首页> 美国卫生研究院文献>Journal of Bacteriology >Genetic Control of Osmoadaptive Glycine Betaine Synthesis in Bacillus subtilis through the Choline-Sensing and Glycine Betaine-Responsive GbsR Repressor
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Genetic Control of Osmoadaptive Glycine Betaine Synthesis in Bacillus subtilis through the Choline-Sensing and Glycine Betaine-Responsive GbsR Repressor

机译:通过胆碱敏感和甜菜碱响应甜菜碱的GbsR阻遏物对枯草芽孢杆菌渗透适应性甘氨酸甜菜碱合成的遗传控制。

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摘要

Synthesis of the compatible solute glycine betaine confers a considerable degree of osmotic stress tolerance to Bacillus subtilis. This osmoprotectant is produced through the uptake of the precursor choline via the osmotically inducible OpuB and OpuC ABC transporters and a subsequent two-step oxidation process by the GbsB and GbsA enzymes. We characterized a regulatory protein, GbsR, controlling the transcription of both the structural genes for the glycine betaine biosynthetic enzymes (gbsAB) and those for the choline-specific OpuB transporter (opuB) but not of that for the promiscuous OpuC transporter. GbsR acts genetically as a repressor and functions as an intracellular choline sensor. Spectroscopic analysis of the purified GbsR protein showed that it binds the inducer choline with an apparent KD (equilibrium dissociation constant) of approximately 165 μM. Based on the X-ray structure of a protein (Mj223) from Methanococcus jannaschii, a homology model for GbsR was derived. Inspection of this GbsR in silico model revealed a possible ligand-binding pocket for choline resembling those of known choline-binding sites present in solute receptors of microbial ABC transporters, e.g., that of the OpuBC ligand-binding protein of the OpuB ABC transporter. GbsR was not only needed to control gbsAB and opuB expression in response to choline availability but also required to genetically tune down glycine betaine production once cellular adjustment to high osmolarity has been achieved. The GbsR regulatory protein from B. subtilis thus records and integrates cellular and environmental signals for both the onset and the repression of the synthesis of the osmoprotectant glycine betaine.
机译:相容性溶质甘氨酸甜菜碱的合成赋予枯草芽孢杆菌相当大的渗透胁迫耐受性。通过渗透诱导的OpuB和OpuC ABC转运蛋白摄取前体胆碱,以及随后的GbsB和GbsA酶进行的两步氧化过程产生了这种渗透保护剂。我们表征了一种调节蛋白GbsR,它控制甘氨酸甜菜碱生物合成酶(gbsAB)和胆碱特异性OpuB转运蛋白(opuB)的结构基因的转录,但不控制混杂OpuC转运蛋白的结构基因的转录。 GbsR在基因上起阻遏作用,并起细胞内胆碱传感器的作用。纯化的GbsR蛋白的光谱分析表明,它与诱导胆碱结合,其表观KD(平衡解离常数)约为165μM。基于詹氏甲烷球菌的蛋白质(Mj223)的X射线结构,得出了GbsR的同源性模型。在计算机模型中对该GbsR的检查揭示了可能存在的胆碱配体结合口袋,类似于微生物ABC转运蛋白的溶质受体中存在的已知胆碱结合位点,例如OpuB ABC转运蛋白的OpuBC配体结合蛋白。一旦实现了对高渗透压的细胞调节,不仅需要GbsR来控制gbsAB和opuB的表达以响应胆碱的利用率,而且还需要遗传上调低甘氨酸甜菜碱的产量。因此,来自枯草芽孢杆菌的GbsR调节蛋白记录并整合了细胞和环境信号,用于渗透保护剂甘氨酸甜菜碱的合成的开始和抑制。

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