Literature DB >> 30785446

Comparative genomics and transcriptomics insights into the C1 metabolic model of a formaldehyde-degrading strain Methylobacterium sp. XJLW.

Yunhai Shao1, Jun Li1, Yanxin Wang1, Fengmei Yi1, Yanan Zhang1, Peiwu Cui1, Weihong Zhong1.   

Abstract

A formaldehyde-degrading strain Methylobacterium sp. XJLW was isolated and exhibited a special phenotype for formaldehyde utilization. The accumulation of formic acid in large quantities and lower cell growth was detected when XJLW utilized formaldehyde as the sole carbon source, suggesting XJLW has a potentially novel pathway to transfer formaldehyde to methanol and then enter the serine cycle for C1 metabolism. This mechanism requires exploration via molecular omics. Thus, the complete genome of XJLW was sequenced, and the transcriptome difference was also analyzed based on the RNA-seq data of strain XJLW cultivated with methanol and glucose, respectively. XJLW has a chromosome DNA and a mega-plasmid DNA. Ten percent of genes on chromosome DNA are strain-specific in genus Methylobacterium. Transcriptome analysis results showed that 623 genes were significantly up-regulated and that 207 genes were significantly down-regulated for growth in methanol. Among the up-regulated genes, 90 genes belong to strain-specific regions and are densely distributed in three areas. A specific gene (A3862_27225) annotated as methyltransferase was found ranking in the top 4 of up-regulated genes. This methyltransferase may play a role in the specific C1 metabolism of XJLW. Methylobacterium sp. XJLW should contain a potential methyl transport pathway via the novel methyltransferase, which is different from known pathways. These findings provide the basis for additional possibilities, which improve the formaldehyde-degrading ability of Methylobacterium sp. XJLW.

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Year:  2019        PMID: 30785446     DOI: 10.1039/c8mo00198g

Source DB:  PubMed          Journal:  Mol Omics        ISSN: 2515-4184


  2 in total

Review 1.  Biotechnology progress for removal of indoor gaseous formaldehyde.

Authors:  Yunhai Shao; Yanxin Wang; Rui Zhao; Jianmen Chen; Fuming Zhang; Robert J Linhardt; Weihong Zhong
Journal:  Appl Microbiol Biotechnol       Date:  2020-03-14       Impact factor: 4.813

2.  Transcriptomic response of Pseudomonas nicosulfuronedens LAM1902 to the sulfonylurea herbicide nicosulfuron.

Authors:  Miaomiao Li; Qingqing Li; Jun Yao; Geoffrey Sunahara; Robert Duran; Qinghua Zhang; Zhiyong Ruan
Journal:  Sci Rep       Date:  2022-08-11       Impact factor: 4.996

  2 in total

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