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<journal-meta>
<journal-id journal-id-type="publisher-id">Front. Microbiol.</journal-id>
<journal-title-group>
<journal-title>Frontiers in Microbiology</journal-title>
<abbrev-journal-title abbrev-type="pubmed">Front. Microbiol.</abbrev-journal-title>
</journal-title-group>
<issn pub-type="epub">1664-302X</issn>
<publisher>
<publisher-name>Frontiers Media S.A.</publisher-name>
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<article-meta>
<article-id pub-id-type="doi">10.3389/fmicb.2025.1642517</article-id><article-version article-version-type="Corrected Version of Record" vocab="NISO-RP-8-2008"/>
<article-categories>
<subj-group subj-group-type="heading"><subject>Original Research</subject></subj-group>
</article-categories>
<title-group>
<article-title>Six new bacterial species isolated from the phycosphere of marine macroalgae: a joint analysis based on taxonomy and polysaccharide utilization loci</article-title>
</title-group>
<contrib-group>
<contrib contrib-type="author" equal-contrib="yes">
<name><surname>Lu</surname> <given-names>De-Chen</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="author-notes" rid="fn0007"><sup>&#x2020;</sup></xref>
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<name><surname>Yuan</surname> <given-names>Ying</given-names></name>
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<contrib contrib-type="author">
<name><surname>Tan</surname> <given-names>Xin-Yun</given-names></name>
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<contrib contrib-type="author">
<name><surname>Liu</surname> <given-names>Le</given-names></name>
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<contrib contrib-type="author">
<name><surname>Teng</surname> <given-names>Jin-Hao</given-names></name>
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<name><surname>Cui</surname> <given-names>Xue</given-names></name>
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<contrib contrib-type="author">
<name><surname>Liu</surname> <given-names>Tian-He</given-names></name>
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<name><surname>Zhang</surname> <given-names>Jing</given-names></name>
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<contrib contrib-type="author" corresp="yes">
<name><surname>Du</surname> <given-names>Zong-Jun</given-names></name>
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<contrib contrib-type="author" corresp="yes">
<name><surname>Wang</surname> <given-names>Ming-Yi</given-names></name>
<xref ref-type="aff" rid="aff1"><sup>1</sup></xref>
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<aff id="aff1"><label>1</label><institution>Weihai Municipal Hospital</institution>, <city>Weihai</city>, <country country="cn">China</country></aff>
<aff id="aff2"><label>2</label><institution>Marine College, Shandong University</institution>, <city>Weihai</city>, <country country="cn">China</country></aff>
<author-notes><corresp id="c001"><label>&#x002A;</label>Correspondence: Zong-Jun Du, <email xlink:href="mailto:duzongjun@sdu.edu.cn">duzongjun@sdu.edu.cn</email>; Ming-Yi Wang, <email xlink:href="mailto:wangmingyi1973@outlook.com">wangmingyi1973@outlook.com</email></corresp><fn id="fn0007" fn-type="equal"><label>&#x2020;</label><p>These authors have contributed equally to this work</p></fn></author-notes>
<pub-date publication-format="electronic" date-type="pub" iso-8601-date="2025-07-18">
<day>18</day>
<month>07</month>
<year>2025</year>
</pub-date>
<pub-date publication-format="electronic" date-type="corrected" iso-8601-date="2026-05-20">
<day>20</day>
<month>05</month>
<year>2026</year>
</pub-date>
<pub-date publication-format="electronic" date-type="collection">
<year>2025</year>
</pub-date>
<volume>16</volume>
<elocation-id>1642517</elocation-id>
<history>
<date date-type="received">
<day>06</day>
<month>06</month>
<year>2025</year>
</date>
<date date-type="accepted">
<day>01</day>
<month>07</month>
<year>2025</year>
</date>
</history>
<permissions>
<copyright-statement>Copyright &#x00A9; 2025 Lu, Yuan, Tan, Liu, Teng, Cui, Liu, Zhang, Du and Wang.</copyright-statement>
<copyright-year>2025</copyright-year>
<copyright-holder>Lu, Yuan, Tan, Liu, Teng, Cui, Liu, Zhang, Du and Wang</copyright-holder>
<license><ali:license_ref start_date="2025-07-18">https://creativecommons.org/licenses/by/4.0/</ali:license_ref>
<license-p>This is an open-access article distributed under the terms of the <ext-link ext-link-type="uri" xlink:href="https://creativecommons.org/licenses/by/4.0/">Creative Commons Attribution License (CC BY)</ext-link>. The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) 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.</license-p>
</license>
</permissions>
<abstract>
<p>Marine macroalgae-associated <italic>Bacteroidota</italic> play crucial roles in global carbon cycling through polysaccharide degradation, yet their taxonomic and functional diversity remains understudied. Here, we describe six novel species (strains 3-376<sup>T</sup>, 4-2040<sup>T</sup>, 2-473A<sup>T</sup>, 4-528<sup>T</sup>, 4-911<sup>T</sup> and 463<sup>T</sup>) within the families <italic>Flavobacteriaceae</italic>, <italic>Crocinitomicaceae</italic>, and <italic>Cytophagaceae</italic> isolated from macroalgal surfaces in the coastal area of Weihai, China. Metagenomic read recruitment and 16S rRNA abundance analyses demonstrated host-specific associations. Integrative taxonomic analyses, including phylogenomics (120 conserved proteins), 16S rRNA sequencing, and chemotaxonomy (e.g., MK-6 quinones, phosphatidylethanolamine lipids, and iso-C<sub>15:0</sub> fatty acids), confirmed their novel status, with average amino acid identity (AAI), percentage of conserved proteins (POCP) distinguishing them from related taxa. Genomes (3.3&#x2013;7.1&#x202F;Mb; G&#x202F;+&#x202F;C 31.7&#x2013;45.3%) revealed diverse polysaccharide utilization loci (PULs) targeting algal glycans like laminarin, alginate, and sulfated polymers (ulvan, chondroitin sulfate). <italic>Cytophagaceae</italic> 463<sup>T</sup> harbored the richest CAZyme/PUL repertoire (131 CAZymes, 15 PULs), while <italic>Crocinitomicaceae</italic> 4-911<sup>T</sup> lacked PULs, highlighting family-level specialization. This study expands the known diversity of core phycosphere <italic>Bacteroidota</italic>, linking PUL evolution to habitat specialization. The novel species&#x2019; distinct degradative capacities underscore their ecological roles in algal carbon processing and potential for biotechnological applications. Our integrated taxonomy-genomics approach advances understanding of microbial contributions to marine ecosystem dynamics.</p>
</abstract>
<kwd-group>
<kwd>core phycosphere families</kwd>
<kwd><italic>Flavobacteriaeae</italic></kwd>
<kwd>polysaccharide utilization loci</kwd>
<kwd>novel species</kwd>
<kwd><italic>Bacteroidota</italic></kwd>
</kwd-group><funding-group><funding-statement>The author(s) declare that financial support was received for the research and/or publication of this article. This work was supported by the Science Foundation for Youths of Shandong Province (ZR2023QC197, ZR2023QD187), the National Natural Science Foundation of China (92351301) and the Science and Technology Fundamental Resources Investigation Program (Grant number 2022FY101100).</funding-statement></funding-group>
<counts>
<fig-count count="8"/>
<table-count count="0"/>
<equation-count count="0"/>
<ref-count count="36"/>
<page-count count="15"/>
<word-count count="9197"/>
</counts>
<custom-meta-group>
<custom-meta>
<meta-name>section-at-acceptance</meta-name>
<meta-value>Systems Microbiology</meta-value>
</custom-meta>
</custom-meta-group>
</article-meta>
</front>
<body>
<sec sec-type="intro" id="sec1">
<label>1</label>
<title>Introduction</title>
<p>Marine macroalgae were foundational to coastal ecosystems, contributing approximately 1,521 teragrams of carbon (TgC) of annual biomass and driving global carbon cycling through photosynthetic carbon fixation (<xref ref-type="bibr" rid="ref13">Krause-Jensen and Duarte, 2016</xref>). Their surfaces host the phycosphere, a dynamic microenvironment shaped by intimate interactions with bacteria, fungi, and other microbes over 1.6 billion years of co-evolution (<xref ref-type="bibr" rid="ref5">Bengtson et al., 2017</xref>), and mostly belonging to yet-to-be described bacterial lineages. These phycosphere communities perform critical functions, including nutrient provisioning, stress acclimation, and morphological development of host algae, while also harboring pathogens or tissue-degrading commensals (<xref ref-type="bibr" rid="ref7">Croft et al., 2005</xref>; <xref ref-type="bibr" rid="ref21">Marshall et al., 2006</xref>; <xref ref-type="bibr" rid="ref23">Martin et al., 2015</xref>; <xref ref-type="bibr" rid="ref8">Dittami et al., 2016</xref>). Dominant phyla such as <italic>Proteobacteria</italic>, <italic>Bacteroidota</italic>, <italic>Verrucomicrobiota</italic>, <italic>Planctomycetota</italic>, and <italic>Patescibacteria</italic> mediate polysaccharide degradation and secondary metabolite production, processes central to carbon cycling and microbial community regulation (<xref ref-type="bibr" rid="ref16">Lemay et al., 2021</xref>; <xref ref-type="bibr" rid="ref18">Lu et al., 2023</xref>). The family <italic>Flavobacteriaeae</italic>, <italic>Crocinitomicaceae</italic> and <italic>Cytophagaceae</italic> were a monophyletic family within the phylum <italic>Bacteroidota</italic>. The <italic>Flavobacteriaeae</italic> and <italic>Crocinitomicaceae</italic> were the core families of marine macroalgae described by De-Chen (<xref ref-type="bibr" rid="ref18">Lu et al., 2023</xref>). However, foundational knowledge on core phycosphere taxa, their genomic repertoires, and ecophysiological roles remains limited compared to terrestrial plant microbiomes.</p>
