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<article xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink" article-type="discussion">
<front>
<journal-meta>
<journal-id journal-id-type="publisher-id">Front. Bioeng. Biotechnol.</journal-id>
<journal-title>Frontiers in Bioengineering and Biotechnology</journal-title>
<abbrev-journal-title abbrev-type="pubmed">Front. Bioeng. Biotechnol.</abbrev-journal-title>
<issn pub-type="epub">2296-4185</issn>
<publisher>
<publisher-name>Frontiers Media S.A.</publisher-name>
</publisher>
</journal-meta>
<article-meta>
<article-id pub-id-type="doi">10.3389/fbioe.2014.00007</article-id>
<article-categories>
<subj-group subj-group-type="heading">
<subject>Bioengineering and Biotechnology</subject>
<subj-group>
<subject>Opinion Article</subject>
</subj-group>
</subj-group>
</article-categories>
<title-group>
<article-title>Cyanobacteria as an Experimental Platform for Modifying Bacterial and Plant Photosynthesis</article-title>
</title-group>
<contrib-group>
<contrib contrib-type="author">
<name><surname>Jensen</surname> <given-names>Poul Erik</given-names></name>
<xref ref-type="aff" rid="aff1"><sup>1</sup></xref>
<uri xlink:href="http://frontiersin.org/people/u/103067"/>
</contrib>
<contrib contrib-type="author" corresp="yes">
<name><surname>Leister</surname> <given-names>Dario</given-names></name>
<xref ref-type="aff" rid="aff1"><sup>1</sup></xref>
<xref ref-type="aff" rid="aff2"><sup>2</sup></xref>
<xref ref-type="corresp" rid="cor1">&#x0002A;</xref>
<uri xlink:href="http://frontiersin.org/people/u/48818"/>
</contrib>
</contrib-group>
<aff id="aff1"><sup>1</sup><institution>Copenhagen Plant Science Center (CPSC), Department of Plant and Environmental Sciences, University of Copenhagen</institution>, <addr-line>Copenhagen</addr-line>, <country>Denmark</country></aff>
<aff id="aff2"><sup>2</sup><institution>Plant Molecular Biology (Botany), Department of Biology I, Ludwig-Maximilians-University Munich</institution>, <addr-line>Munich</addr-line>, <country>Germany</country></aff>
<author-notes>
<fn fn-type="edited-by"><p>Edited by: Anne M. Ruffing, Sandia National Laboratories, USA</p></fn>
<fn fn-type="edited-by"><p>Reviewed by: Anne M. Ruffing, Sandia National Laboratories, USA; Aaron M. Collins, Los Alamos National Laboratory, USA</p></fn>
<corresp content-type="corresp" id="cor1">&#x0002A;Correspondence: <email>leister&#x00040;lmu.de</email></corresp>
<fn fn-type="other" id="fn001"><p>This article was submitted to Synthetic Biology, a section of the journal Frontiers in Bioengineering and Biotechnology.</p></fn>
</author-notes>
<pub-date pub-type="epub">
<day>21</day>
<month>04</month>
<year>2014</year>
</pub-date>
<pub-date pub-type="collection">
<year>2014</year>
</pub-date>
<volume>2</volume>
<elocation-id>7</elocation-id>
<history>
<date date-type="received">
<day>23</day>
<month>03</month>
<year>2014</year>
</date>
<date date-type="accepted">
<day>03</day>
<month>04</month>
<year>2014</year>
</date>
</history>
<permissions>
<copyright-statement>Copyright &#x000A9; 2014 Jensen and Leister.</copyright-statement>
<copyright-year>2014</copyright-year>
<license license-type="open-access" xlink:href="http://creativecommons.org/licenses/by/3.0/"><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>
<kwd-group>
<kwd>carboxysome</kwd>
<kwd>chloroplast</kwd>
<kwd>genetic engineering</kwd>
<kwd>photosynthesis</kwd>
<kwd><italic>Synechocystis</italic></kwd>
<kwd>synthetic biology</kwd>
</kwd-group>
<counts>
<fig-count count="0"/>
<table-count count="1"/>
<equation-count count="0"/>
<ref-count count="29"/>
<page-count count="4"/>
<word-count count="3326"/>
</counts>
</article-meta>
</front>
<body>
