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Pleiotropic Clostridioides difficile Cyclophilin PpiB Controls Cysteine-Tolerance, Toxin Production, the Central Metabolism and Multiple Stress Responses

机译:多效性<斜体> Clostridioides艰难 Cyclophilin PpiB控制半胱氨酸耐受性,毒素产生,中枢代谢和多种应激反应

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The Gram-positive pathogen Clostridioides difficile is the main bacterial agent of nosocomial antibiotic associated diarrhea. Bacterial peptidyl-prolyl- cis/trans -isomerases (PPIases) are well established modulators of virulence that influence the outcome of human pathologies during infections. Here, we present the first interactomic network of the sole cyclophilin-type PPIase of C. difficile (CdPpiB) and show that it has diverse interaction partners including major enzymes of the amino acid-dependent energy (LdhA, EtfAB, Had, Acd) and the glucose-derived (Fba, GapA, Pfo, Pyk, Pyc) central metabolism. Proteins of the general (UspA), oxidative (Rbr1,2,3, Dsr), alkaline (YloU, YphY) and cold shock (CspB) response were found bound to CdPpiB. The transcriptional (Lrp), translational (InfC, RFF) and folding (GroS, DnaK) control proteins were also found attached. For a crucial enzyme of cysteine metabolism, O -acetylserine sulfhydrylase (CysK), the global transcription regulator Lrp and the flagellar subunit FliC, these interactions were independently confirmed using a bacterial two hybrid system. The active site residues F50, F109, and F110 of CdPpiB were shown to be important for the interaction with the residue P87 of Lrp. CysK activity after heat denaturation was restored by interaction with CdPpiB. In accordance, tolerance toward cell wall stress caused by the exposure to amoxicillin was reduced. In the absence of CdPpiB, C. difficile was more susceptible toward L-cysteine. At the same time, the cysteine-mediated suppression of toxin production ceased resulting in higher cytotoxicity. In summary, the cyclophilin-type PPIase of C. difficile (CdPpiB) coordinates major cellular processes via its interaction with major regulators of transcription, translation, protein folding, stress response and the central metabolism.
机译:革兰氏阳性病原体艰难梭菌是医院内抗生素相关性腹泻的主要细菌。细菌肽基脯氨酰顺式/反式异构酶(PPIases)是公认的毒力调节剂,可影响感染过程中人类病理学的结果。在这里,我们介绍了艰难梭菌的唯一亲环蛋白型PPIase(CdPpiB)的第一个相互作用组网,并表明它具有多种相互作用伙伴,包括氨基酸依赖性能量的主要酶(LdhA,EtfAB,Had,Acd)和葡萄糖衍生的(Fba,GapA,Pfo,Pyk,Pyc)中枢代谢。发现一般蛋白(UspA),氧化蛋白(Rbr1,2,3,Dsr),碱性蛋白(YloU,YphY)和冷休克蛋白(CspB)的蛋白均与CdPpiB结合。还发现转录(Lrp),翻译(InfC,RFF)和折叠(GroS,DnaK)控制蛋白均已附着。对于半胱氨酸代谢的关键酶,O-乙酰丝氨酸巯基化酶(CysK),全局转录调节剂Lrp和鞭毛亚基FliC,使用细菌两杂交系统独立地证实了这些相互作用。 CdPpiB的活性位点残基F50,F109和F110对于与Lrp残基P87相互作用至关重要。通过与CdPpiB的相互作用,热变性后的CysK活性得以恢复。因此,降低了由于暴露于阿莫西林引起的对细胞壁应力的耐受性。在没有CdPpiB的情况下,艰难梭菌对L-半胱氨酸更易感。同时,半胱氨酸介导的毒素产生抑制作用停止,导致更高的细胞毒性。总之,艰难梭菌的亲环蛋白型PPIase(CdPpiB)通过其与转录,翻译,蛋白质折叠,应激反应和中央代谢的主要调节剂的相互作用来协调主要的细胞过程。

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