<p>Polysaccharide utilization locis (PULs) were genomic hallmarks of <italic>Bacteroidota</italic>, enabling efficient degradation and uptake of complex carbohydrates through coordinated systems of carbohydrate-active enzymes (CAZymes), sulfatases, and SusC/D transporter complexes (<xref ref-type="bibr" rid="ref22">Martens et al., 2011</xref>). In marine environments, PULs have been linked to the breakdown of structurally unique algal polysaccharides&#x2014;such as alginate, carrageenan, and ulvan&#x2014;which feature sulfated, anionic motifs absent in terrestrial plants (<xref ref-type="bibr" rid="ref12">Kappelmann et al., 2019</xref>; <xref ref-type="bibr" rid="ref18">Lu et al., 2023</xref>) For example, <italic>Polaribacter</italic> clades in North Sea Spring blooms exhibit niche differentiation via specialized PULs targeting fucoidan, xylan, or laminarin, reflecting fine-scale ecological adaptation (<xref ref-type="bibr" rid="ref2">Avc&#x0131; et al., 2020</xref>). Yet, systematic inventories of PUL diversity in macroalgal-associated bacteria remain sparse, particularly for uncultivated or novel species. This gap limits understanding of how microbial communities process recalcitrant marine polysaccharides and contribute to carbon sequestration versus remineralization.</p>
<p>Strains of the <italic>Bacteroidota</italic> have been discovered in various marine environments, such as sea water (<xref ref-type="bibr" rid="ref2">Avc&#x0131; et al., 2020</xref>; <xref ref-type="bibr" rid="ref1">Alejandre-Colomo et al., 2021</xref>), plankton (<xref ref-type="bibr" rid="ref2">Avc&#x0131; et al., 2020</xref>), marine sediment (<xref ref-type="bibr" rid="ref17">L&#x00F3;pez-S&#x00E1;nchez et al., 2024</xref>; <xref ref-type="bibr" rid="ref33">Sun et al., 2025</xref>), phycosphere of algae or plants (<xref ref-type="bibr" rid="ref18">Lu et al., 2023</xref>). The capacity to degrade various plant polysaccharides has been well studied in human gut <italic>Bacteroidota</italic> (<xref ref-type="bibr" rid="ref22">Martens et al., 2011</xref>), and in some marine <italic>Bacteroidota</italic> targeting algal polysaccharides, e.g., alginate (<xref ref-type="bibr" rid="ref2">Avc&#x0131; et al., 2020</xref>), laminarin (<xref ref-type="bibr" rid="ref2">Avc&#x0131; et al., 2020</xref>), and carrageenan laminarin (<xref ref-type="bibr" rid="ref2">Avc&#x0131; et al., 2020</xref>). By efficiently degrading and utilizing complex polysaccharides, marine bacteria play a pivotal role in the global carbon cycle, facilitating the recycling of organic carbon in both terrestrial and aquatic ecosystems. Many members of <italic>Bacteroidota</italic>, including marine representatives of the family <italic>Flavobacteriaeae</italic> and <italic>Crocinitomicaceae</italic>, were specialized on polysaccharide degradation. PUL analysis of epiphytic bacteria co-occurring with macroalgae could serve as an alternative starting point to advance insight into the structures of marine polysaccharides and to understand their microbial decomposition. Current challenges in phycosphere research include resolving the structural complexity of algal polysaccharides and linking microbial genomic potential to <italic>in situ</italic> metabolic activity. While structural elucidation of macroalgal glycans has progressed, precise configurations often remain unresolved due to methodological hurdles (<xref ref-type="bibr" rid="ref32">Sichert et al., 2020</xref>). Similarly, metaproteomic studies reveal temporal shifts in SusC/D expression during phytoplankton blooms, indicating dynamic utilization of substrates like laminarin and xylan (<xref ref-type="bibr" rid="ref12">Kappelmann et al., 2019</xref>). However, these insights were largely confined to well-characterized clades, leaving understudied lineages-such as novel <italic>Flavobacteriia</italic>-poorly contextualized within broader carbon cycling frameworks.</p>
<p>During our survey of polysaccharide utilization capacity of phycosphere microbiota from 2018 to 2019 in the costal of Weihai, we identified five novel species and one novel genus (3-376<sup>T</sup>, 4-2040<sup>T</sup>, 2-473A<sup>T</sup>, 4-528<sup>T</sup>, 4-911<sup>T</sup> and 463<sup>T</sup>) belonging to the family <italic>Flavobacteriaeae</italic>, <italic>Crocinitomicaceae</italic> and <italic>Cytophagaceae</italic>. We (i) identified the six distinct <italic>Bacteroidota</italic> novel species using phylogenetic analyses, (ii) quantified their abundances using 16&#x202F;s rRNA gene and metagenome read recruitment, (iii) compared metagenome-assembled genomes (MAGs) for all of the six species, and (iv) conducted comparative analysis of PULs from six novel species by reanalyzing genome data. Furthermore, PUL annotation using high-quality representative genomes/MAGs were performed for the purpose of ecogenomic characterization. We tested whether difference species exhibit differences in their PUL repertoires that might explain their potential for polysaccharide utilization.</p>
</sec>
<sec sec-type="methods" id="sec2">
<label>2</label>
<title>Methods</title>
<sec id="sec3">
<label>2.1</label>
<title>Isolation and culture condition</title>
<p>To investigate the ability of bacteria from the phylum <italic>Bacteroidota</italic> to degrade marine polysaccharides, marine 48 macroalgae, 12 seawater and 12 sediment samples were collected from a coastal area in Weihai, China, and a total of 5,527 isolates and 1,687 isolates belonging to the <italic>Bacteroidota</italic> (<xref ref-type="bibr" rid="ref18">Lu et al., 2023</xref>). Sample dilution, spreading, culture conditions, and strain preservation refer to <xref ref-type="bibr" rid="ref18">Lu et al. (2023)</xref>. 91 species collected from LPSN and related genome download from NCBI. We have selected five novel species and one novel genus belonging to the core families of marine macroalgae.</p>
</sec>
<sec id="sec4">
<label>2.2</label>
<title>Physiological characterization</title>
<p>Phenotypic characterizations were performed during the exponential period of growth. Accurate verification of negative or positive results was performed according to the bioM&#x00E9;rieux Gram staining kit manual. Colony surface morphology was observed using a light microscope (E600, Nikon) and a scanning electron microscope (FEI Nanonova SEM450). The range of temperature for growth was tested at the following temperatures: 4, 15, 20, 25, 28, 30, 33, 35, 37 and 40&#x00B0;C. The pH was modulated to pH 5.5&#x2013;9.5 (0.5 pH units apart) by adding the same densities and dissimilar pH value buffers in marine broth 2,216 (MB; Becton Dickinson) to detect the effect of pH on cellular development. Bacteria were cultivated in derivative MA supplemented with artificial seawater without NaCl as the basal medium, and their salinity and salt tolerance were evaluated. The salt gradient of the medium was set at 0&#x2013;10.0% NaCl (0.5% intervals). All experiments were repeated three times unless otherwise noted. Testing for catalase activity with a 3% H<sub>2</sub>O<sub>2</sub> solution and oxidase activity using an oxidase test kit from bioM&#x00E9;rieux. Anaerobic growth was assessed over 15&#x202F;days at 30&#x00B0;C in an anaerobic bag, on modified MA medium with or without 0.1% (w/v) NaNO<sub>3</sub>. Hydrolytic capabilities for agar, starch, alginate, casein, CM-cellulose, DNA, and lipases (Tweens 20, 40, 60, and 80) were evaluated according to the <xref ref-type="bibr" rid="ref9001">CLSI (2021)</xref> method. API 20NE tests were conducted in accordance with the manufacturer&#x2019;s instructions, except the salinity was adjusted to 3% and performed with three biological replicates and two reference strains each time.</p>
</sec>
<sec id="sec5">
<label>2.3</label>
<title>Chemotaxonomic characterization</title>
<p>During the late exponential phase of growth, cell masses from strain 3-376<sup>T</sup>, 4-2040<sup>T</sup>, 2-473A<sup>T</sup>, 4-528<sup>T</sup>, 4-911<sup>T</sup> and 463<sup>T</sup>, and control strains were harvested from cultures grown on MA under ideal conditions to analyze fatty acids, respiratory quinones, and polar lipids. The harvested cells were freeze-dried, and from these dried cell masses, 10&#x202F;mg was used to extract fatty acids. These extracts were then analyzed with an Agilent gas chromatograph (model 6,890&#x202F;N), and the fatty acids were identified using the Microbial Identification System (MIDI database: TSBA40) (<xref ref-type="bibr" rid="ref30">Sasser, 1990</xref>). For the analysis of respiratory quinones, 300&#x202F;mg of the freeze-dried biomasses underwent purification as per the methods described by <xref ref-type="bibr" rid="ref25">Minnikin et al. (1984)</xref> and were subsequently analyzed using high-performance liquid chromatography (HPLC). Polar lipids were extracted using varying ratios of a chloroform/methanol/water solution and analyzed via two-dimensional silica thin-layer chromatography. The identification of total polar lipids was performed using specific detection reagents, following established protocols by <xref ref-type="bibr" rid="ref25">Minnikin et al. (1984)</xref>.</p>
</sec>
<sec id="sec6">
<label>2.4</label>
<title>Genome extraction, sequencing, 16S rRNA gene phylogenetic analysis, genomic analysis and abundance analysis of MAGs and draft genome</title>
<p>Genomic DNA of the six strains were extracted and purified using a bacteria genomic DNA kit (Takara). Strains sequencing were performed by Beijing Novogene Biotechnology (Beijing, China) on a NovaSeq (Illumina, San Diego, CA, USA) with 150&#x202F;bp PE reads at &#x2265;&#x202F;100&#x202F;&#x00D7;&#x202F;coverage. Reads were quality-filtered and assembled with SPAdes v3.9.1 (<xref ref-type="bibr" rid="ref3">Bankevich et al., 2012</xref>) (&#x2212;careful &#x2013;cov-cutoff) with k-mer sizes from 27 to 127&#x202F;bp and a minimum scaffold length of 200&#x202F;bp. The complete 16S rRNA gene sequences of strain 3-376<sup>T</sup>, 4-2040<sup>T</sup>, 2-473A<sup>T</sup>, 4-528<sup>T</sup>, 4-911<sup>T</sup> and 463<sup>T</sup>, were extracted from the draft genomes by ContEst16S<xref ref-type="fn" rid="fn0001"><sup>1</sup></xref>. The returned 16S rRNA gene sequence was submitted to GenBank database and the sequences were analyzed using BLAST<xref ref-type="fn" rid="fn0002"><sup>2</sup></xref> and EzBiocloud<xref ref-type="fn" rid="fn0003"><sup>3</sup></xref> to determine their approximate taxonomic affiliations. Phylogenetic trees were reconstructed by the neighbor-joining (NJ) methods with MEGA 11 (<xref ref-type="bibr" rid="ref34">Tamura et al., 2021</xref>).</p>
