>DIC</mml:mtext></mml:mrow><mml:mrow><mml:mtext>Average</mml:mtext><mml:mo>&#x000A0;</mml:mo><mml:mtext>Control</mml:mtext></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:msub><mml:mo>&#x003C4;</mml:mo><mml:mrow><mml:mtext>Treatment</mml:mtext></mml:mrow></mml:msub></mml:mrow></mml:mfrac></mml:mrow></mml:mrow></mml:mtd></mml:mtr><mml:mtr><mml:mtd><mml:mtext>&#x000A0;&#x000A0;&#x000A0;&#x000A0;&#x000A0;&#x000A0;&#x000A0;&#x000A0;&#x000A0;&#x000A0;&#x000A0;&#x000A0;&#x000A0;&#x000A0;</mml:mtext><mml:mrow><mml:mrow><mml:mo>&#x000D7;</mml:mo><mml:mo>&#x003C1;</mml:mo><mml:mo>&#x000D7;</mml:mo><mml:mtext>H&#x000A0;</mml:mtext></mml:mrow><mml:mo stretchy="true">]</mml:mo></mml:mrow><mml:mo>&#x02212;</mml:mo><mml:mtext>NCC&#x000A0;mmol&#x000A0;</mml:mtext><mml:msup><mml:mtext>m</mml:mtext><mml:mrow><mml:mo>&#x02212;</mml:mo><mml:mn>2</mml:mn></mml:mrow></mml:msup><mml:mtext>&#x000A0;</mml:mtext><mml:msup><mml:mtext>h</mml:mtext><mml:mrow><mml:mo>&#x02212;</mml:mo><mml:mn>1</mml:mn></mml:mrow></mml:msup></mml:mtd></mml:mtr></mml:mtable></mml:math></disp-formula>
<p>where control values are averages for a specific sampling time, &#x003C4; is the average residence time of seawater in the mesocosm (h), &#x003C1; is the seawater density (kg m<sup>&#x02212;3</sup>), and H is the height of the water column (m). The effect of gas exchange on the DIC in the treatment tanks is partly taken into account by subtracting the DIC from the control tanks, but fails to account for additional CO<sub>2</sub> flux as a result of biological modification of the seawater pCO<sub>2</sub>. However, calculations of this flux (&#x0003C;0.2 mmol m<sup>&#x02212;2</sup> h<sup>&#x02212;1</sup>) show that it is small relative to the observed changes and residence time of the water.</p>
<p>Statistical analysis was performed using R v3.3.1 software (R Development Core Team, <xref ref-type="bibr" rid="B81">2008</xref>) to test for differences in NCC and NCP rates between coral cover treatments. For Experiment 1, only rates occurring during daylight hours were used for this analysis; NCC and NCP rates were split into day and night for Experiment 2 since full diel cycles were measured. Data were first visually compared for no differences between replication units (mesocosm for Experiment 1 and day for Experiment 2). Since there were no differences between the replication units for either experiment, they were then combined for a one-way ANCOVA to determine statistically significant differences between coral cover treatments on NCC and NCP rates, controlling for time. When significance for treatment was detected, a <italic>post-hoc</italic> Tukey&#x00027;s HSD Test with a confidence level of 0.95 was used to examine which treatments were statistically different from one another.</p>
<p>In order to determine how NCC and NCP rates scaled to coral cover (Hypothesis 1), rates measured in Experiment 2 were scaled relative to the observed NCC and NCP rates for the 100% coral cover treatment on each day for each time point. For NCC, the following equation was used:</p>
<disp-formula id="E2"><mml:math id="M2"><mml:mtable columnalign="left"><mml:mtr><mml:mtd><mml:mtext>Scaled&#x000A0;NCC</mml:mtext><mml:mo>=</mml:mo><mml:mtext>&#x000A0;</mml:mtext><mml:mfrac><mml:mrow><mml:mtext>NC</mml:mtext><mml:msub><mml:mrow><mml:mtext>C</mml:mtext></mml:mrow><mml:mrow><mml:mtext>Treatment</mml:mtext></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:mtext>NC</mml:mtext><mml:msub><mml:mrow><mml:mtext>C</mml:mtext></mml:mrow><mml:mrow><mml:mn>100</mml:mn><mml:mtext>%&#x000A0;Coral&#x000A0;Cover</mml:mtext></mml:mrow></mml:msub></mml:mrow></mml:mfrac><mml:mo>&#x000D7;</mml:mo><mml:mn>100</mml:mn><mml:mi>%</mml:mi></mml:mtd></mml:mtr></mml:mtable></mml:math></disp-formula>
<p>Since NCP rates are in general positive during the day (primary production &#x0003E; respiration) and negative at night (respiration &#x0003E; primary production), day and night rates were evaluated separately. NCP rates measured at 18:00 were not used for this analysis since the rates at this time transitioned between net primary production and net respiration, and thus, caused misrepresentative scaling values. Therefore, daytime rates were scaled from 0 to 100% and nighttime rates from 0 to &#x02013; 100%:</p>
<disp-formula id="E3"><mml:math id="M3"><mml:mtable columnalign="left"><mml:mtr><mml:mtd><mml:mtext>Scaled&#x000A0;NC</mml:mtext><mml:msub><mml:mrow><mml:mtext>P</mml:mtext></mml:mrow><mml:mrow><mml:mtext>Day</mml:mtext></mml:mrow></mml:msub><mml:mo>=</mml:mo><mml:mtext>&#x000A0;</mml:mtext><mml:mfrac><mml:mrow><mml:mtext>NC</mml:mtext><mml:msub><mml:mrow><mml:mtext>P</mml:mtext></mml:mrow><mml:mrow><mml:mtext>Treatment</mml:mtext></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:mtext>NC</mml:mtext><mml:msub><mml:mrow><mml:mtext>P</mml:mtext></mml:mrow><mml:mrow><mml:mn>100</mml:mn><mml:mtext>%&#x000A0;Coral&#x000A0;Cover</mml:mtext></mml:mrow></mml:msub></mml:mrow></mml:mfrac><mml:mo>&#x000D7;</mml:mo><mml:mn>100</mml:mn><mml:mi>%</mml:mi></mml:mtd></mml:mtr><mml:mtr><mml:mtd><mml:mtext>Scaled&#x000A0;NC</mml:mtext><mml:msub><mml:mrow><mml:mtext>P</mml:mtext></mml:mrow><mml:mrow><mml:mtext>Night</mml:mtext></mml:mrow></mml:msub><mml:mo>=</mml:mo><mml:mtext>&#x000A0;</mml:mtext><mml:mfrac><mml:mrow><mml:mtext>NC</mml:mtext><mml:msub><mml:mrow><mml:mtext>P</mml:mtext></mml:mrow><mml:mrow><mml:mtext>Treatment</mml:mtext></mml:mrow></mml:msub></mml:mrow><mml:mrow><mml:mtext>NC</mml:mtext><mml:msub><mml:mrow><mml:mtext>P</mml:mtext></mml:mrow><mml:mrow><mml:mn>100</mml:mn><mml:mtext>%&#x000A0;Coral&#x000A0;Cover</mml:mtext></mml:mrow></mml:msub></mml:mrow></mml:mfrac><mml:mo>&#x000D7;</mml:mo><mml:mo>-</mml:mo><mml:mn>100</mml:mn><mml:mi>%</mml:mi></mml:mtd></mml:mtr></mml:mtable></mml:math></disp-formula>
<p>Using R v3.3.1 software (R Development Core Team, <xref ref-type="bibr" rid="B81">2008</xref>), linear regression models (lm) were used to describe the relationships between coral cover and scaled rates.</p>
<p>Seawater pH, pCO<sub>2</sub>, and &#x003A9;<sub>a</sub> were calculated from measured temperature, salinity, DIC and TA using CO2SYS (Lewis and Wallace, <xref ref-type="bibr" rid="B70">1998</xref>). K1 and K2 constants from Mehrbach et al. (<xref ref-type="bibr" rid="B76">1973</xref>), refitted by Dickson and Millero (<xref ref-type="bibr" rid="B33">1987</xref>) were selected for calculations on the total pH scale.</p>
<p>To further examine the relationships between coral cover, benthic metabolism, and seawater carbonate chemistry, a graphical analysis of TA and DIC vectors was performed (Deffeyes, <xref ref-type="bibr" rid="B30">1965</xref>). Type II Linear Regressions were fit to TA and DIC data for each treatment from Experiment 2 using the lmodel2 package within R v3.3.1 software (R Development Core Team, <xref ref-type="bibr" rid="B81">2008</xref>). The slopes provided by the major axis method, which assumes error in both the x and y axes, are reported and subsequently compared using an ANOVA after ensuring data meet assumptions for this statistical test. This analysis was not completed for Experiment 1 because the linear regressions were not significant (<italic>p</italic> &#x0003E; 0.05).</p>
</sec>
<sec>
<title><italic>In situ</italic> surface seawater CO<sub>2</sub> measurements in Bermuda and Hawaii</title>