<p>One of the fascinating characteristics of photosynthesis is its capacity for repair, self-renewal, and energy storage within chemical bonds. Given the evolutionary history of plant photosynthesis and the patchwork nature of many of its components, it is safe to assume that the light reactions of plant photosynthesis can be improved by genetic engineering (Leister, <xref ref-type="bibr" rid="B13">2012</xref>). The evolutionary precursor of chloroplasts was a microorganism whose biochemistry was very similar to that of present-day cyanobacteria. Many cyanobacterial species are easy to manipulate genetically and grow robustly in liquid cultures that can be easily scaled up into photobioreactors. Therefore, cyanobacteria such as <italic>Synechocystis</italic> sp. PCC 6803 (hereafter &#x0201C;<italic>Synechocystis</italic>&#x0201D;) have widely been used for decades as model systems to study the principles of photosynthesis (Table <xref ref-type="table" rid="T1">1</xref>). Indeed, genetic engineering based on homologous recombination is well-established in <italic>Synechocystis</italic>. Moreover, new genetic engineering toolkits, including marker-less gene deletion and replacement strategies needing only a single transformation step (Viola et al., <xref ref-type="bibr" rid="B26">2014</xref>) and novel approaches for chromosomal integration and expression of synthetic gene operons (Bentley et al., <xref ref-type="bibr" rid="B3">2014</xref>), allow for large-scale replacement and/or integration of dozens of genes in reasonable time frames. This makes <italic>Synechocystis</italic> a very attractive basis for the experimental modification of important processes like photosynthesis, and it also suggests innovative ways of improving modules of related eukaryotic pathways, among them the combination of cyanobacterial and eukaryotic elements using the tools of synthetic biology.</p>
<table-wrap position="float" id="T1">
<label>Table 1</label>
<caption><p><bold>Characteristics of current model systems for photosynthesis</bold>.</p></caption>
<table frame="hsides" rules="groups">
<thead>
<tr>
<th align="left">Organism</th>
<th align="center">&#x02003;&#x02003;&#x02009;Type of photo-synthesis<xref ref-type="table-fn" rid="tfn1"><sup>a</sup></xref></th>
<th align="center">&#x02009;Homologous recombination</th>
<th align="center">Life cycle</th>
<th align="center">&#x02003;&#x02003;Shot-gun complementation</th>
<th align="center">Heterotrophic&#x02009;propagation</th>
</tr>
</thead>
<tbody>
<tr>
<td align="left"><italic>Synechocystis</italic></td>
<td align="center">Prokaryotic</td>
<td align="center">Yes</td>
<td align="center">&#x0003C;1&#x02009;day</td>
<td align="center">Yes</td>
<td align="center">Yes</td>
</tr>
<tr>
<td align="left"><italic>Chlamydomonas</italic></td>
<td align="center">Eukaryotic</td>
<td align="center">No</td>
<td align="center">&#x0003C;1&#x02009;day</td>
<td align="center">No</td>
<td align="center">Yes</td>
</tr>
<tr>
<td align="left"><italic>Physcomitrella</italic></td>
<td align="center">Eukaryotic</td>
<td align="center">Yes</td>
<td align="center">Several weeks</td>
<td align="center">No</td>
<td align="center">Restricted<xref ref-type="table-fn" rid="tfn2"><sup>b</sup></xref></td>
</tr>
<tr>
<td align="left"><italic>Arabidopsis</italic></td>
<td align="center">Eukaryotic</td>
<td align="center">No</td>
<td align="center">Several months</td>
<td align="center">No</td>
<td align="center">Restricted<xref ref-type="table-fn" rid="tfn2"><sup>b</sup></xref></td>
</tr>
</tbody>
</table>
<table-wrap-foot>
<fn id="tfn1"><p><italic><sup>a</sup>This distinction refers to the presence of phycobilisomes (&#x0201C;prokaryotic&#x0201D;) or Lhc proteins (&#x0201C;eukaryotic&#x0201D;) and associated regulatory differences</italic>.</p></fn>
<fn id="tfn2"><p><italic><sup>b</sup>Refers to non-photoautotrophic mutants</italic>.</p></fn>
</table-wrap-foot>
</table-wrap>
<sec id="S1">
<title>Improving the Photosynthetic Light Reactions in Cyanobacteria</title>
