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横跨细菌和古菌生命树的碳固定途径。

Carbon fixation pathways across the bacterial and archaeal tree of life.

作者信息

Garritano Alessandro N, Song Weizhi, Thomas Torsten

机构信息

Centre for Marine Science and Innovation, School of Biological, Earth and Environmental Sciences, Faculty of Science, The University of New South Wales, Kensington, NSW 2052, Australia.

出版信息

PNAS Nexus. 2022 Oct 4;1(5):pgac226. doi: 10.1093/pnasnexus/pgac226. eCollection 2022 Nov.

Abstract

Carbon fixation is a critical process for our planet; however, its distribution across the bacterial and archaeal domains of life has not been comprehensively studied. Here, we performed an analysis of 52,515 metagenome-assembled genomes and discover carbon fixation pathways in 1,007 bacteria and archaea. We reveal the genomic potential for carbon fixation through the reverse tricarboxylic acid cycle in previously unrecognized archaeal and bacterial phyla (i.e. and ) and show that the 3-hydroxypropionate bi-cycle is not, as previously thought, restricted to the phylum . The data also substantially expand the phylogenetic breadth for autotrophy through the dicarboxylate/4-hydroxybutyrate cycle and the Calvin-Benson-Bassham cycle. Finally, the genomic potential for carbon fixation through the 3-hydroxypropionate/4-hydroxybutyrate cycle, previously exclusively found in , was also detected in the . Carbon fixation thus appears to be much more widespread than previously known, and this study lays the foundation to better understand the role of archaea and bacteria in global primary production and how they contribute to microbial carbon sinks.

摘要

碳固定对我们的星球来说是一个关键过程;然而,其在细菌域和古菌域生命中的分布尚未得到全面研究。在这里,我们对52515个宏基因组组装基因组进行了分析,并在1007种细菌和古菌中发现了碳固定途径。我们揭示了以前未被认识的古菌门和细菌门(即 和 )通过反向三羧酸循环进行碳固定的基因组潜力,并表明3-羟基丙酸双循环并不像以前认为的那样仅限于 门。这些数据还极大地扩展了通过二羧酸/4-羟基丁酸循环和卡尔文-本森-巴斯姆循环实现自养的系统发育广度。最后,以前仅在 中发现的通过3-羟基丙酸/4-羟基丁酸循环进行碳固定的基因组潜力,在 中也被检测到。因此,碳固定似乎比以前所知的要广泛得多,这项研究为更好地理解古菌和细菌在全球初级生产中的作用以及它们如何促进微生物碳汇奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d60d/9802188/f9f32aec01b8/pgac226fig1.jpg

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