<p>Genes were predicted using Prodigal v2.6.3 (<xref ref-type="bibr" rid="ref10">Hyatt et al., 2010</xref>) and annotated with Prokka (<xref ref-type="bibr" rid="ref31">Seemann, 2014</xref>). The specific function of gene CAZymes-rich gene in PULs were searched in Carbohydrate Active Enzymes database<xref ref-type="fn" rid="fn0004"><sup>4</sup></xref>. The prediction and annotation of CAZymes-rich and PULs gene clusters were using dbCAN2 to find these clusters (<xref ref-type="bibr" rid="ref35">Zhang et al., 2018</xref>). The DNA G&#x202F;+&#x202F;C content was calculated based on the whole genome sequence and the metabolic pathways were analyzed in detail employing KEGG&#x2019;s KofamKOALA server (<xref ref-type="bibr" rid="ref11">Kanehisa et al., 2016</xref>). Other relevant information for genome evaluation was obtained using CheckM (<xref ref-type="bibr" rid="ref26">Parks et al., 2015</xref>). The phylogenetic relationship based on genome sequences was analyzed via GTDB-Tk (<xref ref-type="bibr" rid="ref6">Chaumeil et al., 2020</xref>) and use 120 ubiquitous single-copy proteins. Pairwise average nucleotide identities (ANI) were calculated using the pyani Python3 module<xref ref-type="fn" rid="fn0005"><sup>5</sup></xref>, average amino acid identity (AAI) (<xref ref-type="bibr" rid="ref28">Rodriguez-R and Konstantinidis, 2014</xref>) and percentage of conserved proteins (POCP) (<xref ref-type="bibr" rid="ref27">Qin et al., 2014</xref>) were calculated by using an AAI and POCP calculator<xref ref-type="fn" rid="fn0006"><sup>6</sup></xref>. Five additional MAGs from epiphytic were part of BioProject PRJEB50838, and have been published and named previously (<xref ref-type="bibr" rid="ref18">Lu et al., 2023</xref>). In order to determine MAGs and genomes abundance, metagenomic raw reads were mapped to MAGs using BBMap (minid&#x202F;=&#x202F;99). Reads per kilobase per million (RPKM) was calculated based on MAG length and number of reads mapped.</p>
</sec>
</sec>
<sec sec-type="results" id="sec7">
<label>3</label>
<title>Results</title>
<sec id="sec8">
<label>3.1</label>
<title>Characterization of the isolate collection</title>
<p>The 5,527 isolates were assigned to different taxonomic groups, but 1,687 belong to the phyla <italic>Bacteroidota</italic> were predominantly isolated. Five isolates could be assigned to the core phycosphere family <italic>Flavobacteriaeae</italic> and <italic>Crocinitomicaceae</italic> and presumptively identified as core phycosphere family, both of which were well-documented inhabitants of the phycosphere across diverse macroalgae species. Four isolates were novel species assigned to the family <italic>Flavobacteriaeae</italic>, one novel genus assigned to the family <italic>Cytophagaceae</italic> and one novel specie assigned to the family <italic>Crocinitomicaceae</italic>. These six isolates were selected for an in-depth taxonomic characterization because of their low 16S rRNA gene sequence similarities to already described species. Furthermore, a total of 5 MAGs belonging to <italic>Maribacter algarum</italic> 4-528<sup>T</sup>, <italic>Tamlana algarum</italic> 4-2040<sup>T</sup> and <italic>Aurantiphycus algarum</italic> 463<sup>T</sup> were used for reconstructing the phylogenomic tree (<xref ref-type="supplementary-material" rid="SM2">Supplementary Table S5</xref>).</p>
</sec>
<sec id="sec9">
<label>3.2</label>
<title>Physiological, phenotypic and chemotaxonomic characteristics of the six selected strains</title>
<p>The six isolates were phenotypically characterized and classified based on their 16S rRNA gene sequences within the phyla <italic>Bacteroidota</italic>, representing five novel species and one novel genus. All strains grew within a temperature range of 20&#x00B0;C to 35&#x00B0;C, and no growth was seen below 10&#x00B0;C or above 45&#x00B0;C. All isolates were Gram-stain-negative. Additional phenotypic traits of the strains were presented in <xref ref-type="supplementary-material" rid="SM2">Supplementary Table S1</xref>, which highlights the comparative phenotypic distinction between the four isolates and adjacent strains of <italic>Flavobacteriaeae</italic>, including their ability to hydrolyze macromolecular compounds and enzymatic activity. The other two strains belong to <italic>Cytophagaceae</italic> and <italic>Crocinitomicaceae</italic> ability to hydrolyze macromolecular compounds and enzymatic activity. Physiologically, the strains exhibit mesophilic growth, with temperature optima between 25 and 33&#x00B0;C and broad pH tolerance (5.5&#x2013;9.0). NaCl tolerance ranges varied significantly: <italic>Maribacter algarum</italic> 4-528<sup>T</sup> displayed the widest salinity adaptation (0&#x2013;10% NaCl), while <italic>Brumimicrobium ulvae</italic> 4-911<sup>T</sup> thrived optimally at 6% NaCl, suggesting halotolerant tendencies. Metabolically, Tween utilization was widespread, with strain 3-376<sup>T</sup> capable of hydrolyzing all Tweens (20&#x2013;80), whereas strain 463<sup>T</sup> showed no Tween activity. Starch hydrolysis was observed in <italic>Eudoraea algarum</italic> 2-473A<sup>T</sup>, <italic>Maribacter algarum</italic> 4-528<sup>T</sup>, and strain 463<sup>T</sup>, while cellulose degradation was exclusive to <italic>Brumimicrobium ulvae</italic> 4-911<sup>T</sup>. Proteolytic activity (casein hydrolysis) was detected in strains 2-473A<sup>T</sup>, 4-911<sup>T</sup>, and 463<sup>T</sup>. Oxidase and catalase activities were nearly universal, except in strain 463<sup>T</sup> (catalase-negative) and <italic>Eudoraea algarum</italic> 4-528<sup>T</sup> (oxidase-negative). Nitrate reduction occurred in four strains, with <italic>Brumimicrobium ulvae</italic> 4-911<sup>T</sup> being a notable exception. All strains consistently tested negative for L-tryptophan degradation, D-glucose fermentation, arginine dihydrolase activity, urease production, and citrate utilization, as well as for the metabolism of carbohydrates such as glucose, arabinose, mannose, mannitol, N-acetyl-glucosamine, maltose, and potassium gluconate (<xref ref-type="supplementary-material" rid="SM2">Supplementary Table S1</xref>). Similarly, no activity was observed for acid production from capric, adipic, malic, or phenylacetic acid across all isolates. These uniform negative results suggest a shared metabolic limitation in these pathways among the tested strains. Key differentiating features emerged from tests for <italic>&#x03B2;</italic>-glucosidase, gelatin liquefaction, and &#x03B2;-galactosidase activity. Strain <italic>Ulvibacter algarum</italic> 3-376<sup>T</sup> uniquely exhibited a negative result for &#x03B2;-glucosidase, whereas all other strains, including <italic>Tamlana algarum</italic> 4-2040<sup>T</sup>, <italic>Eudoraea algarum</italic> 2-473A<sup>T</sup>, <italic>Maribacter algarum</italic> 4-528<sup>T</sup>, <italic>Brumimicrobium ulvae</italic> 4-911<sup>T</sup>, and <italic>Aurantiphycus algarum</italic> 463<sup>T</sup>, tested positive (<xref ref-type="supplementary-material" rid="SM2">Supplementary Table S1</xref>). Gelatin liquefaction was observed exclusively in <italic>Maribacter algarum</italic> 4-528<sup>T</sup>, <italic>Brumimicrobium ulvae</italic> 4-911<sup>T</sup>, and Aurantiphycus algarum 463<sup>T</sup>, distinguishing them from the non-liquefying <italic>Ulvibacter algarum</italic> 3-376<sup>T</sup>, <italic>Tamlana algarum</italic> 4-2040<sup>T</sup>, and <italic>Eudoraea algarum</italic> 2-473A<sup>T</sup>. Notably, &#x03B2;-galactosidase activity was detected only in <italic>Eudoraea algarum</italic> 2-473A<sup>T</sup>, representing a unique trait among the isolates.</p>
<p>The chemotaxonomic features of the strains were consistent with those of the family <italic>Flavobacteriaeae</italic>, <italic>Cytophagaceae</italic> and <italic>Crocinitomicaceae</italic>. All strains contained MK-6 as the sole respiratory quinone. The polar lipid profile of strains 3-376<sup>T</sup>, 4-2040<sup>T</sup>, 2-473A<sup>T</sup>, 4-528<sup>T</sup>, 4-911<sup>T</sup> and 463<sup>T</sup> consisted of phosphatidylethanolamine. Except for <italic>Maribacter algarum</italic> 4-528<sup>T</sup>, the other five strains also contain AL, which belongs to the major polar lipids (<xref ref-type="supplementary-material" rid="SM1">Supplementary Figure S1</xref>; <xref ref-type="supplementary-material" rid="SM2">Supplementary Table S1</xref>). The major fatty acid constituents (&#x003E;5%) of strains were iso-C<sub>15:0</sub> and iso-C<sub>17:0</sub> 3-OH. Cellular fatty acid compositions (%) derived from FAME analysis of all six strains were shown in <xref ref-type="supplementary-material" rid="SM2">Supplementary Table S2</xref>.</p>
</sec>
<sec id="sec10">
<label>3.3</label>
<title>High-quality genome sequences of the <italic>Bacteroidota</italic> strains isolated from the macroalgal surface</title>
<p>The genome size of the strains was around 3.3&#x2013;7.1&#x202F;Mb with GC content ranging between 34.4 and 45.3%. <italic>Brumimicrobium ulvae</italic> 4-911<sup>T</sup> (<italic>Crocinitomicaceae</italic>) and <italic>Aurantiphycus algarum</italic> 463<sup>T</sup> (<italic>Cytophagaceae</italic>) represented the smallest and largest genomes of 3.3&#x202F;Mb and 7.1&#x202F;Mb, respectively, as well as the lowest and highest number of predicted genes with 2,912 and 5,780 (<xref ref-type="supplementary-material" rid="SM2">Supplementary Table S3</xref>). Four <italic>Flavobacteriaeae</italic> member showed a genome size average of 4.4&#x202F;&#x00B1;&#x202F;0.9&#x202F;Mb. In addition, <italic>Ulvibacter algarum</italic> 3-376<sup>T</sup> showed the lowest G&#x202F;+&#x202F;C mol% content with 31.69%, and <italic>Eudoraea algarum</italic> 2-473A<sup>T</sup> the highest with 45.2%. Phylogenetic analyses using amino acid sequences from the genomes, conducted with FastTree methods, showed that the five strains do not cluster together as a single group. However, 4-528<sup>T</sup> show relatively closer clustering, forming a distinct lineage within the highest 16S rRNA gene similarity species (<xref ref-type="fig" rid="fig1">Figures 1</xref>, <xref ref-type="fig" rid="fig2">2</xref>).</p>