<p>To put the mesocosm results into a broader context we evaluated the diel CO<sub>2</sub> variability and environmental conditions at three reef sites equipped with autonomous CO<sub>2</sub> sensors and contrasting coral cover for a period of 12 days coincident with the mesocosm experiments (Figure <xref ref-type="fig" rid="F1">1</xref>). In Bermuda, Crescent Reef is a patch reef located within a sandy bottom lagoon with water depth ranging from &#x0007E;2 to 7 m at the reef site. Coral cover is &#x0007E;15% (Jones, <xref ref-type="bibr" rid="B58">2006</xref>). In contrast, Hog Reef is located on the rim reef with depth ranging from &#x0007E;6 to 11 m. The benthic community at Hog Reef is comprised of close to 30% hard (Scleractinian) corals with almost 70% of the community consisting of macroalgae, turf algae, and soft corals (Courtney et al., <xref ref-type="bibr" rid="B26">2016</xref>). <italic>D. labyrinthiformis</italic> and <italic>P. astreoides</italic> constitute &#x0007E;10 and 1.5% of the benthic cover, respectively (Jones, <xref ref-type="bibr" rid="B58">2006</xref>; Bates et al., <xref ref-type="bibr" rid="B14">2010</xref>; Courtney et al., <xref ref-type="bibr" rid="B26">2016</xref>). The seawater residence time on the rim reef is relatively short (1&#x02013;4 days) while the lagoon experiences longer seawater residence times ranging from 5 to 12 days (Bates et al., <xref ref-type="bibr" rid="B14">2010</xref>; Venti et al., <xref ref-type="bibr" rid="B97">2012</xref>). In Hawaii, the monitoring site is a back reef environment located within Kaneohe Bay right at the shallow (&#x0007E;2 m) transition zone between the barrier reef with &#x0007E;65% coral cover (Jokiel et al., <xref ref-type="bibr" rid="B57">2015</xref>) and the inside deep (&#x0007E;12 m) lagoon (Figure <xref ref-type="fig" rid="F1">1</xref>). The seawater residence time on the barrier reef of Kaneohe Bay, based on numerical simulations forced by historical wave, wind and tidal data is on the order of a day (Lowe et al., <xref ref-type="bibr" rid="B71">2009</xref>), but can be much shorter depending on the wind strength and wave height conditions.</p>
<fig id="F1" position="float">
<label>Figure 1</label>
<caption><p>Locations of coral reef buoys at reefs with contrasting coral cover in Bermuda (BDA, A,B) and Hawaii (HI, <bold>C</bold>). The stars indicate locations of coral reef CO<sub>2</sub> buoys and coral cover estimates are for the area surrounding these buoys. The scale bars represent 0.50 km in each image. Images were obtained from Google Earth.</p></caption>
<graphic xlink:href="fmars-04-00161-g0001.tif"/>
</fig>
<p>At each reef site, the mole fraction of CO<sub>2</sub> (xCO<sub>2</sub>) in seawater and in air was measured every 3 h by NOAA PMEL MAPCO<sub>2</sub> systems (Sutton et al., <xref ref-type="bibr" rid="B90">2014</xref>). The MAPCO<sub>2</sub> moorings utilize a Battelle Memorial Institute CO<sub>2</sub> system equipped with a LI-COR LI-820 infrared CO<sub>2</sub> gas analyzer and SHT71 relative humidity and temperature sensor (Sutton et al., <xref ref-type="bibr" rid="B90">2014</xref>). The system calculates xCO<sub>2</sub> in air that has been equilibrated with seawater. The system is calibrated with a zero and a non-zero CO<sub>2</sub> reference gas provided by NOAA Earth System Research Laboratory (ESRL) and traceable to World Meteorological Organization (WMO) standards. The accuracy and precision of both air and seawater xCO<sub>2</sub> measurements are typically better than 2 &#x003BC;mol mol<sup>&#x02212;1</sup> (Sutton et al., <xref ref-type="bibr" rid="B90">2014</xref>). At each of these sites, seawater temperature (&#x000B0;C) is also measured every 3 h by a Seabird 16plus V2 Seacat CTD. Tide and wind measurements were retrieved from nearby monitoring stations. Hourly mean lower low water (MLLW, m) data were obtained for St. George&#x00027;s Island, Bermuda and Coconut Island (Mokuoloe), Kaneohe, Hawaii from NOAA/National Ocean Service (NOS) Center for Operational Oceanographic Products and Services (<ext-link ext-link-type="uri" xlink:href="https://tidesandcurrents.noaa.gov">https://tidesandcurrents.noaa.gov</ext-link>). Wind data from Bermuda were taken from International Civil Aviation Organization (ICAO) standard observations at the LF Wade International Airport, Bermuda. The NOAA/NOS Data Buoy Center (<ext-link ext-link-type="uri" xlink:href="http://www.ndbc.noaa.gov">www.ndbc.noaa.gov</ext-link>) provided hourly wind speed and direction for Coconut Island (Mokuoloe), Kaneohe, Hawaii.</p>
</sec>
</sec>
<sec sec-type="results" id="s3">
<title>Results</title>
<p>All values are reported as the mean &#x000B1;1 standard deviation, unless otherwise noted. The term &#x0201C;benthic metabolism&#x0201D; refers to the NCC and NCP rates for the communities containing different densities of coral within the mesocosms.</p>
<sec>
<title>Experiment 1: Bermuda 2012</title>
<sec>
<title>Environmental conditions</title>
<p>The mesocosms experienced natural variations in seawater temperature, salinity, and light (Figure <xref ref-type="fig" rid="F2">2</xref>). From the beginning of the experiment, seawater temperature increased to a maximum of 30.37 &#x000B1; 0.19&#x000B0;C at 15:00. Temperatures then decreased to 29.53 &#x000B1; 0.07&#x000B0;C and remained fairly stable until the last sampling at midnight. Salinity fluctuated slightly around 36.67 psu for most of the experiment. There was a decline to 36.30 &#x000B1; 0.15 psu at 21:00 due to a rain shower but salinity quickly recovered due to the short residence times of the mesocosms. Light started increasing slightly just before sunrise, which was at 6:52. Light levels reached a maximum (&#x0007E;325 &#x003BC;mol photons m<sup>&#x02212;2</sup> s<sup>&#x02212;1</sup>) around 15:00 and then decreased to zero just prior to sunset (19:46).</p>
<fig id="F2" position="float">
<label>Figure 2</label>
<caption><p>Environmental conditions (mean &#x000B1; 1 std) for mesocosm experiments in Bermuda 2012 (left panel, <bold>A&#x02013;C</bold>) and Hawaii 2016 (right panel, <bold>D&#x02013;F</bold>). The shaded areas show night as defined by sunset and sunrise times. In Hawaii, a light sensor was also placed on the reef flat where specimen were collected and these data are shown in orange.</p></caption>
<graphic xlink:href="fmars-04-00161-g0002.tif"/>
</fig>
</sec>
<sec>
<title>Benthic metabolism</title>
<p>NCC rates remained fairly stable throughout the experiment while NCP rates followed temperature and light closely, with the significantly highest rates occurring during the middle of the day (Figure <xref ref-type="fig" rid="F3">3</xref>). Coral communities maintained positive net calcification and organic carbon production throughout the day. Despite slightly higher rates for 80% coral cover throughout most of the day, there were no statistically significant differences in average daytime NCC or NCP between the two coral cover treatments (Table <xref ref-type="table" rid="T2">2</xref>). The 40% coral cover treatment had an average daytime NCC rate of 3.37 &#x000B1; 2.94 mmol m<sup>&#x02212;2</sup> h<sup>&#x02212;1</sup> while the 80% coral cover had a slightly higher average daytime NCC rate of 3.93 &#x000B1; 2.55 mmol m<sup>&#x02212;2</sup> h<sup>&#x02212;1</sup>. NCP rates reached peak organic production at 15:00 when irradiance was highest and rates were &#x0007E;35% higher for high coral cover than for 40% coral cover (7.94 &#x000B1; 3.82 vs. 5.93 &#x000B1; 3.00 mmol m<sup>&#x02212;2</sup> h<sup>&#x02212;1</sup>).</p>