<p>In plants, the activity of the Calvin cycle (in particular the RuBisCO-mediated carbon fixation step) is considered to represent the major brake on photosynthetic efficiency under saturating irradiance and limiting CO<sub>2</sub> concentrations (Quick et al., <xref ref-type="bibr" rid="B21">1991</xref>; Stitt et al., <xref ref-type="bibr" rid="B24">1991</xref>; Furbank et al., <xref ref-type="bibr" rid="B7">1996</xref>). Autotrophic growth of <italic>Synechocystis</italic>, on the other hand, is constrained by the rate of phosphoglycerate reduction, owing to limitations on the ATP/NADPH supply from the light reactions (Marcus et al., <xref ref-type="bibr" rid="B15">2011</xref>). In fact, cyanobacteria cannot absorb all incoming sunlight due to light reflection, dissipation, and shading effects. In some cases, significant numbers of the photons absorbed by the antennae are not used for energy conversion due to dissipation mechanisms. It has therefore been proposed that uneven light distribution could be avoided by using cell cultures with smaller antenna sizes packed in high-density cell cultures, thus allowing good light penetration into the inner parts of the reactor. Proof of principle for this concept has been obtained in the green alga <italic>Chlamydomonas reinhardtii</italic> (Beckmann et al., <xref ref-type="bibr" rid="B2">2009</xref>), but antenna truncations in <italic>Synechocystis</italic> have so far failed to enhance biomass production (Page et al., <xref ref-type="bibr" rid="B19">2012</xref>). Indeed, increased truncations of phycobilisomes were associated with reductions in photoautotrophic productivity, which were attributed to marked decrease in the PSI:PSII ratio (Collins et al., <xref ref-type="bibr" rid="B5">2012</xref>).</p>
<p>A radically different approach to altering the light-harvesting capability of cyanobacteria and extending the range of wavelengths absorbed involves the introduction into cyanobacteria of the light-harvesting complex II (LHCII) of land plants. In principle, this should be a straightforward exercise, as the complex has a simple structure, containing in its minimal version essentially only one type of Lhcb polypeptide together with chlorophylls (Chl) a and b. Although <italic>Synechocystis</italic> strains that produce large amounts of Chl b in addition to the naturally occurring Chl a have been generated (Xu et al., <xref ref-type="bibr" rid="B27">2001</xref>), the expression of stable Lhcb proteins presents a problem, possibly because they do not fold correctly and are quickly degraded (He et al., <xref ref-type="bibr" rid="B8">1999</xref>). Thus, inefficient light-harvesting remains the principal barrier to high-efficiency <italic>Synechocystis</italic> biomass growth.</p>
</sec>
<sec id="S2">
<title>Improving the Photosynthetic Light Reactions of Plants in Cyanobacteria</title>
<p>The gain in photosynthetic efficiency, obtainable when, for instance, photosystems (PS) require less repair and photoprotection, should be significant. It is clear that crop plants and even model plants like <italic>Arabidopsis thaliana</italic> or <italic>Physcomitrella patens</italic> are the systems least suited for testing such approaches, given their long life cycle and inaccessibility to efficient (prokaryote-type) genetic engineering technologies (Table <xref ref-type="table" rid="T1">1</xref>). Therefore, redesigning plant PS will require novel model organisms in which such concepts can be implemented, tested, and reiteratively improved. Cyanobacteria, particularly <italic>Synechocystis</italic>, will play an important role in such attempts because of its superior genetic tractability. Thus, the long-term goal is to introduce elements of plant photosynthesis into model cyanobacteria like <italic>Synechocystis</italic> and optimize their effects by genetic engineering. Consequently, chimeric PS employing, for instance, plant cores and antenna complexes from algae could combine features from the whole range of diversity available in eukaryotes, while allowing their impacts to be tested and their properties to be optimized in a prokaryote. Besides the technical advantages of this strategy, it has the added attraction of delegating most of the required work with genetically modified organisms (GMOs) to <italic>Synechocystis</italic>. Reducing the transgenic work done directly in plants might also improve the acceptability of the approach to a public, which has proven to be, at best, skeptical of GMOs.</p>