<fig position="float" id="fig1">
<label>Figure 1</label>
<caption>
<p>Neighbor-joining phylogenetic tree based on 16S rRNA gene sequences showing the relationship of strain 3-376<sup>T</sup>, 4-2040<sup>T</sup>, 2-473A<sup>T</sup>, 4-528<sup>T</sup>, 4-911<sup>T</sup> and 463<sup>T</sup>. Bootstrap values (expressed as percentages of 1,000 replications) of &#x003E;50% were shown at branching nodes. Bar 0.1 substitutions per nucleotide position. Scanning electron micrograph of cells of strain 3-376<sup>T</sup>, 4-2040<sup>T</sup>, 2-473A<sup>T</sup>, 4-528<sup>T</sup>, 4-911<sup>T</sup> and 463<sup>T</sup>. Cells were grown on marine agar 2216 (MA) at 28.0&#x00B0;C for 3&#x202F;days.</p>
</caption>
<graphic xlink:href="fmicb-16-1642517-g001.tif" mimetype="image" mime-subtype="tiff">
<alt-text content-type="machine-generated">Phylogenetic heatmap displaying genomic relationships between species belonging to Crocinitomicaceae, Flavobacteriaceae, and Cyclobacteriaceae families. The heatmap shows AAI/POCP values, with a grayscale color gradient and a dendrogram on the left. Additional genomic data, such as GC content and genome size, is visualized with bar charts on the right.</alt-text>
</graphic>
</fig>
<fig position="float" id="fig2">
<label>Figure 2</label>
<caption>
<p>Phylogenetic tree of genomes based on the concatenated alignment of 120 ubiquitous single-copy proteins, highlighting the novel strains 3-376<sup>T</sup>, 4-2040<sup>T</sup>, 2-473A<sup>T</sup>, 4-528<sup>T</sup>, 4-911<sup>T</sup> and 463<sup>T</sup> within related taxa. The lower left part of the figure represents AAI values and the upper right part represents POCP values. Darker to lighter colors indicates higher to lower values. A darker color indicates a higher value. The scale bar represents 0.1 substitutions per amino acid position. The isolated habitats, genome sizes, and G&#x202F;+&#x202F;C content of the novel species and their related species were also displayed. Sum of PUL, CAZymes gene and Sulfatase genes of different bacterial species were represented by the bar graphs on the right.</p>
</caption>
<graphic xlink:href="fmicb-16-1642517-g002.tif" mimetype="image" mime-subtype="tiff">
<alt-text content-type="machine-generated">Phylogenetic tree depicting various bacterial strains with both bootstrap values indicated by different circle sizes and accompanying electron microscope images of bacterial cells. Three color photos on the right show diverse marine algae with marked bacterial sample locations.</alt-text>
</graphic>
</fig>
</sec>
<sec id="sec11">
<label>3.4</label>
<title>Phylogenetics, ANI, AAI clustering, phylogenomics, and population genomics</title>
<p>Phylogenetic reconstructions showed consistent topologies regardless of the sequences used to reconstruct them. Specifically, (i) the 16S rRNA genes (<xref ref-type="fig" rid="fig2">Figure 2</xref>), (ii) the concatenated sequences of 120 conserved single-copy orthologous genes (essential genes; <xref ref-type="fig" rid="fig1">Figure 1</xref>). The 16S rRNA gene sequences of strains 3-376<sup>T</sup>, 4-2040<sup>T</sup>, 2-473A<sup>T</sup>, 4-528<sup>T</sup>, 4-911<sup>T</sup> and 463<sup>T</sup> were obtained.</p>
<p><italic>Aurantiphycus algarum</italic> was represented by strain 463<sup>T</sup> and it had a 16S rRNA gene identity of 91.7% with its closest relative type strain of <italic>Fulvivirga sedimenti</italic>; <italic>Eudoraea algarum</italic> represented by 2-473A<sup>T</sup> had a 16S rRNA gene identity of 95.3% with <italic>Eudoraea chungangensis</italic>; <italic>Maribacter algarum</italic> represented by strains 4-528<sup>T</sup> had a 16S rRNA gene identity of 97.0% with <italic>Maribacter vaceletii</italic>; <italic>Tamlana algarum</italic> represented by 4-2040<sup>T</sup> had a 16S rRNA gene identity of 95.8% with <italic>Tamlana fucoidanivoran</italic>; <italic>Ulvibacter algarum</italic> 3-376<sup>T</sup> and <italic>Brumimicrobium ulvae</italic> 4-911<sup>T</sup> had a mean 16S rRNA gene identity of 95.8, 97.6 and 97.3% with <italic>Ulvibacter litoralis</italic>, <italic>Maribacter arenosus</italic> and <italic>Brumimicrobium aurantiacum</italic>. The genome-based phylogenetic analyses were conducted (<xref ref-type="fig" rid="fig1">Figure 1</xref>). The tree indicates close relationships of strains 3-376<sup>T</sup>, 4-2040<sup>T</sup>, 2-473A<sup>T</sup>, 4-528<sup>T</sup>, 4-911<sup>T</sup> and 463<sup>T</sup> despite the relatively low level of average branch support. The inconsistencies between the phylogenetic trees based on the 16S rRNA gene sequences and the phylogenomic trees constructed from whole-genome sequence analyses reveal that 16S rRNA gene sequence analyses were insufficient to understand the phylogeny and evolution of the members of the <italic>Bacteroidota</italic>. Both the sequence similarities and phylogenetic relationships indicated that strains 3-376<sup>T</sup>, 4-2040<sup>T</sup>, 2-473A<sup>T</sup>, 4-528<sup>T</sup>, 4-911<sup>T</sup> and 463<sup>T</sup> represent five novel species and one novel genus of the <italic>Bacteroidota</italic>. The phylogenomics tree included three families. The <italic>Crocinitomicaceae</italic> was relatively small and contains 10 type strains. The family <italic>Flavobacteriaeae</italic>, however, was the largest and includes the most model species. It represents a highly diverse group in terms of genomic size and ecological diversity, with strains from various environments. Overall, this division provides valuable insights into the evolutionary, ecological, and genomic diversity among these strains, highlighting the differences in model species representation and the variability in genomic characteristics across difference families. A detailed summary of the overall genome-relatedness indices was provided in <xref ref-type="supplementary-material" rid="SM2">Supplementary Table S3</xref>.</p>
<p>The general features of the genomes were given in <xref ref-type="supplementary-material" rid="SM2">Supplementary Table S4</xref>. The ANI values between strain 3-376<sup>T</sup>, 4-2040<sup>T</sup>, 2-473A<sup>T</sup>, 4-528<sup>T</sup>, 4-911<sup>T</sup> and 463<sup>T</sup> with other strains of the genus were 74.72, 74.30, 71.95, 74.80, 75.97 and 68.98% (<xref ref-type="supplementary-material" rid="SM2">Supplementary Table S4</xref>), which were far below the standard ANI criteria for species identity (95.0&#x2013;96.0%). The taxonomic classification of six novel strains 3-376<sup>T</sup>, 4-2040<sup>T</sup>, 2-473A<sup>T</sup>, 4-528<sup>T</sup>, 4-911<sup>T</sup> and 463<sup>T</sup> was rigorously validated through genomic metrics, including AAI and POCP (<xref ref-type="supplementary-material" rid="SM2">Supplementary Table S5</xref>). These analyses robustly support the delineation of five novel species within established genera and one novel genus. For strains <italic>Ulvibacter algarum</italic> 3-376<sup>T</sup>, 4-2040<sup>T</sup> (Tamlana algarum), <italic>Eudoraea algarum</italic> 2-473A<sup>T</sup>, and Maribacter algarum 4-528<sup>T</sup>, AAI values ranged from 63.66 to 79.30%, well below the intra-genus threshold of 65&#x2013;70%, while POCP values (45.61&#x2013;59.63%) further confirmed their divergence from congeneric species. Notably, <italic>Brumimicrobium ulvae</italic> 4-911<sup>T</sup> exhibited higher intra-genus POCP (68.36&#x2013;70.21%) and AAI (75.88&#x2013;77.60%), yet these values remained below species-level thresholds (&#x003E;95%), supporting its classification as a novel species within <italic>Brumimicrobium</italic>. In contrast, strain 463<sup>T</sup> displayed POCP values of 23.78&#x2013;27.07% with members of <italic>Fulvivirga</italic> and <italic>Chryseolinea</italic>, far below the genus delineation threshold (&#x003E;50%), alongside unique phenotypic and phylogenetic traits. Combined with the absence of close AAI comparators, these data unequivocally establish 463<sup>T</sup> as the type strain of the novel genus <italic>Aurantiphycus</italic>. Collectively, the integration of AAI and POCP metrics underscores the taxonomic novelty of these strains, resolving their placement within the <italic>Bacteroidota</italic> phylum while highlighting the necessity of polyphasic approaches for robust microbial classification.</p>
</sec>
<sec id="sec12">
<label>3.5</label>
<title>Habitat distribution analysis</title>
<p>This figure shows that the RPKM (Reads Per Kilobase per Million mapped reads) values of the strain 4-2040<sup>T</sup>, 3-376<sup>T</sup>, 2-473A<sup>T</sup>, 4-528<sup>T</sup>, 4-911<sup>T</sup> and 463<sup>T</sup> across different algal species (including <italic>Gelidium</italic> sp., <italic>Grateloupia</italic> sp., <italic>Ulva</italic> sp., and <italic>Saccharina</italic> sp.), seawater, and sediment samples (<xref ref-type="fig" rid="fig3">Figure 3</xref>). The results reveal that certain strains exhibit higher RPKM values in specific algal hosts, suggesting potential host-specific abundance. For example, 4-2040<sup>T</sup>, 3-376<sup>T</sup>, 2-473A<sup>T</sup>, 4-528<sup>T</sup>, 4-911<sup>T</sup> have a higher RPKM values in <italic>Ulva</italic> sp. than others while the highest RPKM value of strain A463<sup>T</sup> was in <italic>Grateloupia</italic> sp. In contrast, seawater and sediment samples generally show lower microbial abundance. Significant <italic>p</italic>-values (<italic>p</italic>&#x202F;&#x003C;&#x202F;0.05) further validate these differences, implying possible symbiotic relationships or ecological adaptations between algae and their associated microorganisms. These findings provide valuable insights into the functional roles and ecological dynamics of algal-associated microbial communities.</p>
<fig position="float" id="fig3">
<label>Figure 3</label>
<caption>