<fig id="F3" position="float">
<label>Figure 3</label>
<caption><p>NCC and NCP for Bermuda 2012 (left panels, <bold>A,B</bold>) and Hawaii 2016 (right panels, <bold>C,D</bold>) with colors and symbols representing coral cover treatments (red circle: 20%, orange square: 40%, aqua diamond: 60%, blue triangle: 80% and pink inverted triangle: 100%). The shaded areas show night as defined by sunset and sunrise times.</p></caption>
<graphic xlink:href="fmars-04-00161-g0003.tif"/>
</fig>
<table-wrap position="float" id="T2">
<label>Table 2</label>
<caption><p>Statistical comparison of NCC and NCP rates for Bermuda 2012 and Hawaii 2016.</p></caption>
<table frame="hsides" rules="groups">
<thead><tr>
<th valign="top" align="left"><bold>Experiment</bold></th>
<th valign="top" align="left"><bold>Day/night</bold></th>
<th valign="top" align="left"><bold>Response</bold></th>
<th valign="top" align="left"><bold>Factor</bold></th>
<th valign="top" align="center"><bold><italic>df</italic></bold></th>
<th valign="top" align="center"><bold><italic>F</italic>-Statistic</bold></th>
<th valign="top" align="center"><bold><italic>p</italic>-value</bold></th>
</tr>
</thead>
<tbody>
<tr>
<td valign="top" align="left">Bermuda 2012</td>
<td valign="top" align="left">Day</td>
<td valign="top" align="left">NCC</td>
<td valign="top" align="left">Treatment</td>
<td valign="top" align="center">1</td>
<td valign="top" align="center">0.974</td>
<td valign="top" align="center">0.338</td>
</tr>
<tr>
<td/>
<td/>
<td/>
<td valign="top" align="left">Time</td>
<td valign="top" align="center">3</td>
<td valign="top" align="center">2.462</td>
<td valign="top" align="center">0.100</td>
</tr>
<tr>
<td/>
<td/>
<td/>
<td valign="top" align="left">Treatment<sup>&#x0002A;</sup>Time</td>
<td valign="top" align="center">3</td>
<td valign="top" align="center">3.114</td>
<td valign="top" align="center">0.056</td>
</tr>
<tr>
<td/>
<td/>
<td valign="top" align="left">NCP</td>
<td valign="top" align="left">Treatment</td>
<td valign="top" align="center">1</td>
<td valign="top" align="center">2.715</td>
<td valign="top" align="center">0.120</td>
</tr>
<tr>
<td/>
<td/>
<td/>
<td valign="top" align="left"><italic>Time</italic></td>
<td valign="top" align="center">3</td>
<td valign="top" align="center">15.72</td>
<td valign="top" align="center">&#x0003C;0.001<xref ref-type="table-fn" rid="TN1"><sup>&#x0002A;</sup></xref></td>
</tr>
<tr>
<td/>
<td/>
<td/>
<td valign="top" align="left">Treatment<sup>&#x0002A;</sup>Time</td>
<td valign="top" align="center">3</td>
<td valign="top" align="center">0.638</td>
<td valign="top" align="center">0.602</td>
</tr>
<tr style="border-top: thin solid #000000;">
<td valign="top" align="left">Hawaii 2016</td>
<td valign="top" align="left">Day</td>
<td valign="top" align="left">NCC</td>
<td valign="top" align="left"><italic>Treatment</italic></td>
<td valign="top" align="center">4</td>
<td valign="top" align="center">42.95</td>
<td valign="top" align="center">&#x0003C;0.001<xref ref-type="table-fn" rid="TN1"><sup>&#x0002A;</sup></xref></td>
</tr>
<tr>
<td/>
<td/>
<td/>
<td valign="top" align="left"><italic>Time</italic></td>
<td valign="top" align="center">4</td>
<td valign="top" align="center">50.30</td>
<td valign="top" align="center">&#x0003C;0.001<xref ref-type="table-fn" rid="TN1"><sup>&#x0002A;</sup></xref></td>
</tr>
<tr>
<td/>
<td/>
<td/>
<td valign="top" align="left">Treatment<sup>&#x0002A;</sup>Time</td>
<td valign="top" align="center">16</td>
<td valign="top" align="center">1.402</td>
<td valign="top" align="center">0.197</td>
</tr>
<tr>
<td/>
<td/>
<td valign="top" align="left">NCP</td>
<td valign="top" align="left"><italic>Treatment</italic></td>
<td valign="top" align="center">4</td>
<td valign="top" align="center">9.843</td>
<td valign="top" align="center">&#x0003C;0.001<xref ref-type="table-fn" rid="TN1"><sup>&#x0002A;</sup></xref></td>
</tr>
<tr>
<td/>
<td/>
<td/>
<td valign="top" align="left"><italic>Time</italic></td>
<td valign="top" align="center">4</td>
<td valign="top" align="center">362.2</td>
<td valign="top" align="center">&#x0003C;0.001<xref ref-type="table-fn" rid="TN1"><sup>&#x0002A;</sup></xref></td>
</tr>
<tr>
<td/>
<td/>
<td/>
<td valign="top" align="left"><italic>Treatment<sup>&#x0002A;</sup>Time</italic></td>
<td valign="top" align="center">16</td>
<td valign="top" align="center">7.695</td>
<td valign="top" align="center">&#x0003C;0.001<xref ref-type="table-fn" rid="TN1"><sup>&#x0002A;</sup></xref></td>
</tr>
<tr>
<td/>
<td valign="top" align="left">Night</td>
<td valign="top" align="left">NCC</td>
<td valign="top" align="left"><italic>Treatment</italic></td>
<td valign="top" align="center">4</td>
<td valign="top" align="center">5.048</td>
<td valign="top" align="center">0.011<xref ref-type="table-fn" rid="TN1"><sup>&#x0002A;</sup></xref></td>
</tr>
<tr>
<td/>
<td/>
<td/>
<td valign="top" align="left"><italic>Time</italic></td>
<td valign="top" align="center">2</td>
<td valign="top" align="center">5.891</td>
<td valign="top" align="center">0.015<xref ref-type="table-fn" rid="TN1"><sup>&#x0002A;</sup></xref></td>
</tr>
<tr>
<td/>
<td/>
<td/>
<td valign="top" align="left">Treatment<sup>&#x0002A;</sup>Time</td>
<td valign="top" align="center">8</td>
<td valign="top" align="center">0.302</td>
<td valign="top" align="center">0.952</td>
</tr>
<tr>
<td/>
<td/>
<td valign="top" align="left">NCP</td>
<td valign="top" align="left"><italic>Treatment</italic></td>
<td valign="top" align="center">4</td>
<td valign="top" align="center">53.43</td>
<td valign="top" align="center">&#x0003C;0.001<xref ref-type="table-fn" rid="TN1"><sup>&#x0002A;</sup></xref></td>
</tr>
<tr>
<td/>
<td/>
<td/>
<td valign="top" align="left"><italic>Time</italic></td>
<td valign="top" align="center">2</td>
<td valign="top" align="center">6.425</td>
<td valign="top" align="center">0.012<xref ref-type="table-fn" rid="TN1"><sup>&#x0002A;</sup></xref></td>
</tr>
<tr>
<td/>
<td/>
<td/>
<td valign="top" align="left">Treatment<sup>&#x0002A;</sup>Time</td>
<td valign="top" align="center">8</td>
<td valign="top" align="center">1.021</td>
<td valign="top" align="center">0.467</td>
</tr>
</tbody>
</table>
<table-wrap-foot>
<p><italic>For each analysis, an ANCOVA was used to compare the effect of coral cover on NCC and NCP rates while accounting for time. Results were considered significant when p &#x0003C; 0.05 and these significant results are italicized and indicated by asterisks</italic>.</p>
<fn id="TN1">
<label>&#x0002A;</label>
<p><italic>Indicates statistical significance</italic>.</p></fn>
</table-wrap-foot>
</table-wrap>
</sec>
<sec>
<title>Seawater carbonate chemistry</title>
