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草食性鱼类微生物组对硫酸化膳食多糖的适应。

Herbivorous Fish Microbiome Adaptations to Sulfated Dietary Polysaccharides.

机构信息

Center for Marine Biotechnology & Biomedicine, Scripps Institution of Oceanography, University of California, San Diego, La Jolla, California, USA.

Marine Biology Research Division, Scripps Institution of Oceanography, University of California, San Diego, La Jolla, California, USA.

出版信息

Appl Environ Microbiol. 2023 May 31;89(5):e0215422. doi: 10.1128/aem.02154-22. Epub 2023 May 3.

Abstract

Marine herbivorous fish that feed primarily on macroalgae, such as those from the genus are essential for maintaining coral health and abundance on tropical reefs. Here, deep metagenomic sequencing and assembly of gut compartment-specific samples from three sympatric, macroalgivorous Hawaiian kyphosid species have been used to connect host gut microbial taxa with predicted protein functional capacities likely to contribute to efficient macroalgal digestion. Bacterial community compositions, algal dietary sources, and predicted enzyme functionalities were analyzed in parallel for 16 metagenomes spanning the mid- and hindgut digestive regions of wild-caught fishes. Gene colocalization patterns of expanded carbohydrate (CAZy) and sulfatase (SulfAtlas) digestive enzyme families on assembled contigs were used to identify likely polysaccharide utilization locus associations and to visualize potential cooperative networks of extracellularly exported proteins targeting complex sulfated polysaccharides. These insights into the gut microbiota of herbivorous marine fish and their functional capabilities improve our understanding of the enzymes and microorganisms involved in digesting complex macroalgal sulfated polysaccharides. This work connects specific uncultured bacterial taxa with distinct polysaccharide digestion capabilities lacking in their marine vertebrate hosts, providing fresh insights into poorly understood processes for deconstructing complex sulfated polysaccharides and potential evolutionary mechanisms for microbial acquisition of expanded macroalgal utilization gene functions. Several thousand new marine-specific candidate enzyme sequences for polysaccharide utilization have been identified. These data provide foundational resources for future investigations into suppression of coral reef macroalgal overgrowth, fish host physiology, the use of macroalgal feedstocks in terrestrial and aquaculture animal feeds, and the bioconversion of macroalgae biomass into value-added commercial fuel and chemical products.

摘要

主要以大型藻类为食的海洋草食性鱼类,如属中的那些鱼类,对于维持热带珊瑚礁的健康和丰富度至关重要。在这里,从三种共生的、以大型藻类为食的夏威夷盔鱼属鱼类的肠道特定部位的样本中进行了深度宏基因组测序和组装,以将宿主肠道微生物分类群与预测的蛋白功能能力联系起来,这些能力可能有助于高效地消化大型藻类。对 16 个宏基因组进行了细菌群落组成、藻类饮食来源和预测酶功能的平行分析,这些宏基因组涵盖了野生捕获鱼类的中肠和后肠消化区域。通过对组装的 contigs 上扩展的碳水化合物 (CAZy) 和硫酸酯酶 (SulfAtlas) 消化酶家族的基因共定位模式,鉴定可能的多糖利用基因座关联,并可视化针对复杂硫酸化多糖的细胞外分泌蛋白的潜在合作网络。这些对草食性海洋鱼类肠道微生物组及其功能能力的深入了解,提高了我们对参与消化复杂大型藻类硫酸化多糖的酶和微生物的认识。这项工作将特定的未培养细菌分类群与缺乏在其海洋脊椎动物宿主中的独特多糖消化能力联系起来,为深入了解分解复杂硫酸化多糖的过程以及微生物获得扩展的大型藻类利用基因功能的潜在进化机制提供了新的见解。已经鉴定出数千种新的海洋特异性候选多糖利用酶序列。这些数据为未来研究珊瑚礁大型藻类过度生长的抑制、鱼类宿主生理学、大型藻类饲料在陆地和水产养殖动物饲料中的应用以及大型藻类生物质向增值商业燃料和化学产品的生物转化提供了基础资源。

相似文献

1
Herbivorous Fish Microbiome Adaptations to Sulfated Dietary Polysaccharides.草食性鱼类微生物组对硫酸化膳食多糖的适应。
Appl Environ Microbiol. 2023 May 31;89(5):e0215422. doi: 10.1128/aem.02154-22. Epub 2023 May 3.

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