Suppr超能文献

神秘的浮霉菌门可能是产甲烷作用和甲基营养起源的关键所在。

The enigmatic planctomycetes may hold a key to the origins of methanogenesis and methylotrophy.

作者信息

Chistoserdova Ludmila, Jenkins Cheryl, Kalyuzhnaya Marina G, Marx Christopher J, Lapidus Alla, Vorholt Julia A, Staley James T, Lidstrom Mazy E

机构信息

Departments of Chemical Engineering, University of Washington, Seattle, WA, USA.

出版信息

Mol Biol Evol. 2004 Jul;21(7):1234-41. doi: 10.1093/molbev/msh113. Epub 2004 Mar 10.

Abstract

Methanogenesis and methane oxidation are the major biological processes affecting the global cycling of the powerful greenhouse gas methane. To carry out the two alternative bioconversions, Nature has cleverly recycled key reactions for the C1 transfers between the oxidation levels of formaldehyde and formate, and these involve analogous enzyme systems and common specialized cofactors, methanopterin and methanofuran. Until recently, the distribution of these functions has been limited to methanogenic archaea and methylotrophic proteobacteria, and their evolutionary history remained obscure. Single interdomain lateral transfer of the respective genes has been suggested to play a role. Here we show that genes for C1 transfer reactions linked to methanopterin and methanofuran are also present in diverse representatives of the enigmatic bacterial clade, the Planctomycetes. Phylogenetic analysis places the planctomycete sequences as distantly from their archaeal counterparts as from their proteobacterial counterparts, suggesting novel scenarios for the evolution of the C1 transfer functions in both methanogens and methylotrophs. This finding suggests a possible role for Planctomycetes in the evolution of the methane cycle on Earth.

摘要

甲烷生成和甲烷氧化是影响强效温室气体甲烷全球循环的主要生物过程。为了进行这两种相互替代的生物转化,大自然巧妙地循环利用了甲醛和甲酸氧化态之间C1转移的关键反应,这些反应涉及类似的酶系统和常见的特殊辅因子——甲蝶呤和甲呋喃。直到最近,这些功能的分布还仅限于产甲烷古菌和甲基营养型变形菌,它们的进化历史仍然不明。有人提出,各自基因的单域间横向转移发挥了作用。在这里,我们表明,与甲蝶呤和甲呋喃相关的C1转移反应基因也存在于神秘细菌分支浮霉菌门的各种代表菌株中。系统发育分析表明,浮霉菌门的序列与它们的古菌对应序列的距离,和与它们的变形菌对应序列的距离一样远,这表明产甲烷菌和甲基营养菌中C1转移功能的进化有新的情况。这一发现表明浮霉菌门在地球甲烷循环的进化中可能发挥作用。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验