The Thermoanaerobacter Glycobiome Reveals Mechanisms of Pentose and Hexose Co-Utilization in Bacteria | |
Lin, Lu1,2,3; Song, Houhui1; Tu, Qichao2,3; Qin, Yujia2,3; Zhou, Aifen2,3; Liu, Wenbin2,3; He, Zhili2,3; Zhou, Jizhong2,3; Xu, Jian1 | |
2011-10-01 | |
发表期刊 | PLOS GENETICS |
卷号 | 7期号:10 |
摘要 | Thermoanaerobic bacteria are of interest in cellulosic-biofuel production, due to their simultaneous pentose and hexose utilization (co-utilization) and thermophilic nature. In this study, we experimentally reconstructed the structure and dynamics of the first genome-wide carbon utilization network of thermoanaerobes. The network uncovers numerous novel pathways and identifies previously unrecognized but crucial pathway interactions and the associated key junctions. First, glucose, xylose, fructose, and cellobiose catabolism are each featured in distinct functional modules; the transport systems of hexose and pentose are apparently both regulated by transcriptional antiterminators of the BglG family, which is consistent with pentose and hexose co-utilization. Second, glucose and xylose modules cooperate in that the activity of the former promotes the activity of the latter via activating xylose transport and catabolism, while xylose delays cell lysis by sustaining coenzyme and ion metabolism. Third, the vitamin B12 pathway appears to promote ethanologenesis through ethanolamine and 1, 2-propanediol, while the arginine deiminase pathway probably contributes to cell survival in stationary phase. Moreover, by experimentally validating the distinct yet collaborative nature of glucose and xylose catabolism, we demonstrated that these novel network-derived features can be rationally exploited for product-yield enhancement via optimized timing and balanced loading of the carbon supply in a substrate-specific manner. Thus, this thermoanaerobic glycobiome reveals novel genetic features in carbon catabolism that may have immediate industrial implications and provides novel strategies and targets for fermentation and genome engineering. ; Thermoanaerobic bacteria are of interest in cellulosic-biofuel production, due to their simultaneous pentose and hexose utilization (co-utilization) and thermophilic nature. In this study, we experimentally reconstructed the structure and dynamics of the first genome-wide carbon utilization network of thermoanaerobes. The network uncovers numerous novel pathways and identifies previously unrecognized but crucial pathway interactions and the associated key junctions. First, glucose, xylose, fructose, and cellobiose catabolism are each featured in distinct functional modules; the transport systems of hexose and pentose are apparently both regulated by transcriptional antiterminators of the BglG family, which is consistent with pentose and hexose co-utilization. Second, glucose and xylose modules cooperate in that the activity of the former promotes the activity of the latter via activating xylose transport and catabolism, while xylose delays cell lysis by sustaining coenzyme and ion metabolism. Third, the vitamin B-12 pathway appears to promote ethanologenesis through ethanolamine and 1, 2-propanediol, while the arginine deiminase pathway probably contributes to cell survival in stationary phase. Moreover, by experimentally validating the distinct yet collaborative nature of glucose and xylose catabolism, we demonstrated that these novel network-derived features can be rationally exploited for product-yield enhancement via optimized timing and balanced loading of the carbon supply in a substrate-specific manner. Thus, this thermoanaerobic glycobiome reveals novel genetic features in carbon catabolism that may have immediate industrial implications and provides novel strategies and targets for fermentation and genome engineering. |
文章类型 | Article |
学科领域 | 功能基因组 |
WOS标题词 | Science & Technology ; Life Sciences & Biomedicine |
DOI | 10.1371/journal.pgen.1002318 |
关键词[WOS] | ARGININE DEIMINASE PATHWAY ; TRANSCRIPTIONAL ANALYSIS ; ALCOHOL DEHYDROGENASES ; ETHANOL-PRODUCTION ; DEEP SUBSURFACE ; GENE-CLUSTER ; NETWORKS ; OVEREXPRESSION ; PURIFICATION ; EXPRESSION |
收录类别 | SCI |
语种 | 英语 |
WOS研究方向 | Genetics & Heredity |
WOS类目 | Genetics & Heredity |
WOS记录号 | WOS:000296665400019 |
引用统计 | |
文献类型 | 期刊论文 |
条目标识符 | http://ir.qibebt.ac.cn/handle/337004/956 |
专题 | 单细胞中心组群 |
作者单位 | 1.Chinese Acad Sci, CAS Key Lab Biofuels, Shandong Key Lab Energy Genet & BioEnergy Genome, Qingdao Inst BioEnergy & BioProc Technol, Qingdao, Peoples R China 2.Univ Oklahoma, Dept Bot & Microbiol, Norman, OK 73019 USA 3.Univ Oklahoma, Inst Environm Genom, Norman, OK 73019 USA |
推荐引用方式 GB/T 7714 | Lin, Lu,Song, Houhui,Tu, Qichao,et al. The Thermoanaerobacter Glycobiome Reveals Mechanisms of Pentose and Hexose Co-Utilization in Bacteria[J]. PLOS GENETICS,2011,7(10). |
APA | Lin, Lu.,Song, Houhui.,Tu, Qichao.,Qin, Yujia.,Zhou, Aifen.,...&Xu, Jian.(2011).The Thermoanaerobacter Glycobiome Reveals Mechanisms of Pentose and Hexose Co-Utilization in Bacteria.PLOS GENETICS,7(10). |
MLA | Lin, Lu,et al."The Thermoanaerobacter Glycobiome Reveals Mechanisms of Pentose and Hexose Co-Utilization in Bacteria".PLOS GENETICS 7.10(2011). |
条目包含的文件 | 下载所有文件 | |||||
文件名称/大小 | 文献类型 | 版本类型 | 开放类型 | 使用许可 | ||
The Thermoanaerobact(1060KB) | 开放获取 | CC BY-NC-SA | 浏览 下载 |
除非特别说明,本系统中所有内容都受版权保护,并保留所有权利。
修改评论