<p>The net effect of NCC and NCP in the treatment mesocosms modified the seawater carbonate chemistry relative to the control, with positive NCC promoting acidification and positive NCP promoting alkalinization (Figure <xref ref-type="fig" rid="F4">4</xref>). Seawater pH and &#x003A9;<sub>a</sub> increased throughout the morning until 15:00 after which they slightly decreased. In contrast, seawater pCO<sub>2</sub> started at maximum values and decreased until 15:00. At the start of the experiment, before sunrise, seawater pH was lowest for both coral cover treatments (7.85 &#x000B1; 0.07 and 7.86 &#x000B1; 0.02 for 40 and 80% coral cover, respectively) and lower than the control pH. Maximum pH for both treatments was 7.94 &#x000B1; 0.01 which was 0.01 &#x000B1; 0.01 higher than the control pH. Therefore, the pH range was 0.09 and 0.08 for 40 and 80% coral cover, respectively, which were twice the variability of seawater pH in the control (0.04). Seawater pCO<sub>2</sub> was highest in the morning and then decreased to 519.1 &#x000B1; 10.3 &#x003BC;atm in 40% coral cover and 517.5 &#x000B1; 11.4 &#x003BC;atm in 80% coral cover. The pCO<sub>2</sub> variability for 40 and 80% coral cover was 148.1 &#x003BC;atm and 122.9 &#x003BC;atm, respectively. Seawater &#x003A9;<sub>a</sub> followed the same trend as seawater pH. The minimum values were 2.77 &#x000B1; 0.40 for 40% coral cover and 2.83 &#x000B1; 0.13 for 80% coral cover. The &#x003A9;<sub>a</sub> rose to approximately maximum values of 3.33 for both coral cover treatments, which was 0.09 higher than the control (3.24 &#x000B1; 0.04). The ranges of variability were 0.56 and 0.49 for 40 and 80% coral cover, respectively.</p>
<fig id="F4" position="float">
<label>Figure 4</label>
<caption><p>Seawater carbonate chemistry shown as absolute values (pH, pCO<sub>2</sub>, and &#x003A9;<sub>a</sub>) and the difference from control (0%) values (&#x00394; pH, &#x00394; pCO<sub>2</sub>, and &#x00394; &#x003A9;<sub>a</sub>) for Bermuda 2012 (left panel, <bold>A&#x02013;F</bold>) and Hawaii 2016 (right panel, <bold>G&#x02013;L</bold>). The shaded areas show night as defined by sunset and sunrise times while the colors and symbols represent coral cover treatments (black cross: 0%, red circle: 20%, orange square: 40%, aqua diamond: 60%, blue triangle: 80% and pink inverted triangle: 100%).</p></caption>
<graphic xlink:href="fmars-04-00161-g0004.tif"/>
</fig>
</sec>
</sec>
<sec>
<title>Experiment 2: Hawaii 2016</title>
<sec>
<title>Environmental conditions</title>
<p>Seawater temperature and light had strong diel variations while salinity remained stable throughout both days of sampling. The minimum and maximum seawater temperatures were similar for both days; the minimum temperature was around 26&#x000B0;C at night and then increased to &#x0007E;27.5&#x000B0;C during midday. On the first day of sampling, salinity averaged 34.71 &#x000B1; 0.03 psu and was slightly higher on the second day, averaging 34.84 &#x000B1; 0.03 psu. Light levels reached zero around 19:00 and started increasing when sunrise occurred just before 6:00. Maximum light levels (PAR) were &#x0007E;1,700 &#x003BC;mol photons m<sup>&#x02212;2</sup> s<sup>&#x02212;1</sup> during both days of sampling. These light levels were almost twice as high as measurements taken on the reef flat where corals were collected (Figure <xref ref-type="fig" rid="F2">2</xref>).</p>
</sec>
<sec>
<title>Benthic metabolism</title>
<p>Both NCC and NCP followed similar diel trends to seawater temperature and irradiance; rates were low at night and then steadily increased to maximum rates during midday after which they decreased (Figure <xref ref-type="fig" rid="F3">3</xref>). Although all coral communities maintained net calcification most of the time, there were statistically significant differences between average night [ANCOVA, <italic>F</italic><sub>(4, 13)</sub> &#x0003D; 5.048, <italic>p</italic> &#x0003D; 0.011] and day [ANCOVA, <italic>F</italic><sub>(4, 35)</sub> &#x0003D; 42.947, <italic>p</italic> &#x0003C; 0.001] NCC rates (Table <xref ref-type="table" rid="T2">2</xref>). The lowest rates of NCC were observed during night and the lowest coral cover had the lowest average NCC rate of 0.73 &#x000B1; 1.6 mmol m<sup>&#x02212;2</sup> h<sup>&#x02212;1</sup>. This rate differed significantly from the highest nighttime NCC rates for 80% (4.0 &#x000B1; 2.0 mmol m<sup>&#x02212;2</sup> h<sup>&#x02212;1</sup>) and 100% (4.1 &#x000B1; 1.9 mmol m<sup>&#x02212;2</sup> h<sup>&#x02212;1</sup>) coral cover, which were not significantly different from one another. These differences between coral cover continued during the day as NCC rates followed the irradiance and temperature increase. The lowest coral cover (20%) had an average daytime NCC rate of 3.4 &#x000B1; 3.0 mmol m<sup>&#x02212;2</sup> h<sup>&#x02212;1</sup> while the highest coral cover (100%) had an average daytime NCC rate of 11.2 &#x000B1; 4.9 mmol m<sup>&#x02212;2</sup> h<sup>&#x02212;1</sup>.</p>
<p>All of the coral communities experienced net respiration at night and net organic production during the day. As observed for average NCC rates at night, there were also significant differences between treatment average NCP rates at night [ANCOVA, <italic>F</italic><sub>(4, 13)</sub> &#x0003D; 53.43, <italic>p</italic> &#x0003C; 0.001; Table <xref ref-type="table" rid="T2">2</xref>]. The most negative average NCP rates were observed for 80% (&#x02212;12.5 &#x000B1; 1.9 mmol m<sup>&#x02212;2</sup> h<sup>&#x02212;1</sup>) and 100% (&#x02212;13.3 &#x000B1; 1.3 mmol m<sup>&#x02212;2</sup> h<sup>&#x02212;1</sup>) coral cover treatments. The 20 and 40% coral cover treatments had the least negative average night NCP rates at &#x02212;4.5 &#x000B1; 1.5 and &#x02212;5.7 &#x000B1; 0.97 mmol m<sup>&#x02212;2</sup> h<sup>&#x02212;1</sup>, respectively, and did not differ significantly from one another. The only significant interaction between coral cover treatment and time occurred for average daytime NCP rates [ANCOVA, <italic>F</italic><sub>(16, 35)</sub> &#x0003D; 7.695, <italic>p</italic> &#x0003C; 0.001] such that there were only differences between treatments at noon and 15:00 when maximum NCP rates were observed. At noon, 20% coral cover had the lowest positive NCP rate of 13.1 &#x000B1; 2.3 mmol m<sup>&#x02212;2</sup> h<sup>&#x02212;1</sup> while the maximum NCP rate for the 100% coral cover treatment was approximately doubled at 27.7 &#x000B1; 4.4 mmol m<sup>&#x02212;2</sup> h<sup>&#x02212;1</sup>.</p>
<p>Although there was quite a bit of variance in scaled NCC and NCP rates, linear regressions of scaled rates vs. coral cover explained over 95% of this variance and thus were statistically significant for NCC (<italic>R</italic><sup>2</sup> &#x0003D; 0.98, <italic>p</italic> &#x0003D; 0.001), NCP<sub>Day</sub> (<italic>R</italic><sup>2</sup> &#x0003D; 0.96, <italic>p</italic> &#x0003D; 0.003), and NCP<sub>Night</sub> (<italic>R</italic><sup>2</sup> &#x0003D; 0.95, <italic>p</italic> &#x0003D; 0.003). NCC rates scaled proportionally to coral cover with the linear regression having a slope of 0.99. (A linear regression with a slope of 1 would indicate increases in metabolic rates proportional to increases in coral cover.) The scaled NCC rates increased from 25 &#x000B1; 33% to 89 &#x000B1; 28% for 20% and 80% coral cover, respectively. NCP<sub>Night</sub> also scaled relatively proportionally to coral cover with the linear regression having a slope of &#x02212;0.90. The lowest coral cover (20%) had scaled NCP<sub>Night</sub> rates of &#x02212;35 &#x000B1; 9% while 80% coral cover had scaled NCP<sub>Night</sub> rates of &#x02212;93 &#x000B1; 12%. Unlike NCC and NCP<sub>Night</sub>, scaled rates for NCP<sub>Day</sub> did not scale proportionally to coral cover; the slope of the linear regression was only 0.66. The 20% coral cover treatment had scaled NCP<sub>Day</sub> of 51 &#x000B1; 6% and this scaled rate increased to 93 &#x000B1; 9% for 80% coral cover (Figure <xref ref-type="fig" rid="F5">5</xref>). Comparison of rates of nighttime net respiration to daytime net production revealed that the balance between net respiration and net production shifts toward the former as coral cover increases (inset on Figure <xref ref-type="fig" rid="F5">5</xref>). Consequently, daily positive net community production remained relatively similar between treatments.</p>