</sec>
<sec id="S3">
<title>Improving CO<sub>2</sub> Fixation</title>
<p>Cyanobacteria, like plants and algae, use the Calvin cycle for assimilation of CO<sub>2</sub>. The first step in CO<sub>2</sub> assimilation is the carboxylase reaction catalyzed by RuBisCO, which results in the production of two molecules of 3-phosphoglycerate; one of these is recycled to regenerate ribulose-1,5-bisphosphate (RuBP), whereas the other is converted to biosynthesis of sugars, terpenoids, and fatty acids (Melis, <xref ref-type="bibr" rid="B16">2013</xref>). However, RuBisCO can also react with molecular O<sub>2</sub> in a process called photorespiration. This oxygenase reaction produces one molecule of 3-phosphoglycerate and one molecule of 2-phosphoglycolate, which acts as an inhibitor of enzymes involved in photosynthetic carbon fixation. Therefore, photorespiration reduces the overall efficiency and output of photosynthesis, since there is a net loss of both CO<sub>2</sub> and nitrogen.</p>
<p>Of the four distinct forms of RuBisCO (Andersson and Backlund, <xref ref-type="bibr" rid="B1">2008</xref>; Tabita et al., <xref ref-type="bibr" rid="B25">2008</xref>), form I is the most widespread, being found in plants, algae, and cyanobacteria. The cyanobacterial version comprises eight small (RbcS) and eight large (RbcL) subunits. Not surprisingly, RuBisCO is widely conserved across species, but some of its natural variants are slightly more effective than others. For instance, heterologous expression of RuBisCO from the purple-sulfur bacterium <italic>Allochromatium vinosum</italic> in <italic>Synechococcus elongatus</italic> sp. PCC 7942 increased CO<sub>2</sub> assimilation by almost 50% (Iwaki et al., <xref ref-type="bibr" rid="B10">2006</xref>). Therefore, metagenomic analysis of natural RuBisCO diversity may identify superior enzymes to be engineered into a cyanobacterial host for detailed characterization and platform improvement.</p>
<p>Besides its catalytic subunits RbcL and RbcS, RuBisCO seems to need the molecular chaperone RbcX for proper folding. In some cyanobacteria, the <italic>rbcX</italic> gene co-localizes with the genes encoding RbcL and RbcS in the chromosome. However, to what extent this chaperone is actually needed is still unclear, and the folding/assembly process needs further investigation (for a recent review, see Rosgaard et al., <xref ref-type="bibr" rid="B22">2012</xref>). In plants, activation of RuBisCO by RuBisCO activase is essential for catalysis; however, evidence of a requirement for RuBisCO activase for optimal function of cyanobacterial RuBisCO is lacking (Rosgaard et al., <xref ref-type="bibr" rid="B22">2012</xref>).</p>
<p>Although RuBisCO is the major enzyme responsible for carbon fixation, cyanobacteria possess an additional assimilation mechanism that accounts for nearly 25% of CO<sub>2</sub> fixation (Yang et al., <xref ref-type="bibr" rid="B28">2002</xref>). Phosphoenolpyruvate carboxylase (PEPC) catalyzes the reaction that fixes HCO<sub>3</sub><sup>&#x02212;</sup> on phosphoenolpyruvate (PEP) to form oxaloacetate and inorganic phosphate in the presence of Mg<sup>2&#x0002B;</sup> (O&#x02019;Leary, <xref ref-type="bibr" rid="B18">1982</xref>). This enzyme is widely distributed in all plants and many bacteria. Attempts to improve plant CO<sub>2</sub> fixation by expression of a cyanobacterial PEPC with diminished sensitivity to feedback inhibition have been unsuccessful; the resulting transgenic plants even showed decreased fitness (Chen et al., <xref ref-type="bibr" rid="B4">2004</xref>).</p>