<p>Boxplots show the RPKM values of strains 3-376<sup>T</sup>, 4-2040<sup>T</sup>, 2-473A<sup>T</sup>, 4-528<sup>T</sup>, 4-911<sup>T</sup> and 463<sup>T</sup>. The relativate abundance of three genera of <italic>Fulvivirga</italic>, <italic>Maribacter</italic>, <italic>Ulvibacter</italic> and two families of <italic>Crocinitomicaceae</italic> and <italic>Flavobacteriaceae</italic>. The data was categorized based on different environmental sources or samples of <italic>Gelidium</italic> sp. (red algae), <italic>Grateloupia</italic> sp. (red algae), <italic>Ulva</italic> sp. (green algae), <italic>Saccharina</italic> sp. (brown algae), sediment and seawater.</p>
</caption>
<graphic xlink:href="fmicb-16-1642517-g003.tif" mimetype="image" mime-subtype="tiff">
<alt-text content-type="machine-generated">Box plots showing the relative abundance of various species across different environments, including Gelidium sp., Grateloupia sp., HUva sp., Saccharina sp., seawater, and sediment. Each plot represents specific species such as Fulvivirga, Maribacter, Ulvibacter, Crocinitomicaceae, and Flavobacteriaceae. Data is displayed with different colored boxes indicating different sample types, with outliers marked.</alt-text>
</graphic>
</fig>
<p>This figure illustrates the relative abundance of three bacterial genera (<italic>Fulvivinga</italic>, <italic>Maribacter</italic>, and <italic>Ulvibacter</italic>) across algal samples (<italic>Gelidium</italic> sp., <italic>Ulva</italic> sp., <italic>Saccharina</italic> sp.) and environmental samples (seawater, sediment) (<xref ref-type="fig" rid="fig3">Figure 3</xref>), along with their statistical characteristics. For <italic>Fulvivirga</italic>, the highest relative abundance was in <italic>Grateloupia</italic> sp. <italic>Maribacter</italic> has a high relative abundance in <italic>Saccharina</italic> sp. and <italic>Grateloupia</italic> sp. <italic>Ulvibacter</italic> was widely distributed across diverse algae (including <italic>Grateloupia</italic> sp.), seawater, and sediment. The figure presents statistical analyses comparing the relative abundances of two bacterial families, <italic>Flavobacteriaceae</italic> and <italic>Crocinitomicaceae</italic>, across distinct sample groups (<xref ref-type="fig" rid="fig3">Figure 3</xref>). The low <italic>p</italic>-value highlights statistically significant differences among groups, including <italic>Gelidium</italic> sp., <italic>Grateloupia</italic> sp., <italic>Saccharina</italic> sp., <italic>Ulva</italic> sp., seawater and sediment. For <italic>Crocinitomicaceae</italic>, the relative abundance in <italic>Saccharina</italic> sp. and seawater was relatively higher than others. For <italic>Flavobacteriaceae</italic>, the relative abundance in <italic>Ulva</italic> sp. was highest and in sediment was lowest. These results underscore the influence of environmental or host-specific factors on microbial community composition at the family level.</p>
</sec>
<sec id="sec13">
<label>3.6</label>
<title>Putative polysaccharide degradative capacity</title>
<p>The presence of degradative CAZymes and predicted PULs in each genome indicates the potential for polysaccharide degradation (<xref ref-type="supplementary-material" rid="SM2">Supplementary Table S3</xref>). Interestingly, the occurrence of PULs exhibited an exponential increase with the genome size, suggesting a correlation between genome size and polysaccharide-degrading capacity. Notably, <italic>Cytophagaceae</italic> species were annotated with a higher number of CAZymes and PULs, further underscoring their strong potential for polysaccharide degradation. <italic>Flavobacteriaeae</italic> species were annotated with a second higher number of CAZymes and PULs, <italic>Crocinitomicaceae</italic> species were annotated with fewest number of CAZymes and PULs. As shown in <xref ref-type="fig" rid="fig1">Figure 1</xref>, we observed a positive correlation between the numbers of CAZymes, sulfatases, and PULs and the different families of the phylogenetic tree. Specifically, the <italic>Cytophagaceae</italic> was annotated with a higher number of CAZymes, sulfatases, and PULs compared to the <italic>Flavobacteriaeae</italic> and <italic>Crocinitomicaceae</italic>. However, there were also exceptions. For example, the genome size of the newly discovered bacterium <italic>Brumimicrobium ulvae</italic> in our study was 3.3&#x202F;Mb, which was similar to that of <italic>Ulvibacter algarum</italic> (3.5&#x202F;Mb). However, <italic>Brumimicrobium ulvae</italic> contains 0 PULs (<xref ref-type="fig" rid="fig4">Figure 4</xref>), which was much smaller than the number of PULs in <italic>Ulvibacter algarum</italic>. The same results can be observed in other species within the genera to which these two bacteria belong. This discrepancy may be linked to specific environmental factors or ecological conditions related to its habitat.</p>
<fig position="float" id="fig4">
<label>Figure 4</label>
<caption>
<p>Composition and location of PUL, PUL-Like and CGCs on the genome of different strains. Strain names were labeled below each genome graphic. The bands from bottom to top of each strain indicated the type of polysaccharides degradation gene clusters, the composition of gene clusters, and the distribution location of its protein components.</p>
</caption>
<graphic xlink:href="fmicb-16-1642517-g004.tif" mimetype="image" mime-subtype="tiff">
<alt-text content-type="machine-generated">Genomic maps of different strains labeled 2-473A, 3-376, 4-528, 4-911, 4-2020, and 463. Each map displays colored bars representing gene types such as sulfates, glycoside hydrolase, and polysaccharide lyases. Color-coded legend distinguishes CGC types, including PUL and susCD pair. Horizontal scale indicates positions in mega base pairs from zero to six.</alt-text>
</graphic>
</fig>
<p>Functional annotations revealed that strain 3-376<sup>T</sup>, 4-2040<sup>T</sup>, 2-473A<sup>T</sup> and 4-528<sup>T</sup> (<italic>Flavobacteriaeae</italic>) had 20, 90, 60, 88 CAZyme genes (Sum GH, PL, CE), and 4-911<sup>T</sup> (<italic>Crocinitomicaceae</italic>) had 14 CAZyme genes, while strain 463<sup>T</sup> contained 131 CAZymes. A list of CAZymes and its family activities in the genome of six strains were shown in <xref ref-type="supplementary-material" rid="SM2">Supplementary Table S7</xref>. Among these CAZymes, GHs were the greatest number of enzymes, which showed that they were more capable of degrading polysaccharides. The analysis of PULs across six bacterial strains revealed distinct substrate utilization profiles and metabolic versatility (<xref ref-type="fig" rid="fig4">Figures 4</xref>&#x2013;<xref ref-type="fig" rid="fig5"/><xref ref-type="fig" rid="fig6">6</xref>; <xref ref-type="supplementary-material" rid="SM1">Supplementary Figures S2&#x2013;S5</xref>). Strain 4&#x2013;528 exhibited the highest PUL diversity (11 PULs), targeting complex carbohydrates such as agar, alginate, fucosylated chondroitin sulfate (FCSP), and ulvan/rhamnan. 2-473A<sup>T</sup> and 4-2040<sup>T</sup> displayed moderate substrate ranges, including beta-mannan and laminarin/beta-glucan. In contrast, 463 and 3&#x2013;376 showed limited PUL diversity, restricted to substrates like agar, starch, and galactomannan. Common substrates such as acetylxylan (targeted by 5 PULs) and alpha-glucan (4 PULs) highlighted functional redundancy across strains. Notably, multi-substrate PULs were identified, including 4-528<sup>T</sup>; PUL2 (degrading chondroitin sulfate, gellan, and hyaluronan) underscoring adaptive strategies for nutrient acquisition.</p>
<fig position="float" id="fig5">
<label>Figure 5</label>
<caption>
<p>Ecological distribution of six strains across various habitats, as shown in the radar plots for different strains (3-376<sup>T</sup>, 4-2040<sup>T</sup>, 2-473A<sup>T</sup>, 4-528<sup>T</sup>, 4-911<sup>T</sup> and 463<sup>T</sup>). Each plot illustrates the relative abundance of the strains across multiple environmental categories, including plant, aquatic freshwater, aquatic marine, aquatic sediment, animal habitats, aquatic unknown, soil, and unknown habitats. The numbers next to each habitat label represent the number of sequences identified within that category. The green shaded area in each radar plot indicates the strain&#x2019;s distribution in that habitat, with the scale ranging from 0 to 1.</p>
</caption>
<graphic xlink:href="fmicb-16-1642517-g005.tif" mimetype="image" mime-subtype="tiff">
<alt-text content-type="machine-generated">Six radar charts comparing environmental samples titled 4-2040, 2-473A, 2-627, 3-2217-3, 3-376, and 463. They represent proportions in categories like plant, soil, aquatic (various), animal, and unknown, showing different distribution patterns for each.</alt-text>
</graphic>
</fig>
<fig position="float" id="fig6">
<label>Figure 6</label>
<caption>
<p>Selected PULs predicted to target substrates. Possible targets were FCSP.</p>
</caption>
<graphic xlink:href="fmicb-16-1642517-g006.tif" mimetype="image" mime-subtype="tiff">
<alt-text content-type="machine-generated">Genomic map showing gene clusters labeled 4-528:PUL7:FCSP, 4-1016:PUL7:FCSP, and others, with colored arrows representing different gene functions, such as sulfatases, glycosyl transferases, and SusC-like proteins. A legend identifies colors for functions like carbohydrate-binding modules and auxiliary activities.</alt-text>
</graphic>
</fig>
<p>Functional comparisons further revealed conserved and divergent metabolic strategies: acetylxylan utilization was shared among 4-528<sup>T</sup> and 2-473A<sup>T</sup>, while ulvan/rhamnan degradation was co-utilized by 4-528<sup>T</sup> and 4-2040<sup>T</sup>. These patterns suggest both evolutionary conservation of key pathways and strain-specific adaptations to ecological niches. The findings emphasize the interplay between PUL diversity and substrate specificity, with implications for understanding microbial ecological roles and carbohydrate metabolism dynamics. A total of 189 annotated PULs can be linked to either dedicated polysaccharides or polysaccharide classes (<xref ref-type="supplementary-material" rid="SM2">Supplementary Table S8</xref>), and some of the larger PULs were attributed to multiple polysaccharide substrates. Due to differences in PUL composition, PULs with common substrate predictions were similar.</p>