<fig id="F5" position="float">
<label>Figure 5</label>
<caption><p>Scaled NCC <bold>(A)</bold> and NCP <bold>(B)</bold> rates vs. coral cover treatments for Hawaii 2016 with linear regressions and shaded 95% confidence intervals during day and night. Separate linear regressions were performed for NCP day and night to show scaled rates for NCP<sub>Night</sub> (net respiration, <bold>B</bold>, bottom panel) and NCP<sub>Day</sub> (net organic carbon production, (<bold>B</bold>, top panel). The inset shows the daytime NCP rates as well as the difference between day and night NCP rates (dashed line), which essentially is a relative estimate of the integrated daily net production rate relative to daytime NCP in the 100% coral cover treatment.</p></caption>
<graphic xlink:href="fmars-04-00161-g0005.tif"/>
</fig>
</sec>
<sec>
<title>Seawater carbonate chemistry</title>
<p>Net calcification and net respiration at night resulted in low seawater pH and &#x003A9;<sub>a</sub> and high pCO<sub>2</sub> while net organic carbon production during the day elevated seawater pH and &#x003A9;<sub>a</sub>, and decreased pCO<sub>2</sub> (Figure <xref ref-type="fig" rid="F4">4</xref>). Interestingly, there were noticeable differences in seawater carbonate chemistry between different coral cover treatments at night but not during the day. Seawater pH for coral cover treatments was lower than control at night and had minimum pH ranging from 7.89 &#x000B1; 0.00 (20% coral cover) to 7.84 &#x000B1; 0.01 (80 and 100% coral cover). During the day, control pH reached a maximum of 7.96 &#x000B1; 0.01 while the coral cover treatments had pH values 0.01&#x02013;0.03 higher than the control. The diel variability of seawater pH was lowest for the control (0.04) and increased with increasing coral cover (0.08 for 20% coral cover to 0.14 for 100% coral cover). Maximum seawater pCO<sub>2</sub> occurred at the end of the night, just before sunrise. The control reached a maximum pCO<sub>2</sub> of 539.0 &#x000B1; 3.5 &#x003BC;atm while coral cover treatment maxima ranged from 577.0 &#x000B1; 4.2 (20% coral cover) to 662.0 &#x000B1; 14.4 &#x003BC;atm (100% coral cover). Minimum seawater pCO<sub>2</sub> was observed at midday with coral cover treatments having lower pCO<sub>2</sub> relative to the control. As with seawater pH, these diel trends led to increasing variability of pCO<sub>2</sub> with increasing coral cover. Coral cover treatments had the lowest &#x003A9;<sub>a</sub> during the night with minimum values of 2.48 &#x000B1; 0.02 (20% coral cover) to 2.23 &#x000B1; 0.04 (100% coral cover) and these were lower than the minimum value for the control (2.62 &#x000B1; 0.01). During the day, coral cover treatments had slightly higher seawater &#x003A9;<sub>a</sub> relative to control values. The diel variability of seawater &#x003A9;<sub>a</sub> was lowest for the control (0.27) and increased with increasing coral cover (0.49&#x02013;0.71 for 20 and 100% coral cover, respectively). Although the magnitude of changes observed in seawater TA and DIC differed between treatments (Figure <xref ref-type="fig" rid="F6">6</xref>), there were no differences between the slopes of TA:DIC ratios [ANOVA, <italic>F</italic><sub>(4, 5)</sub> &#x0003D; 0.271, <italic>p</italic> &#x0003D; 0.885; Figure <xref ref-type="fig" rid="F7">7</xref>]. These slopes ranged from 0.43 &#x000B1; 0.10 for 40% coral cover to 0.54 &#x000B1; 0.24 for 80% coral cover. This resulted in a pH range of 7.8&#x02013;8.0 and pCO<sub>2</sub> range of 400&#x02013;800 &#x003BC;atm for all coral densities.</p>
<fig id="F6" position="float">
<label>Figure 6</label>
<caption><p>nTA:nDIC plots with pH and pCO<sub>2</sub> isolines for Bermuda 2012 <bold>(A)</bold> and Hawaii 2016 <bold>(B)</bold>. Seawater pH and pCO<sub>2</sub> was calculated using nDIC, nTA, and average temperature and salinity for each site. The colored symbols show coral cover treatments (black cross: 0%, red circle: 20%, orange square: 40%, aqua diamond: 60%, blue triangle: 80% and pink inverted triangle: 100%) for both experiments. The colored lines show Type II Linear Regressions for each coral community.</p></caption>
<graphic xlink:href="fmars-04-00161-g0006.tif"/>
</fig>
<fig id="F7" position="float">
<label>Figure 7</label>
<caption><p>Average (&#x000B1; 1 std) nTA:nDIC slopes from Type II Linear Regressions of the Hawaii mesocosm data. There were no statistical significant differences between coral cover treatments [ANOVA, <italic>F</italic><sub>(4, 5)</sub> &#x0003D; 0.271, <italic>p</italic> &#x0003D; 0.885].</p></caption>
<graphic xlink:href="fmars-04-00161-g0007.tif"/>
</fig>
</sec>
</sec>
<sec>
<title><italic>In situ</italic> surface seawater CO<sub>2</sub> measurements in Bermuda and Hawaii</title>
<p>In general, <italic>in situ</italic> observations showed that reefs with higher coral cover experienced greater diel variability in seawater CO<sub>2</sub> than reefs with lower coral cover (Figure <xref ref-type="fig" rid="F8">8</xref>). Crescent Reef, which had the lowest coral cover, experienced a mean xCO<sub>2</sub> of 483.6 &#x003BC;mol mol<sup>&#x02212;1</sup> and a range of 455.2&#x02013;521.8 &#x003BC;mol mol<sup>&#x02212;1</sup>. Hog Reef had slightly higher mean xCO<sub>2</sub> (501.5 &#x003BC;mol mol<sup>&#x02212;1</sup>) and range (444.9&#x02013;574.8 &#x003BC;mol mol<sup>&#x02212;1</sup>) compared to Crescent Reef. The larger range of CO<sub>2</sub> at Hog Reef can be attributed to nighttime maxima always being greater than Crescent Reef whereas daytime minima were similar to or slightly lower than Crescent Reef. However, both reefs always had higher xCO<sub>2</sub> than the atmosphere, which averaged 385 &#x003BC;mol mol<sup>&#x02212;1</sup>. The reef in Kaneohe Bay experienced a much greater range of xCO<sub>2</sub> compared to the reefs in Bermuda with both nighttime maxima and daytime minima higher and lower, respectively. The minimum value during the study period was 306.0 &#x003BC;mol mol<sup>&#x02212;1</sup> while the maximum was 691.0 &#x003BC;mol mol<sup>&#x02212;1</sup> with a mean of 473.5 &#x003BC;mol mol<sup>&#x02212;1</sup>. The average seawater temperature in Bermuda was 29.3&#x000B0;C with a 1.5&#x000B0;C range while Hawaii was slightly cooler (mean &#x0003D; 26.4&#x000B0;C) and experienced a larger range of 4&#x000B0;C. Both regions had semidiurnal tides with a tidal range less than or equal to 1 m. Wind speed and direction were variable in Bermuda while east to northeasterly trade winds dominated in Hawaii during the time frames examined (Figure <xref ref-type="fig" rid="F8">8</xref>).</p>
<fig id="F8" position="float">
<label>Figure 8</label>