<p>In the cytosol of cyanobacteria, RuBisCO is found in proteinaceous microcompartments known as carboxysomes (Kerfeld et al., <xref ref-type="bibr" rid="B11">2010</xref>). A carboxysome consists of a shell assembled from roughly 800 protein hexamers, forming the 20 facets of an icosahedron, and 12 pentamers that form its corners (Heinhorst et al., <xref ref-type="bibr" rid="B9">2006</xref>). The carboxysome encapsulates RuBisCO complexes and plays a central role in a mechanism that concentrates inorganic carbon providing enough CO<sub>2</sub> for the enzyme to favor the carboxylase reaction. In the cytosol, carbonic anhydrases convert CO<sub>2</sub> to HCO<sub>3</sub><sup>&#x02212;</sup>, thereby trapping the inorganic carbon species inside the cells. The carboxysome is rather impermeable to O<sub>2</sub>, but it readily takes up HCO<sub>3</sub><sup>&#x02212;</sup> (Price et al., <xref ref-type="bibr" rid="B20">2008</xref>). Inside the carboxysome, specialized carbonic anhydrases catalyze the release of CO<sub>2</sub> from the incoming HCO<sub>3</sub><sup>&#x02212;</sup>. The number of carboxysomes and the expression levels of carboxysome genes increase significantly when cyanobacterial cells are limited for CO<sub>2</sub> (Heinhorst et al., <xref ref-type="bibr" rid="B9">2006</xref>). Carboxysomes can potentially be exploited as synthetic compartments, similar to eukaryotic organelles, to rationally organize pathways or networks within a spatially distinct subsystem (Kerfeld et al., <xref ref-type="bibr" rid="B11">2010</xref>).</p>
<p>The terpenoid and fatty acid biosynthetic pathways receive only about 5 and 10% of the photosynthetically fixed carbon, respectively, and this allocation is constitutive but stringently regulated (Melis, <xref ref-type="bibr" rid="B16">2013</xref>). If photosynthetic organisms are to be used as a platform for pathways devoted to the biosynthesis of terpenoid- or fatty acid-derived products, this product-to-biomass carbon portioning must be increased significantly.</p>
</sec>
<sec id="S4">
<title>Synthetic Biology</title>
<p>The aim of synthetic biology is to engineer biological systems by designing and constructing novel modules to perform new functions for useful purposes. &#x0201C;Building blocks&#x0201D; (i.e., genes, enzymes, pathways, or regulatory circuits) in synthetic biology are thought of as modular, well-characterized biological parts that can be predictably combined to yield novel and complex cell-based systems following engineering principles (Endy, <xref ref-type="bibr" rid="B6">2005</xref>). In this context, the photosynthetic complexes (PS I and II) in the thylakoids of cyanobacteria can be regarded as building blocks, which can be integrated into novel biosynthetic pathways. Ideally, the biosynthetic pathway should be located in the thylakoids or at least in close proximity to the photosynthetic electron transfer chain, allowing the biosynthetic enzymes to tap directly into photosynthetic electron transport and energy generation, and even draw on carbon skeletons derived from CO<sub>2</sub> fixation. Recently, an entire cytochrome P450-dependent pathway has been relocated to the thylakoids of tobacco chloroplasts and shown to be driven directly by the reducing power generated by photosynthesis in a light-dependent manner (Zygadlo Nielsen et al., <xref ref-type="bibr" rid="B29">2013</xref>; Lassen et al., <xref ref-type="bibr" rid="B12">2014</xref>). This demonstrates the potential of transferring pathways for structurally complex chemicals to the chloroplast and using photosynthesis to drive the P450s with water as the primary electron donor.</p>
