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比较基因组学揭示了嗜热解纤维梭菌利用木糖的可能适应机制。

Comparative genomics reveals probable adaptations for xylose use in Thermoanaerobacterium saccharolyticum.

机构信息

Laboratory of Genomics and bioEnergy (LGE), Department of Genetics, Evolution, Microbiology and Immunology, Institute of Biology, UNICAMP, Campinas, São Paulo, Brazil.

出版信息

Extremophiles. 2024 Jan 8;28(1):9. doi: 10.1007/s00792-023-01327-x.

Abstract

Second-generation ethanol, a promising biofuel for reducing greenhouse gas emissions, faces challenges due to the inefficient metabolism of xylose, a pentose sugar. Overcoming this hurdle requires exploration of genes, pathways, and organisms capable of fermenting xylose. Thermoanaerobacterium saccharolyticum is an organism capable of naturally fermenting compounds of industrial interest, such as xylose, and understanding evolutionary adaptations may help to bring novel genes and information that can be used for industrial yeast, increasing production of current bio-platforms. This study presents a deep evolutionary study of members of the firmicutes clade, focusing on adaptations in Thermoanaerobacterium saccharolyticum that may be related to overall fermentation metabolism, especially for xylose fermentation. One highlight is the finding of positive selection on a xylose-binding protein of the xylFGH operon, close to the annotated sugar binding site, with this protein already being found to be expressed in xylose fermenting conditions in a previous study. Results from this study can serve as basis for searching for candidate genes to use in industrial strains or to improve Thermoanaerobacterium saccharolyticum as a new microbial cell factory, which may help to solve current problems found in the biofuels' industry.

摘要

第二代乙醇是一种很有前途的生物燃料,可以减少温室气体排放,但由于戊糖木糖的代谢效率低下,其发展面临挑战。克服这一障碍需要探索能够发酵木糖的基因、途径和生物。嗜热解糖梭菌是一种能够自然发酵工业感兴趣的化合物(如木糖)的生物体,了解进化适应可能有助于带来新的基因和信息,可用于工业酵母,提高现有生物平台的产量。本研究对厚壁菌门的成员进行了深入的进化研究,重点研究了与整体发酵代谢相关的嗜热解糖梭菌的适应性,特别是与木糖发酵相关的适应性。一个亮点是发现了 xylFGH 操纵子上的木糖结合蛋白存在正选择,该蛋白靠近注释的糖结合位点,在之前的一项研究中已经发现该蛋白在木糖发酵条件下表达。本研究的结果可以作为在工业菌株中寻找候选基因的基础,或作为改进嗜热解糖梭菌作为新型微生物细胞工厂的基础,这可能有助于解决生物燃料行业目前存在的问题。

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