<caption><p><italic>In situ</italic> xCO<sub>2</sub>(&#x003BC;mol mol<sup>&#x02212;1</sup>) and environmental conditions including seawater temperature, tidal range, and wind speed and direction that may influence xCO<sub>2</sub> variability for different reefs in Bermuda (left panel, <bold>A&#x02013;D</bold>) and Hawaii (right panel, <bold>E&#x02013;H</bold>) over 12 consecutive days overlapping the mesocosm experimental periods during 2012 and 2016, respectively. The xCO<sub>2</sub> for both the atmosphere (black lines) and seawater (colored lines) are shown <bold>(A,E)</bold>. Crescent Reef (orange circles) has the lowest coral cover while the reef in Hawaii (Kaneohe Bay barrier reef; magenta circles) has the highest coral cover.</p></caption>
<graphic xlink:href="fmars-04-00161-g0008.tif"/>
</fig>
</sec>
</sec>
<sec sec-type="discussion" id="s4">
<title>Discussion</title>
<p>This study was designed to test hypotheses relevant for the scaling of NCC and NCP rates and their influence on seawater carbonate chemistry for different coral densities. Higher coral density sometimes, but not always led to higher NCC and NCP rates that scaled with increases in coral cover. In Bermuda, the higher coral density treatment (80%) did not have statistically significantly higher average daytime NCC or NCP rates (H1) compared to the low coral density (40%) treatment. Consequently, no significantly different influences on seawater carbonate chemistry were observed between low and high coral cover for this experiment (H2). In contrast, higher coral cover did lead to statistically higher average NCC and NCP rates in Hawaii (H1). Furthermore, these increases were roughly linearly proportional to the increases in coral cover for NCC and NCP<sub>Night</sub>. That is, a doubling in coral cover doubled the rate of NCC and the rate of nighttime net respiration (-NCP) (H1). NCP<sub><italic>Day</italic></sub> also increased with increasing coral cover, but was not directly proportional to the percent increase in cover. Notably, the observed increases in metabolic rates led to increases in diel variability of seawater pH, pCO<sub>2</sub>, and &#x003A9;<sub>a</sub> (H2). Likewise, field measurements of seawater xCO<sub>2</sub> in Bermuda and Hawaii showed greater diel ranges for reef areas with higher coral cover. We discuss these results further in the subsequent sections.</p>
<sec>
<title>Coral density and benthic metabolic rates</title>
<p>The first experiment conducted in Bermuda during 2012 showed no significant difference between daytime NCC and NCP rates between two coral cover treatments. In addition, NCC rates remained relatively low and did not follow a clear diurnal cycle (average of 2.68 and 3.40 mmol m<sup>&#x02212;2</sup> h<sup>&#x02212;1</sup> for 40 and 80% coral cover, respectively), while NCP rates tracked light and temperature closely with the highest rates occurring in the late afternoon. These results were unexpected as we had anticipated high coral cover to have significantly higher metabolic rates than low coral cover (Kleypas et al., <xref ref-type="bibr" rid="B62">2011</xref>). We had also expected NCC rates to track variations in light intensity and NCP due to light and/or production enhanced calcification (e.g., Vandermeulen et al., <xref ref-type="bibr" rid="B96">1972</xref>; Gattuso et al., <xref ref-type="bibr" rid="B45">1999</xref>; Albright et al., <xref ref-type="bibr" rid="B1">2015</xref>; Cohen et al., <xref ref-type="bibr" rid="B22">2016</xref>). However, the observed variability in NCC and NCP rates between treatments was high, masking any potential systematic differences (Figure <xref ref-type="fig" rid="F3">3</xref>). It is likely this variability was partly related to insufficient control and characterization of flow rates, and therefore residence time within the mesocosms, which has a large influence on calculations of NCC and NCP. Furthermore, shading cloth intended to moderate temperatures in the mesocosms resulted in low light intensities that only reached a maximum of 325 &#x003BC;mol photons m<sup>&#x02212;2</sup> h<sup>&#x02212;1</sup>. This may have resulted in metabolic rates that were insufficient to distinguish differences between the two treatments. In addition, limited light conditions may also explain the low and temporally flat NCC rates despite a distinct temporal trend in NCP, since photosynthesis and light enhanced calcification could respond differently to different wavelengths and intensity of light (Cohen et al., <xref ref-type="bibr" rid="B22">2016</xref>). However, additional studies would be required to evaluate whether this could have been the case. Compared to the Hawaii experiments conducted under higher light conditions (max &#x0007E;1,700 &#x003BC;mol photons m<sup>&#x02212;2</sup> h<sup>&#x02212;1</sup>), NCP rates for the Bermuda experiment were much lower although the qualitative trend and difference between treatments were similar to the Hawaii experiments (Figure <xref ref-type="fig" rid="F2">2</xref>). Regardless of the shortcomings of this experiment, the results represent metabolic rates of two coral density treatments and their influence on seawater carbonate chemistry under the reported conditions, which could naturally be experienced <italic>in situ</italic> on cloudy days or at deeper depths. The results also provide important information to be considered in the interpretation of other studies as well as in the design of future experiments.</p>
<p>Because of the somewhat inconclusive results achieved in Bermuda, the follow-up study in Hawaii was designed using the mesocosm facility at HIMB, which experiences full exposure to sunlight and has a proven ability to control seawater flow rates (Andersson et al., <xref ref-type="bibr" rid="B4">2009</xref>; Page et al., <xref ref-type="bibr" rid="B80">2016</xref>). Using more different coral cover treatments and full diel cycles also allowed a more incisive investigation into the effects of coral densities on benthic metabolism and seawater carbonate chemistry. In contrast to the Bermuda experiments, these experiments showed statistically significant increasing rates of NCC and NCP as a function of increasing coral cover. In addition, both NCC and NCP followed the light cycle with lower rates at night and higher rates during the day as expected based on previous mesocosm experiments at HIMB (Jokiel et al., <xref ref-type="bibr" rid="B56">2014</xref>; Page et al., <xref ref-type="bibr" rid="B80">2016</xref>). Coral communities typically maintained net calcification (positive NCC) throughout the experiments with a few instances of net CaCO<sub>3</sub> dissolution for the lower coral cover communities (20 and 40%) during the night. Interestingly, rates of NCC and NCP<sub>night</sub> scaled directly to coral cover while NCP<sub>day</sub> did not (Figure <xref ref-type="fig" rid="F5">5</xref>). Because rates of respiration are linked to body size and metabolic demand, the proportional link between coral cover and NCP<sub>night</sub> seems reasonable. The same might be true for NCC assuming that this rate is directly linked to the energetic expenditure of the colonies within a community. However, this relationship between body size and metabolic demand for NCC would imply that communities with low coral cover require more energy to calcify or can store more energy for other processes than high coral cover since NCP<sub>day</sub> rates were proportionally higher for low coral cover compared to high coral cover communities. For example, the 20% coral cover treatment had NCP<sub><italic>day</italic></sub> rates on average approximately half of the rates for the 100% coral cover treatment, but maintained NCC rates at &#x0007E;20% of the rates observed in the 