<p>Synthetic biology in cyanobacteria still lags behind conventional species such as <italic>E. coli</italic> and yeast in terms of molecular tools, defined parts, and product yields. Some progress has been made in redirecting photosynthetically fixed carbon toward commercially interesting compounds. The C<sub>5</sub> molecule isoprene is a volatile hydrocarbon that can be used as fuel and as a platform-chemical for production of synthetic rubber and high-value compounds. For photosynthetic generation of isoprene in cyanobacteria, the isoprene synthase gene from the plant <italic>Pueraria montana</italic> (kudzu) has been successfully expressed in <italic>Synechocystis</italic> and isoprene was indeed produced (Lindberg et al., <xref ref-type="bibr" rid="B14">2010</xref>). However, drastic metabolic engineering will be required to redirect carbon partitioning away from the dominant carbohydrate biosynthesis toward terpenoid biosynthesis. In fact, heterologous expression of the isoprene synthase in combination with the introduction of a non-native mevalonic acid pathway for increased carbon flux toward isopentenyl-diphosphate (IPP) and dimethylallyl-diphosphate (DMAPP) precursors of isoprene resulted in a 2.5-fold improvement in isoprene yield (Bentley et al., <xref ref-type="bibr" rid="B3">2014</xref>).</p>
<p>Tightly regulated and inducible protein expression is an important prerequisite for product yield and predictability in synthetic biology approaches. In this context, riboswitches are attracting increasing interest. Riboswitches are functional non-coding RNA molecules that play a crucial role in gene regulation at the transcriptional or post-transcriptional level in many bacteria (Roth and Breaker, <xref ref-type="bibr" rid="B23">2009</xref>). In general, the sensing domain (aptamer) of riboswitches is combined with a regulating domain. The regulating domain can comprise several types of expression platforms to control gene expression. For instance, direct binding of a specific ligand to the aptamer domain can be used to attenuate transcription termination or translation initiation (Roth and Breaker, <xref ref-type="bibr" rid="B23">2009</xref>). Recently, a theophylline-dependent riboswitch was established as a strict and inducible protein expression system in <italic>S. elongatus</italic> PCC 7942 (Nakahira et al., <xref ref-type="bibr" rid="B17">2013</xref>). Three theophylline riboswitches were tested, and the best one exhibited clear on/off regulation of protein expression. In the ON state, protein expression levels were up to 190-fold higher than in the absence of the activator. Moreover, it was possible to fine-tune the level of protein expression by using a defined range of theophylline concentrations.</p>
</sec>
<sec id="S5">
<title>Conclusion</title>
<p>Cyanobacteria are receiving increasing interest as experimental scaffolds for the modification of their endogenous photosynthetic machineries, as well as the integration and engineering of modules of plant photosynthesis. Therefore, we believe that cyanobacteria will be extensively used by many plant biologists as additional model system in future analyses. Indeed, for the identification of the entire set of components necessary for photosynthesis only cyanobacteria are suitable as experimental platforms. If this is achieved, the next goal is to transfer this photosynthetic module to other (non-photosynthetic) organisms like <italic>E. coli</italic>. Moreover, cyanobacteria are attractive as a &#x0201C;green&#x0201D; platform for synthetic biology to produce high-value compounds, chemical feedstocks, or even fuels.</p>
</sec>
<sec id="S6">
<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>
</body>
<back>
<ack>
<p>We thank Paul Hardy for critical comments on the manuscript.</p>
</ack>
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