<p>Specialized substrates exhibited narrower distributions. Fucosylated chondroitin sulfate (FCSP), a complex sulfated glycosaminoglycan (<xref ref-type="bibr" rid="ref32">Sichert et al., 2020</xref>), was targeted by 4-528<sup>T</sup>; PUL6/PUL11, with 4-528<sup>T</sup> dedicating two PULs to this niche substrate (<xref ref-type="fig" rid="fig6">Figure 6</xref>). The analysis of substrate-specific utilization across strains revealed distinct patterns of polysaccharide metabolism. For marine-associated carbohydrates, agar was uniquely targeted by 463<sup>T</sup>; PUL4 and 4-528<sup>T</sup>; PUL4, while ulvan/rhamnan was shared among 4-528<sup>T</sup>; PUL8 and 4-2040<sup>T</sup>; PUL1/PUL6 highlighting adaptation to algal-derived substrates. Alginate was metabolized by two strains (4-528<sup>T</sup>; PUL12, 3-376<sup>T</sup>; PUL2) (<xref ref-type="fig" rid="fig7">Figure 7</xref>), underscoring its relevance in marine or mucilaginous environments. Acetylxylan was the most widely targeted substrate (<xref ref-type="supplementary-material" rid="SM1">Supplementary Figure S2</xref>), with five PULs distributed among three strains (2-473A<sup>T</sup>; PUL1, and 4-528<sup>T</sup>; PUL1, PUL9, PUL10), indicating its ecological importance as a hemicellulose component. Similarly, alpha-glucan was utilized by four strains (4-528<sup>T</sup>; PUL5, 2-473A<sup>T</sup>; PUL4, 4-2040<sup>T</sup>; PUL5), with 4&#x2013;528 and 4&#x2013;2040 sharing PUL5 for starch/glycogen degradation, suggesting conserved metabolic strategies. Beta-glucan utilization was observed in three strains (4-2040<sup>T</sup>; PUL3, 2-473A<sup>T</sup>; PUL7), potentially reflecting roles in cellulose or laminarin breakdown. Laminarins were <italic>&#x03B2;</italic>-1,3-linked glucans that were abundant as they act as storage compounds in brown algae and diatoms. Enzymes from the GH families 5, 8, 9, 16, 17, 30, 64, 81, and 157 were involved in laminarin degradation (<xref ref-type="bibr" rid="ref14">Kr&#x00FC;ger et al., 2019</xref>). The backbone was usually broken down by GH16_3 endo-glucanases. Just like the PUL structure (5) shown in the <xref ref-type="fig" rid="fig4">Figure 4</xref>, most strains can degrade laminarin and the PUL structure was relatively conserved. This reflects the fact that laminarin was one of the most abundant macromolecules in marine, as it acts as storage compound in brown macroalgae and diatoms. This type of PUL was highly prevalent in all strains (<xref ref-type="fig" rid="fig8">Figure 8</xref>).</p>
<fig position="float" id="fig7">
<label>Figure 7</label>
<caption>
<p>Selected PULs predicted to target substrates. Possible targets were ulvan/rhamnan.</p>
</caption>
<graphic xlink:href="fmicb-16-1642517-g007.tif" mimetype="image" mime-subtype="tiff">
<alt-text content-type="machine-generated">Diagram of polysaccharide utilization loci (PUL) showing gene clusters related to ulvan and rhamnan processing in various strains. Colored arrows indicate different genes: glycoside hydrolase (brown), polysaccharide lyases (orange), sulfatase (pink), carbohydrate-binding modules (green), SusC/D-like proteins (yellow), and other functions (gray). Each row represents a different strain or bin, labeled on the left, with details of specific genes within each cluster, such as GH78, PL40, and CBM66. A scale bar at the bottom indicates relative gene lengths.</alt-text>
</graphic>
</fig>
<fig position="float" id="fig8">
<label>Figure 8</label>
<caption>
<p>Selected PULs predicted to target substrates. Possible targets were laminarin/beta-glucan.</p>
</caption>
<graphic xlink:href="fmicb-16-1642517-g008.tif" mimetype="image" mime-subtype="tiff">
<alt-text content-type="machine-generated">Gene clusters involved in laminarin/beta-glucan breakdown are displayed with various functional annotations. Arrows represent genes, labeled with abbreviations indicating their functions, such as glycoside hydrolases, transporters, and surface proteins. Color coding differentiates enzyme types, as indicated in the legend below. Scales are shown for distance measurement.</alt-text>
</graphic>
</fig>
<p>Galactomannan (GH36) were strain-specific, limited to 2-473A<sup>T</sup>; PUL6, 463<sup>T</sup>; PUL1, and 2-473A<sup>T</sup>; PUL2, respectively. Starch utilization was shared by 463<sup>T</sup>; PUL3 and 2-473A<sup>T</sup>; PUL8. These patterns highlight functional redundancy for common substrates (e.g., acetylxylan, alpha-glucan) and strain-specific specialization for rare or complex carbohydrates (e.g., FCSP, chitobiose). Strain 4&#x2013;528 emerged as the most versatile, targeting 11 substrates, compared to the narrower repertoires of 463<sup>T</sup> and 3-376<sup>T</sup>. This substrate-centric analysis underscores the interplay between ecological adaptation and metabolic diversity in polysaccharide utilization.</p>
<p>Chondroitin sulfate utilization reveals multi-substrate metabolic strategies (4&#x2013;528; PUL2, 4&#x2013;2040; PUL1). These patterns underscore the ecological relevance of sulfated glycosaminoglycan metabolism in marine or host-associated environments and highlight the functional plasticity of PULs in adapting to structurally complex carbohydrates. Interestingly, they possess two distinct SusC/SusD gene pairs (<xref ref-type="fig" rid="fig5">Figure 5</xref>). Alginates were linear co-polymers consisting of homopolymeric blocks of (1&#x202F;&#x2192;&#x202F;4)-linked &#x03B2;-D-mannuronate and <italic>&#x03B1;</italic>-L-guluronate residues that were covalently linked in alternating sequences or blocks (<xref ref-type="bibr" rid="ref9">Draget and Taylor, 2011</xref>). Alginate utilization highlights metabolic diversity among strains: from single-substrate specialization (4&#x2013;528; PUL12) to multifunctional strategies (3&#x2013;376; PUL2). These differences reflect adaptive evolution to distinct ecological niches, such as marine environments for algal polysaccharide specialists or host-associated habitats for generalist strains. This analysis provides molecular insights into microbial carbon cycling and informs applications in alginate biodegradation technologies. Alginate PULs encode PL6, 7, 14, 15, and 17 family alginate lyases (<xref ref-type="bibr" rid="ref29">R&#x00F8;nne et al., 2023</xref>). Alginate, unlike laminarin, shows small variation across different strains in difference species.</p>
</sec>
</sec>
<sec id="sec14">
<label>4</label>
<title>Conclusion and discussion</title>
<p>Marine ecosystems rely critically on polysaccharide degradation mediated by microorganisms, particularly members of the phylum <italic>Bacteroidota</italic> laminarin (<xref ref-type="bibr" rid="ref2">Avc&#x0131; et al., 2020</xref>), which play a pivotal role in global carbon cycling. Elucidating the enzymatic and metabolic pathways these microbes employ to break down complex carbohydrates was essential for advancing mechanistic understanding of microbial decomposition processes and informing sustainable ocean resource management strategies (<xref ref-type="bibr" rid="ref32">Sichert et al., 2020</xref>). Our research identified six novel <italic>Bacteroidota</italic> species belong to <italic>Flavobacteriaeae</italic>, <italic>Cytophagaceae</italic> and <italic>Crocinitomicaceae</italic> isolated from marine macroalgae and conducted a thorough phylogenetic, genomic and phenotypic analysis. Subsequently, by analyzing genome-wide, we conducted a basic comparative analysis of the genomic features and metabolic potential of <italic>Bacteroidota</italic> strains.</p>
<p>We then focused on analyzing the similarities and differences among <italic>Flavobacteriaeae</italic>, <italic>Cytophagaceae</italic> and <italic>Crocinitomicaceae</italic> strains in terms of their polysaccharide degradation abilities for different polysaccharide substrates. Additionally, we observed a positive correlation between the genome size and the number of PULs (<xref ref-type="bibr" rid="ref2">Avc&#x0131; et al., 2020</xref>), suggesting that strains with larger genomes may possess a stronger polysaccharide degradation capacity (<xref ref-type="fig" rid="fig1">Figure 1</xref>). We observed significant diversity in polysaccharide degradation capabilities among the species of <italic>Flavobacteriaeae</italic> and <italic>Cytophagaceae</italic>, with apparent direct correlation to their taxonomy. Within the same genus, strains exhibited similar PUL profiles and genome sizes. These results suggest that the composition of a species&#x2019; PUL repertoire was influenced more by its phylogenetic lineage.</p>