100% treatment. One possibility is that higher coral cover may have depleted the availability of resources (e.g, inorganic macro-nutrients) necessary for primary production, thus leading to proportionally lower NCP in these treatments. Mesocosms with higher coral cover also contained more complex topography, which could result in shading of some coral colonies and/or different boundary layer thicknesses (Shashar et al., <xref ref-type="bibr" rid="B84">1996</xref>; Hearn et al., <xref ref-type="bibr" rid="B48">2001</xref>), which could affect rates of primary production (Dennison and Barnes, <xref ref-type="bibr" rid="B32">1988</xref>). Furthermore, intra- and inter-specific interactions in high coral density could reduce rates of physiological processes as organisms cope with stress and/or divert energy resources toward defense mechanisms against competitors (Rinkevich and Loya, <xref ref-type="bibr" rid="B82">1985</xref>; Tanner, <xref ref-type="bibr" rid="B94">1997</xref>). Regardless of the various factors that may have influenced the metabolic rates, it is unclear why NCC scaled proportionally with coral cover while NCP<sub><italic>day</italic></sub> did not. Time may also be a factor with potential lag in responses that are not detected over the diel timescale of the current experiments. Experiments of longer duration could potentially reveal different relationships and scaling of metabolic rates in response to variations in environmental parameters. Our initial results indicate that additional studies are warranted to better understand how different environmental and physical properties interact and influence benthic metabolic rates.</p>
</sec>
<sec>
<title>Coral density and seawater carbonate chemistry</title>
<p>In general, positive NCC and negative NCP at night led to seawater acidification while positive NCP exceeding NCC during the day promoted alkalinization for most treatments (Figure <xref ref-type="fig" rid="F4">4</xref>). Intuitively, one might anticipate that higher coral cover and higher rates of NCC and NCP would lead to significantly different seawater pH, pCO<sub>2</sub>, and &#x003A9;<sub>a</sub> as well as different diel amplitude and variability, but this was not always the case. Naturally, for the Bermuda experiments, no differences in seawater pH, pCO<sub>2</sub>, and &#x003A9;<sub>a</sub> were observed between coral densities because NCC and NCP rates were not significantly different. However, even for the Hawaii experiments, no significant differences were observed in these parameters between coral density treatments during the day despite significantly different NCC and NCP rates. In contrast, seawater pH and &#x003A9;<sub>a</sub> were progressively lower and pCO<sub>2</sub> higher with increasing coral cover at night, which resulted from increased net respiration and positive NCC as a function of higher coral cover. As a result of the differential influence by communities with different coral densities on seawater chemistry at night, the daily average pH and &#x003A9;<sub>a</sub>, and the diel variability of these parameters decreased and increased slightly, respectively, with increasing coral cover.</p>
<p>Deffeyes diagrams (Deffeyes, <xref ref-type="bibr" rid="B30">1965</xref>) provide a useful tool to understand the observed trends in carbonate chemistry and illuminate differences in diel variability of seawater pH, pCO<sub>2</sub>, and &#x003A9;<sub>a</sub> between coral cover treatments. These diagrams graphically depict seawater carbonate chemistry parameters (i.e., pH, &#x003A9;<sub>a</sub>, and pCO<sub>2</sub>) as a function of variations in TA and DIC owing to modification by biogeochemical processes such as NCC and NCP (Watanabe et al., <xref ref-type="bibr" rid="B98">2006</xref>; Andersson and Gledhill, <xref ref-type="bibr" rid="B2">2013</xref>). Depending on the slope of the TA-DIC relationship, one can infer the relative importance of organic to inorganic carbon cycling (i.e., NCP vs. NCC) with slopes less than &#x0007E;1 indicating higher dominance by organic carbon cycling. In this study, the overall slopes of the vectors were always less than 1 for the duration of the experiments. Some of the observed variability in TA-DIC slopes could be accounted for by changes in the source water, but in general this was small compared to the changes due to metabolic processes within the mesocosms (Figure <xref ref-type="fig" rid="F6">6</xref>). Although TA-DIC slopes were similar across treatments, there was consistently lower TA with increasing coral cover owing to higher NCC rates, which combined with more negative NCP rates during night, led to differences in the daily mean and the range of variability of seawater pH, pCO<sub>2</sub>, and &#x003A9;<sub>a</sub> between treatments. At night, positive NCC and negative NCP acted additively in modifying seawater carbonate chemistry parameters while during the day, positive NCC and positive NCP counteracted the influence on these parameters (Page et al., <xref ref-type="bibr" rid="B80">2016</xref>). Consequently, both the absolute NCC and NCP rates and the relative balance between these processes, which combined modify the seawater TA and DIC balance, are important to consider in evaluating the influence of biogeochemical processes on seawater pH, pCO<sub>2</sub>, and &#x003A9;<sub>a</sub> (Andersson and Gledhill, <xref ref-type="bibr" rid="B2">2013</xref>).</p>
<p>Similar to the mesocosm results, natural coral reefs with higher coral cover experienced greater diel ranges of seawater CO<sub>2</sub> concentrations relative to reefs with lower coral cover. In Bermuda, observations of seawater CO<sub>2</sub> from Crescent and Hog Reefs qualitatively agreed with the mesocosm results with large differences at night, but similar conditions during the day between the two reef sites. At this time, it is not our intention to fully assess the <italic>in situ</italic> variability and quantitatively compare it to the mesocosm results, as additional data are required (see for example, Kayanne et al., <xref ref-type="bibr" rid="B61">2005</xref>); however, initial assessments show that the range of <italic>in situ</italic> CO<sub>2</sub> and temperatures are comparable to values measured in the mesocosm experiments. Compared to the mesocosms, additional biological and physical factors influence seawater carbonate chemistry on natural coral reefs. Even though coral cover is the only biological metric reported here, additional functional groups (e.g., calcifying algae, fleshy macroalgae, and sand) differed between each reef site, but were not included in the mesocosms. The magnitude of the influence by benthic metabolism on seawater carbonate chemistry is likely to depend on benthic community composition. Previous mesocosm and flume studies have shown differential modification of seawater pCO<sub>2</sub>, pH, and &#x003A9;<sub>a</sub>(Anthony et al., <xref ref-type="bibr" rid="B9">2011</xref>, <xref ref-type="bibr" rid="B8">2013</xref>; Page et al., <xref ref-type="bibr" rid="B80">2016</xref>) between fleshy algae, crustose coralline algae, coral, and sand communities due to differences in benthic metabolic rates. Although benthic metabolism typically has a large influence on the magnitude of CO<sub>2</sub> changes on a reef, physical drivers such as water depth, residence time, tidal flow, wind speed, and wave forcing strongly