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热带珊瑚礁鱼类的比较宏基因组学研究表明,不同宿主和饮食的肠道核心功能具有保守性,并存在与饮食相关的功能基因富集现象。

Comparative metagenomics of tropical reef fishes show conserved core gut functions across hosts and diets with diet-related functional gene enrichments.

作者信息

Wu Derek G, Harris Cassandra R, Kalis Katie M, Bowen Malique, Biddle Jennifer F, Farag Ibrahim F

机构信息

School of Marine Science and Policy, University of Delaware, Lewes, Delaware, USA.

出版信息

Appl Environ Microbiol. 2025 Feb 19;91(2):e0222924. doi: 10.1128/aem.02229-24. Epub 2025 Jan 22.

Abstract

UNLABELLED

Fish gut microbial communities are important for the breakdown and energy harvesting of the host diet. Microbes within the fish gut are selected by environmental and evolutionary factors. To understand how fish gut microbial communities are shaped by diet, three tropical fish species (hawkfish, ; yellow tang, ; and triggerfish, ) were fed piscivorous (fish meal pellets), herbivorous (seaweed), and invertivorous (shrimp) diets, respectively. From fecal samples, a total of 43 metagenome assembled genomes (MAGs) were recovered from all fish diet treatments. Each host-diet treatment harbored distinct microbial communities based on taxonomy, with , , and being the most represented. Based on their metagenomes, MAGs from all three host-diet treatments demonstrated a baseline ability to degrade proteinaceous, fatty acid, and simple carbohydrate inputs and carry out central carbon metabolism, lactate and formate fermentation, acetogenesis, nitrate respiration, and B vitamin synthesis. The herbivorous yellow tang harbored more functionally diverse MAGs with some complex polysaccharide degradation specialists, while the piscivorous hawkfish's MAGs were more specialized for the degradation of proteins. The invertivorous triggerfish's gut MAGs lacked many carbohydrate-degrading capabilities, resulting in them being more specialized and functionally uniform. Across all treatments, several MAGs were able to participate in only individual steps of the degradation of complex polysaccharides, suggestive of microbial community networks that degrade complex inputs.

IMPORTANCE

The benefits of healthy microbiomes for vertebrate hosts include the breakdown of food into more readily usable forms and production of essential vitamins from their host's diet. Compositions of microbial communities in the guts of fish in response to diet have been studied, but there is a lack of a comprehensive understanding of the genome-based metabolic capabilities of specific microbes and how they support their hosts. Therefore, we assembled genomes of several gut microbes collected from the feces of three fish species that were being fed different diets to illustrate how individual microbes can carry out specific steps in the degradation and energy utilization of various food inputs and support their host. We found evidence that fish gut microbial communities share several core functions despite differences in microbial taxonomy. Herbivorous fish harbored a functionally diverse microbial community with plant matter degraders, while the piscivorous and invertivorous fish had microbiomes more specialized in protein degradation.

摘要

未标注

鱼类肠道微生物群落对于宿主食物的分解和能量获取至关重要。鱼类肠道内的微生物受到环境和进化因素的选择。为了解饮食如何塑造鱼类肠道微生物群落,分别给三种热带鱼(鹰鱼、黄尾蓝魔、扳机鱼)投喂食鱼性(鱼粉颗粒)、草食性(海藻)和食虫性(虾)饮食。从粪便样本中,在所有鱼类饮食处理中总共获得了43个宏基因组组装基因组(MAG)。基于分类学,每种宿主 - 饮食处理都含有不同的微生物群落,其中[具体微生物名称1]、[具体微生物名称2]和[具体微生物名称3]最为常见。基于它们的宏基因组,来自所有三种宿主 - 饮食处理的MAG都显示出降解蛋白质、脂肪酸和简单碳水化合物输入以及进行中心碳代谢、乳酸和甲酸发酵、产乙酸、硝酸盐呼吸和B族维生素合成的基本能力。草食性的黄尾蓝魔含有更多功能多样的MAG,其中一些是复杂多糖降解专家,而食鱼性的鹰鱼的MAG更专门用于蛋白质降解。食虫性的扳机鱼的肠道MAG缺乏许多碳水化合物降解能力,导致它们更加专门化且功能统一。在所有处理中,几个MAG仅能够参与复杂多糖降解的个别步骤,这表明存在降解复杂输入的微生物群落网络。

重要性

健康微生物群对脊椎动物宿主的益处包括将食物分解为更易利用的形式以及从宿主饮食中产生必需维生素。已研究了鱼类肠道中微生物群落对饮食的响应组成,但缺乏对特定微生物基于基因组的代谢能力以及它们如何支持宿主的全面理解。因此我们组装了从三种喂食不同饮食的鱼类粪便中收集的几种肠道微生物的基因组,以说明单个微生物如何在各种食物输入的降解和能量利用中执行特定步骤并支持其宿主。我们发现证据表明,尽管微生物分类不同,但鱼类肠道微生物群落具有几个核心功能。草食性鱼类含有功能多样的微生物群落,其中有植物物质降解者,而食鱼性和食虫性鱼类的微生物群在蛋白质降解方面更具专业性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/da2f/11837501/e02254d84d33/aem.02229-24.f001.jpg

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