<p>We observed diverse polysaccharide degradation capacities among <italic>Cytophagaceae</italic> strains, such as for laminarin and alginate. Through comparative analysis, we speculate the presence of PULs involved in the degradation of laminarin and alginate. Alginate was a polysaccharide, known for its solubility and gel-forming properties. Laminarin, found in brown algae, shares structural similarities with alginate but has distinct sugar units (<xref ref-type="bibr" rid="ref4">Becker et al., 2020</xref>). Both polysaccharides play crucial roles in the structure of algal cell walls and act as carbon sources for marine microorganisms. Such as laminarin was a major molecule in the marine carbon cycle (<xref ref-type="bibr" rid="ref4">Becker et al., 2020</xref>). The PUL repertoires of the isolates reveal that common and structurally simple polysaccharides, such as laminarin, <italic>&#x03B1;</italic>-1,4-glucans, and alginate, were frequently targeted by conserved PULs (<xref ref-type="fig" rid="fig8">Figure 8</xref>; <xref ref-type="supplementary-material" rid="SM1">Supplementary Figure S3</xref>). This suggests that maintaining the enzymatic machinery for degrading these substrates was advantageous for marine <italic>Flavobacteriaeae</italic> (<xref ref-type="bibr" rid="ref20">Mann et al., 2013</xref>; <xref ref-type="bibr" rid="ref1">Alejandre-Colomo et al., 2021</xref>; <xref ref-type="bibr" rid="ref15">Lee et al., 2023</xref>) and <italic>Cytophagaceae</italic> (<xref ref-type="bibr" rid="ref19">Ma et al., 2025</xref>). This convergence in PUL composition was attributed to the core microbial communities on macroalgal surfaces, which have evolved PULs capable of degrading diverse macroalgal polysaccharides as an adaptive strategy for colonization across various macroalgal species (<xref ref-type="bibr" rid="ref18">Lu et al., 2023</xref>). These data revealed that epiphytic bacteria derived from different macroalgae and isolation sources possess similar PULs for degrading identical polysaccharides (<xref ref-type="fig" rid="fig6">Figures 6</xref>, <xref ref-type="fig" rid="fig7">7</xref>; <xref ref-type="supplementary-material" rid="SM2">Supplementary Tables S7, S8</xref>). For example, both 3-376<sup>T</sup> and 2-473A<sup>T</sup> were involved in acetylxylan (<xref ref-type="fig" rid="fig6">Figure 6</xref>; <xref ref-type="supplementary-material" rid="SM2">Supplementary Table S8</xref>). Such functional adaptation enhances their ability to thrive in the unique environmental niches provided by macroalgal surfaces. Furthermore, the variability in bacterial polysaccharide-degrading capabilities reflects their specificity and diversity in metabolizing polysaccharide substrates (<xref ref-type="bibr" rid="ref24">McKee et al., 2021</xref>). Certain bacteria may specialize in degrading one or a few specific polysaccharides, while others exhibit a broader degradative capacity (<xref ref-type="fig" rid="fig6">Figures 6</xref>, <xref ref-type="fig" rid="fig7">7</xref>, <xref ref-type="supplementary-material" rid="SM2">Supplementary Tables S7, S8</xref>). For instance, strain 3-376<sup>T</sup> may degrade alginate and &#x03B1;-glucan (<xref ref-type="supplementary-material" rid="SM1">Supplementary Figure S3</xref>), 463<sup>T</sup> may degrade agar (<xref ref-type="supplementary-material" rid="SM1">Supplementary Figure S4</xref>), while 2-473A<sup>T</sup> may degrade galactomannan (<xref ref-type="supplementary-material" rid="SM1">Supplementary Figure S5</xref>).</p>
<p>The functional predictions of PULs in this study primarily rely on sequence similarity-based bioinformatics approaches. While these methods provide valuable insights, their resolution remains inherently lower than that of direct experimental validation. Current limitations in characterizing marine macroalgal polysaccharides may introduce uncertainties in substrate specificity predictions. Nevertheless, our systematic profiling of PUL distributions across a phylogenetically diverse collection of isolates from a shared habitat enables the identification of ecologically recurrent PUL modules with high biological relevance. These conserved PULs serve as priority targets for functional characterization and provide a robust framework for formulating testable hypotheses about their putative polysaccharide substrates. Despite its constraints, this strategy establishes a novel paradigm for prioritizing environmentally significant polysaccharides that were recalcitrant to conventional biochemical analyses. Future investigations should integrate genome-guided metabolomics and enzymatic activity assays to elucidate the ecological contributions of these bacterial lineages and assess their biotechnological potential in marine carbon cycling and algal biomass valorization.</p>
</sec>
<sec id="sec15">
<title>Description of <italic>Eudoraea algarum</italic> sp. nov.</title>
<p><italic>Eudoraea algarum</italic> (al.Ga&#x2019;rum. L. Gen. Fem. Pl. n. <italic>Algarum</italic>, of/from algae).</p>
<p>Cells are Gram-stain-negative, strictly aerobic and rod-shaped, 2.1&#x2013;2.4&#x202F;&#x03BC;m in length and 0.2&#x2013;0.3&#x202F;&#x03BC;m in width. Colonies on MA are yellow, circular and opaque with entire edges after 2&#x2013;3days of cultivation. Growth is observed at between 20 and 35&#x00B0;C (optimum, 30&#x2013;33&#x00B0;C), pH between 6.0 and 9.0 (optimum, pH&#x202F;7.5) and in the presence of 1&#x2013;6% (w/v) NaCl (optimum, 3&#x2013;4%). Nitrate is not reduced to nitrite. Positive for catalase activity and hydrolysis of Tween 20, starch, DNA and casein, negative for oxidase activity and hydrolysis of Tweens 40, 60 and 80, gelatin and cellulose. <italic>&#x03B2;</italic>-glucosidase (aesculin hydrolysis) and &#x03B2;-galactosidase (PNPG) are positive, but negative reactions for indole production, glucose fermentation, arginine dihydrolase, urease, protease (gelatin hydrolysis) and for all tested assimilation substrates, including glucose, arabinose, mannitol, maltose, potassium gluconate, mannose, N-acetyl-glucosamine, caprate, adipate, malate, citrate and phenylacetate. The major fatty acids are iso-C<sub>15:&#x202F;0</sub>, iso-C<sub>15:&#x202F;1</sub> G, and iso-C<sub>17:&#x202F;0</sub> 3-OH when grown at 28&#x00B0;C. Contains MK-6 as the only respiratory quinone. The predominant polar lipids are phosphatidylethanolamine, aminolipid and unidentified lipid.</p>
<p>The type strain is 2-473A<sup>T</sup> (=&#x202F;MCCC 1H00698<sup>T</sup>&#x202F;=&#x202F;KCTC 102410<sup>T</sup>), was isolated from red maroalgae in marine (<italic>Gelidium</italic> sp.) (122.12&#x202F;N, 37.56 E). The DNA G&#x202F;+&#x202F;C content of the type strain is 45.1&#x202F;mol%.</p>
</sec>
<sec id="sec16">
<title>Description of <italic>Maribacter algarum</italic> sp. nov.</title>
<p><italic>Maribacter algarum</italic> (al.Ga&#x2019;rum. L. Gen. Fem. Pl. n. <italic>Algarum</italic>, of/from algae).</p>
<p>Cells are Gram-stain-negative, facultative anaerobic and rod-shaped, 0.8&#x2013;1.0&#x202F;&#x03BC;m in length and 0.3&#x202F;&#x03BC;m in width. Colonies on MA are yellow, circular and opaque with entire edges after 2&#x2013;3days of cultivation. Growth is observed at between 10 and 40&#x00B0;C (optimum, 25&#x2013;30&#x00B0;C), pH between 5.5 and 9.0 (optimum, pH&#x202F;8.0) and in the presence of 0&#x2013;10% (w/v) NaCl (optimum, 2&#x2013;5%). Nitrate is reduced to nitrite. Positive for oxidase and catalase activity and hydrolysis of gelatin, Tween 20, 40, 60 and 80 and starch, negative for hydrolysis of cellulose, DNA and casein. Cells exhibited <italic>&#x03B2;</italic>-glucosidase activity but tested negative for L-tryptophan utilization, D-glucose fermentation, arginine dihydrolase, urease, &#x03B2;-galactosidase, gelatin liquefaction, glucose fermentation, arabinose fermentation, mannose fermentation, mannitol fermentation, N-acetylglucosamine fermentation, maltose fermentation, potassium gluconate utilization, capric acid oxidation, adipic acid oxidation, malic acid oxidation, citrate utilization, and phenylacetic acid oxidation. The major fatty acids are iso-C<sub>15:&#x202F;0</sub>, iso-C<sub>15:&#x202F;1</sub> G, and iso-C<sub>17:&#x202F;0</sub> 3-OH when grown at 28&#x00B0;C. Contains MK-6 as the only respiratory quinone. The predominant polar lipids are phosphatidylethanolamine, and phospholipid.</p>
<p>The type strain is 4-528<sup>T</sup> (=&#x202F;MCCC 1H00803<sup>T</sup>&#x202F;=&#x202F;KCTC 102405<sup>T</sup>), was isolated from red maroalgae in marine (<italic>Gelidium</italic> sp.) (122.12&#x202F;N, 37.56 E). The DNA G&#x202F;+&#x202F;C content of the type strain is 35.2&#x202F;mol%.</p>
</sec>
<sec id="sec17">
<title>Description of <italic>Brumimicrobium ulvae</italic> sp. nov.</title>
<p><italic>Brumimicrobium ulvae</italic> (ul&#x2019;vae. L. Gen. Fem. n. <italic>Ulvae</italic>, of a seaweed).</p>
<p>Cells are Gram-stain-negative, strictly aerobic and rod-shaped, 1.3&#x2013;1.7&#x202F;&#x03BC;m in length and 0.2&#x202F;&#x03BC;m in width. Colonies on MA are orange, circular and opaque with entire edges after 2&#x2013;3days of cultivation. Growth is observed at between 10 and 35&#x00B0;C (optimum, 25&#x2013;28&#x00B0;C), pH between 5.5 and 9.0 (optimum, pH&#x202F;7.5) and in the presence of 1&#x2013;8% (w/v) NaCl (optimum, 6%). Nitrate is not reduced to nitrite. Positive for oxidase and catalase activity and hydrolysis of gelatin, Tween 40, 60 and 80, casein, DNA, and cellulose, negative for hydrolysis of Tween 20, and starch. Cells exhibited <italic>&#x03B2;</italic>-glucosidase activity but tested negative for L-tryptophan utilization, D-glucose fermentation, arginine dihydrolase, urease, &#x03B2;-galactosidase, gelatin liquefaction, glucose fermentation, arabinose fermentation, mannose fermentation, mannitol fermentation, N-acetylglucosamine fermentation, maltose fermentation, potassium gluconate utilization, capric acid oxidation, adipic acid oxidation, malic acid oxidation, citrate utilization, and phenylacetic acid oxidation. The major fatty acids are iso-C<sub>15:&#x202F;0</sub> and iso-C<sub>15:&#x202F;1</sub> G when grown at 28&#x00B0;C. Contains MK-6 as the only respiratory quinone. The predominant polar lipids are phosphatidylethanolamine, and aminolipid.</p>
<p>The type strain is 4-911<sup>T</sup> (=&#x202F;MCCC 1H00873<sup>T</sup>&#x202F;=&#x202F;KCTC 102404<sup>T</sup>), was isolated from red maroalgae in marine (<italic>Ulva</italic> sp.) (122.12&#x202F;N, 37.56 E). The DNA G&#x202F;+&#x202F;C content of the type strain is 36.1&#x202F;mol%.</p>
</sec>
<sec id="sec18">
<title>Description of <italic>Ulvibacter algarum</italic> sp. nov.</title>
<p><italic>Ulvibacter algarum</italic> (al.Ga&#x2019;rum. L. Gen. Fem. Pl. n. <italic>Algarum</italic>, of/from algae).</p>
<p>Cells are Gram-stain-negative, strictly aerobic and ovoid-shaped, 0.4&#x2013;0.9&#x202F;&#x03BC;m in length and 0.3&#x2013;0.4&#x202F;&#x03BC;m in width. Growth is observed at between 10 and 37&#x00B0;C (optimum, 25&#x00B0;C), pH between 5.5 and 9.0 (optimum, pH&#x202F;7.0&#x2013;8.0) and in the presence of 0&#x2013;6% (w/v) NaCl (optimum, 1&#x2013;3%). Nitrate is not reduced to nitrite. Oxidase and catalase activities are present. Tweens 20, 40, 60 and 80 are decomposed. Gelatin, agar, casein, starch, DNA and cellulose are not hydrolyzed. Cells exhibited weak <italic>&#x03B2;</italic>-glucosidase activity but tested negative for all other enzymatic and metabolic traits assessed, including L-tryptophan utilization, D-glucose fermentation, arginine dihydrolase, urease, &#x03B2;-galactosidase, gelatin liquefaction, glucose fermentation, arabinose fermentation, mannose fermentation, mannitol fermentation, N-acetylglucosamine fermentation, maltose fermentation, potassium gluconate utilization, capric acid oxidation, adipic acid oxidation, malic acid oxidation, citrate utilization, and phenylacetic acid oxidation. The major fatty acids are iso-C<sub>15:&#x202F;0</sub>, iso-C<sub>17:&#x202F;0</sub> 3-OH and summed feature 3 (comprising C<sub>16:&#x202F;1</sub><italic>&#x03C9;6c</italic> and/or C<sub>16:&#x202F;1</sub><italic>&#x03C9;7c</italic>) when grown at 28&#x00B0;C. Contains MK-6 as the only respiratory quinone. The predominant polar lipids are phosphatidylethanolamine and aminolipid.</p>