influence this variability as well (Suzuki and Kawahata, <xref ref-type="bibr" rid="B91">2003</xref>; Drupp et al., <xref ref-type="bibr" rid="B36">2013</xref>; Falter et al., <xref ref-type="bibr" rid="B42">2013</xref>). Furthermore, air-sea gas exchange (Bates et al., <xref ref-type="bibr" rid="B15">2001</xref>; Fagan and Mackenzie, <xref ref-type="bibr" rid="B41">2007</xref>) and terrestrial influences (Kawahata et al., <xref ref-type="bibr" rid="B60">2000</xref>; Suzuki and Kawahata, <xref ref-type="bibr" rid="B91">2003</xref>; Drupp et al., <xref ref-type="bibr" rid="B35">2011</xref>; Massaro et al., <xref ref-type="bibr" rid="B75">2012</xref>; Cyronak et al., <xref ref-type="bibr" rid="B28">2013</xref>) must also be considered as they may differ greatly between Bermuda and Hawaii (particularly terrestrial inputs). The Kaneohe Bay reef system is more strongly dominated by organic carbon cycling than inorganic carbon cycling (Massaro et al., <xref ref-type="bibr" rid="B75">2012</xref>) while the opposite is true for the Bermuda reefs (Andersson et al., <xref ref-type="bibr" rid="B7">2014</xref>). Consequently, additional studies would be required to tease apart the exact drivers of seawater CO<sub>2</sub> variability on these reefs and to determine the <italic>in situ</italic> relative importance of coral cover and other benthic components to this variability.</p>
</sec>
<sec>
<title>Integrating effects across scales to predict coral reef response to environmental changes</title>
<p>The results from this study highlight the need to develop a more comprehensive understanding of how metabolic processes and the subsequent effects on seawater carbonate chemistry integrate across functional, spatial, and temporal scales. Community scale mesocosm experiments provide an intermediate step between experiments with individual coral colonies and natural reef communities, and provide valuable insight into drivers of benthic community metabolism (e.g., coral cover, community composition, flow rates, and resource availability) (Anthony et al., <xref ref-type="bibr" rid="B8">2013</xref>; Page et al., <xref ref-type="bibr" rid="B80">2016</xref>). However, the question remains: how do these results translate to an entire reef system across different temporal and spatial scales? In this study, altering coral cover alone in mesocosms did not always change the influence on the magnitude of the variability of diel seawater pCO<sub>2</sub>, pH, and &#x003A9;<sub>a</sub>, but natural reefs with variable coral cover exhibited significantly different diel variability in seawater CO<sub>2</sub>. It is clear from the current results that additional processes need to be considered to account for the <italic>in situ</italic> observations, which may include water depth, water flow, and the major functional groups&#x00027; relative composition and metabolism. Nonetheless, the process of comparing results from controlled laboratory experiments with <italic>in situ</italic> observations is a necessary first step of developing a more sophisticated model that is able to account for the observed variability in the natural environment. Combined with refinement and application of existing ecological theory, this approach provides an initial foundation to integrate metabolic rates across functional, spatial and temporal scales (Andersson et al., <xref ref-type="bibr" rid="B3">2015</xref>; Edmunds et al., <xref ref-type="bibr" rid="B37">2016</xref>; Shaw et al., <xref ref-type="bibr" rid="B85">2016</xref>). Being able to integrate metabolic rates across scales will be critical to predict how coral reefs as a whole will respond to environmental perturbations, such as climate change and OA. The magnitude of OA will, at the local scale, partly depend on benthic metabolism and how it modifies seawater carbonate chemistry (Anthony et al., <xref ref-type="bibr" rid="B9">2011</xref>, <xref ref-type="bibr" rid="B8">2013</xref>; Kleypas et al., <xref ref-type="bibr" rid="B62">2011</xref>; Jokiel et al., <xref ref-type="bibr" rid="B56">2014</xref>; Page et al., <xref ref-type="bibr" rid="B80">2016</xref>). Therefore, research priorities should first aim to understand the relationships between community composition, benthic metabolism and seawater carbonate chemistry, then how physical forcing/processes alter the &#x0201C;apparent&#x0201D; response of the seawater to the specific community metabolism and, finally, how these relationships are modified by climate change and OA. The pathway to accurately being able to scale results between different functional, spatial, and temporal levels will require a range of research approaches integrating laboratory experiments with field observations and numerical modeling, but these efforts will be essential to advance our understanding regarding the future impacts of climate change and OA on these important systems (Andersson et al., <xref ref-type="bibr" rid="B3">2015</xref>). One of the main challenges is related to the fact that different processes and drivers of net reef metabolism operate on different temporal and spatial scales, and perhaps this can only fully be accounted for by a well-defined numerical model integrating physical, ecological and biogeochemical processes.</p>
</sec>
</sec>
<sec id="s5">
<title>Author contributions</title>
<p>HP and AA designed the study, analyzed the results, and wrote the initial draft of the manuscript. HP, TC, and AC conducted the experiments. ED contributed data. All authors contributed to writing of the revised manuscript.</p>
<sec>
<title>Conflict of interest statement</title>
<p>The authors declare that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.</p>
</sec>
</sec>
</body>
<back>
<ack><p>We would like to thank Melissa Wartman and Noah Howins for assistance with preparing and conducting these mesocosm experiments in Bermuda and Hawaii as well as Kyra Freeman for help with analyzing seawater samples. We would also like to thank the reviewers for their comments which greatly improved the original version of this paper. This paper is funded in part by a grant/cooperative agreement from the National Oceanic and Atmospheric Administration, Project R/IR-27, which is sponsored by the University of Hawaii Sea Grant College Program, SOEST, under Institutional Grant No. NA14OAR4170071 from NOAA Office of Sea Grant, Department of Commerce. The views expressed herein are those of the author(s) and do not necessarily reflect the views of NOAA or any of its subagencies. UNIHI-SEAGRANT-JC-17-01.</p>
</ack>
<sec sec-type="supplementary-material" id="s6">
<title>Supplementary material</title>
<p>The Supplementary Material for this article can be found online at: <ext-link ext-link-type="uri" xlink:href="http://journal.frontiersin.org/article/10.3389/fmars.2017.00161/full#supplementary-material">http://journal.frontiersin.org/article/10.3389/fmars.2017.00161/full#supplementary-material</ext-link></p>
<supplementary-material xlink:href="Image1.TIF" id="SM1" mimetype="image/tif" xmlns:xlink="http://www.w3.org/1999/xlink"/>
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<fn-group>
<fn fn-type="financial-disclosure">
<p><bold>Funding.</bold> NSF GRFP (HP, TC); NSF OCE 09-28406; NSF OCE 12-55042 (AA), NOAA: NA14OAR4170071, Project R/IR-27, University of Hawaii Sea Grant College Program (ED).</p>
</fn>
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</article>