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在需氧发酵过程中,Fnr对粘质沙雷氏菌ATCC 39006中的灵菌红素合成起负调控作用。

Fnr Negatively Regulates Prodigiosin Synthesis in sp. ATCC 39006 During Aerobic Fermentation.

作者信息

Sun Di, Zhou Xuge, Liu Cong, Zhu Jingrong, Ru Yunrui, Liu Weijie, Liu Jiawen

机构信息

Jiangsu Key Laboratory of Phylogenomics and Comparative Genomics, School of Life Sciences, Jiangsu Normal University, Xuzhou, China.

出版信息

Front Microbiol. 2021 Sep 17;12:734854. doi: 10.3389/fmicb.2021.734854. eCollection 2021.

Abstract

The well-known Crp/Fnr family regulator Fnr has long been recognized as an oxygen sensor to regulate multiple biological processes, including the switch between aerobic/anaerobic metabolism, nitrogen fixation, bioluminescence, infection, and virulence. In most cases, Fnr was found to be active under anaerobic conditions. However, its role in aerobic antibiotic metabolism has not yet been revealed. In this research, we report that in the model organism, sp. ATCC 39006, Fnr (Ser39006_013370) negatively regulates prodigiosin production by binding to the spacer between the -10 and -35 region in the promoter of prodigiosin biosynthetic gene cluster under aerobic conditions. Fnr was also shown to modulate the anti-bacterial activity and motility by regulating pathway-specific regulatory genes, indicating that Fnr acts as a global regulator in sp. ATCC 39006. For the first time, we describe that Fnr regulates antibiotic synthesis in the presence of oxygen, which expands the known physiological functions of Fnr and benefits the further investigation of this important transcriptional regulator.

摘要

著名的Crp/Fnr家族调节因子Fnr长期以来一直被认为是一种氧传感器,可调节多种生物过程,包括有氧/无氧代谢之间的转换、固氮、生物发光、感染和毒力。在大多数情况下,Fnr在厌氧条件下具有活性。然而,其在有氧抗生素代谢中的作用尚未被揭示。在本研究中,我们报道在模式生物sp. ATCC 39006中,Fnr(Ser39006_013370)在有氧条件下通过与灵菌红素生物合成基因簇启动子中-10和-35区域之间的间隔区结合,负向调节灵菌红素的产生。Fnr还被证明通过调节途径特异性调节基因来调节抗菌活性和运动性,这表明Fnr在sp. ATCC 39006中作为一种全局调节因子发挥作用。我们首次描述了Fnr在有氧条件下调节抗生素合成,这扩展了Fnr已知的生理功能,并有利于对这一重要转录调节因子的进一步研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/58f9/8485047/a0668a0d5743/fmicb-12-734854-g004.jpg

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