<p>The type strain is 3-376<sup>T</sup> (=&#x202F;MCCC 1H01507<sup>T</sup>), isolated from red maroalgae in marine (<italic>Gelidium</italic> sp.) (122.12&#x202F;N, 37.56 E). The DNA G&#x202F;+&#x202F;C content of the type strain is 34.4&#x202F;mol%.</p>
</sec>
<sec id="sec19">
<title>Description of <italic>Tamlana algarum</italic> sp. nov.</title>
<p><italic>Tamlana algarum</italic> (al.Ga&#x2019;rum. L. Gen. Fem. Pl. n. <italic>Algarum</italic>, of/from algae).</p>
<p>Cells are Gram-stain-negative, facultative anaerobic and spherical-shaped, 0.4&#x202F;&#x03BC;m in length and 0.4&#x202F;&#x03BC;m in width. Colonies on MA are yellow, circular and opaque with entire edges after 2&#x2013;3days of cultivation. Growth is observed at between 15 and 35&#x00B0;C (optimum, 28&#x00B0;C), pH between 6.0 and 9.0 (optimum, pH&#x202F;7.5) and in the presence of 1&#x2013;6% (w/v) NaCl (optimum, 3%). Nitrate is reduced to nitrite. Positive for oxidase and catalase activity and hydrolysis of Tweens 20, 40 and 60, negative for oxidase activity and hydrolysis of Tweens 80, starch, casein, gelatin, DNA and cellulose. Cells exhibited <italic>&#x03B2;</italic>-glucosidase activity but tested negative for L-tryptophan utilization, D-glucose fermentation, arginine dihydrolase, urease, &#x03B2;-galactosidase, gelatin liquefaction, glucose fermentation, arabinose fermentation, mannose fermentation, mannitol fermentation, N-acetylglucosamine fermentation, maltose fermentation, potassium gluconate utilization, capric acid oxidation, adipic acid oxidation, malic acid oxidation, citrate utilization, and phenylacetic acid oxidation. The major fatty acids are iso-C<sub>15:&#x202F;0</sub>, iso-C<sub>15:&#x202F;1</sub> G, iso-C<sub>15:&#x202F;0</sub> 3-OH and iso-C<sub>17:&#x202F;0</sub> 3-OH when grown at 28&#x00B0;C. Contains MK-6 as the only respiratory quinone. The predominant polar lipids are phosphatidylethanolamine, aminolipids and unidentified lipid.</p>
<p>The type strain is 4-2040<sup>T</sup> (=&#x202F;MCCC 1H00922<sup>T</sup>), isolated from brown maroalgae in marine (<italic>Saccharina</italic> sp.) (122.12&#x202F;N, 37.56 E). The DNA G&#x202F;+&#x202F;C content of the type strain is 35.4&#x202F;mol%.</p>
</sec>
<sec id="sec20">
<title>Description of <italic>Aurantiphycus algarum</italic> sp. nov.</title>
<p><italic>Aurantiphycus algarum</italic> (al.Ga&#x2019;rum. L. Gen. Fem. Pl. n. <italic>Algarum</italic>, of/from algae).</p>
<p>Cells are Gram-stain-negative, facultative anaerobic, and ovoid-shaped, 0.5&#x2013;0.6&#x202F;&#x03BC;m in length and 0.3&#x2013;0.4&#x202F;&#x03BC;m in width. Colonies on MA are orange, circular and opaque with entire edges after 2&#x2013;3days of cultivation. Growth is observed at between 20 and 35&#x00B0;C (optimum, 28&#x00B0;C), pH between 5.5 and 9.0 (optimum, pH&#x202F;7.5) and in the presence of 0&#x2013;6% (w/v) NaCl (optimum, 2&#x2013;3%). Nitrate is reduced to nitrite. Positive for oxidase activity and hydrolysis of starch, casein and DNA, negative for catalase activity and hydrolysis of Tween 20, 40, 60 and 80, gelatin, and cellulose. Cells exhibited &#x03B2;-glucosidase and &#x03B2;-galactosidase, activity but tested negative for L-tryptophan utilization, D-glucose fermentation, arginine dihydrolase, urease, glucose fermentation, arabinose fermentation, mannose fermentation, mannitol fermentation, N-acetylglucosamine fermentation, maltose fermentation, potassium gluconate utilization, capric acid oxidation, adipic acid oxidation, malic acid oxidation, citrate utilization, and phenylacetic acid oxidation. The major fatty acids are iso-C<sub>15:&#x202F;0</sub>, iso-C<sub>15:&#x202F;1</sub> G, iso-C<sub>17:&#x202F;0</sub> 3-OH, summed feature 8 (comprising C<sub>16:&#x202F;1</sub><italic>&#x03C9;6c</italic> and/or C<sub>16:&#x202F;1</sub><italic>&#x03C9;7c</italic>) when grown at 28&#x00B0;C. Contains MK-7 as the only respiratory quinone. The predominant polar lipids are phosphatidylethanolamine, aminolipid and unidentified lipid.</p>
<p>The type strain is 463<sup>T</sup> (=&#x202F;MCCC 1H00865<sup>T</sup>), was isolated from red maroalgae in marine (<italic>Grateloupia</italic> sp.) (122.12&#x202F;N, 37.56 E). The DNA G&#x202F;+&#x202F;C content of the type strain is 43.9&#x202F;mol%.</p>
</sec>
</body>
<back>
<sec sec-type="data-availability" id="sec21">
<title>Data availability statement</title>
<p>The GenBank accession number for the 16S rRNA gene sequence of strain 3-376<sup>T</sup>, 4-2040<sup>T</sup>, 2-473A<sup>T</sup>, 4-528<sup>T</sup>, 4-911<sup>T</sup> and 463<sup>T</sup> were PV684998, PV685000, PV685001, PV685002, PV684997 and PV684999 respectively. The draft genome of strain 3-376<sup>T</sup>, 4-2040<sup>T</sup>, 2-473A<sup>T</sup>, 4-528<sup>T</sup>, 4-911<sup>T</sup> and 463<sup>T</sup> had been deposited in GenBank under the accession number CANLBJ000000000, CANMAQ000000000, JBNGOQ000000000, CANMAW000000000, CANNGT000000000 and CANLOR000000000 respectively. BioSample: SAMEA112156868, SAMN40544020; BioProject: PRJEB57783. Sequences were available from the European Nucleotide Archive under accessions PRJEB50838 (metagenomes and MAGs), and PRJEB57783 (genomes of cultured bacteria).</p>
</sec>
<sec sec-type="author-contributions" id="sec22">
<title>Author contributions</title>
<p>D-CL: Writing &#x2013; original draft, Visualization, Data curation, Funding acquisition, Writing &#x2013; review &#x0026; editing. YY: Writing &#x2013; original draft, Writing &#x2013; review &#x0026; editing. X-YT: Writing &#x2013; review &#x0026; editing, Visualization, Writing &#x2013; original draft. LL: Visualization, Writing &#x2013; review &#x0026; editing. J-HT: Writing &#x2013; review &#x0026; editing, Visualization. XC: Data curation, Writing &#x2013; review &#x0026; editing. T-HL: Visualization, Data curation, Writing &#x2013; review &#x0026; editing. JZ: Visualization, Data curation, Writing &#x2013; review &#x0026; editing, Visualization, Data curation, Writing &#x2013; review &#x0026; editing, Writing &#x2013; review &#x0026; editing, Visualization. Z-JD: Funding acquisition, Supervision, Writing &#x2013; original draft. M-YW: Visualization, Writing &#x2013; review &#x0026; editing, Supervision.</p>
</sec>
<ack><title>Acknowledgments</title>
<p>The scanning electron microscopy was supported by the Physical&#x2013;Chemical Materials Analytical and Testing Center of Shandong University at Weihai.</p>
</ack>
<sec sec-type="COI-statement" id="sec24">
<title>Conflict of interest</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 id="sec99" sec-type="correction-note">
<title>Correction note</title>
<p>This article has been corrected with minor changes. These changes do not impact the scientific content of the article.</p>
</sec>
<sec sec-type="ai-statement" id="sec25">
<title>Generative AI statement</title>
<p>The authors declare that no Gen AI was used in the creation of this manuscript.</p>
</sec>
<sec sec-type="disclaimer" id="sec26">
<title>Publisher&#x2019;s note</title>
<p>All claims expressed in this article are solely those of the authors and do not necessarily represent those of their affiliated organizations, or those of the publisher, the editors and the reviewers. Any product that may be evaluated in this article, or claim that may be made by its manufacturer, is not guaranteed or endorsed by the publisher.</p>
</sec>
<sec sec-type="supplementary-material" id="sec27">
<title>Supplementary material</title>
<p>The Supplementary material for this article can be found online at: <ext-link xlink:href="https://www.frontiersin.org/articles/10.3389/fmicb.2025.1642517/full#supplementary-material" ext-link-type="uri">https://www.frontiersin.org/articles/10.3389/fmicb.2025.1642517/full#supplementary-material</ext-link></p>
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<fn-group>
<fn id="fn0008" fn-type="custom" custom-type="edited-by"><p>Edited by: <ext-link ext-link-type="uri" xlink:href="https://loop.frontiersin.org/people/116825/overview">Wen-Jun Li</ext-link>, Sun Yat-sen University, China</p></fn>
<fn id="fn0009" fn-type="custom" custom-type="reviewed-by"><p>Reviewed by: <ext-link ext-link-type="uri" xlink:href="https://loop.frontiersin.org/people/564059/overview">Sun Cuici</ext-link>, Chinese Academy of Sciences (CAS), China</p>
<p><ext-link ext-link-type="uri" xlink:href="https://loop.frontiersin.org/people/985693/overview">Dahe Zhao</ext-link>, Chinese Academy of Sciences (CAS), China</p></fn>
</fn-group>
<fn-group>
<fn id="fn0001"><p><sup>1</sup><ext-link xlink:href="http://www.ezbiocloud.net/tools/contest16s" ext-link-type="uri">www.ezbiocloud.net/tools/contest16s</ext-link></p></fn>
<fn id="fn0002"><p><sup>2</sup><ext-link xlink:href="https://blast.ncbi.nlm.nih.gov" ext-link-type="uri">https://blast.ncbi.nlm.nih.gov</ext-link></p></fn>
<fn id="fn0003"><p><sup>3</sup><ext-link xlink:href="http://www.ezbiocloud.net" ext-link-type="uri">http://www.ezbiocloud.net</ext-link></p></fn>
<fn id="fn0004"><p><sup>4</sup><ext-link xlink:href="http://www.cazy.org/" ext-link-type="uri">http://www.cazy.org/</ext-link></p></fn>
<fn id="fn0005"><p><sup>5</sup><ext-link xlink:href="https://github.com/widdowquinn/pyani" ext-link-type="uri">https://github.com/widdowquinn/pyani</ext-link></p></fn>
<fn id="fn0006"><p><sup>6</sup><ext-link xlink:href="https://github.com/2015qyliang/POCP" ext-link-type="uri">https://github.com/2015qyliang/POCP</ext-link></p></fn>
</fn-group></back>
</article>