Graduate Group in Biochemistry and Molecular Biophysics, Perelman School of Medicine, University of Pennsylvania, Philadelphia, Pennsylvania, USA; Department of Biology, University of Pennsylvania, Philadelphia, Pennsylvania, USA.
Department of Biology, University of Pennsylvania, Philadelphia, Pennsylvania, USA.
J Biol Chem. 2021 Jan-Jun;296:100090. doi: 10.1074/jbc.RA120.015121. Epub 2020 Nov 23.
Histidine phosphorylation is a posttranslational modification that alters protein function and also serves as an intermediate of phosphoryl transfer. Although phosphohistidine is relatively unstable, enzymatic dephosphorylation of this residue is apparently needed in some contexts, since both prokaryotic and eukaryotic phosphohistidine phosphatases have been reported. Here we identify the mechanism by which a bacterial phosphohistidine phosphatase dephosphorylates the nitrogen-related phosphotransferase system, a broadly conserved bacterial pathway that controls diverse metabolic processes. We show that the phosphatase SixA dephosphorylates the phosphocarrier protein NPr and that the reaction proceeds through phosphoryl transfer from a histidine on NPr to a histidine on SixA. In addition, we show that Escherichia coli lacking SixA are outcompeted by wild-type E. coli in the context of commensal colonization of the mouse intestine. Notably, this colonization defect requires NPr and is distinct from a previously identified in vitro growth defect associated with dysregulation of the nitrogen-related phosphotransferase system. The widespread conservation of SixA, and its coincidence with the phosphotransferase system studied here, suggests that this dephosphorylation mechanism may be conserved in other bacteria.
组氨酸磷酸化是一种翻译后修饰,可改变蛋白质功能,并且作为磷酸基团转移的中间体。虽然磷酸组氨酸相对不稳定,但在某些情况下,显然需要酶促去除该残基的磷酸基团,因为已经报道了原核和真核磷酸组氨酸磷酸酶。在这里,我们确定了细菌磷酸组氨酸磷酸酶使氮相关磷酸转移酶系统去磷酸化的机制,该系统是一种广泛保守的细菌途径,可控制多种代谢过程。我们表明,磷酸酶 SixA 使磷酸载体蛋白 NPr 去磷酸化,并且反应通过 NPr 上的组氨酸向 SixA 上的组氨酸进行磷酸基团转移进行。此外,我们表明,在共生定植小鼠肠道的情况下,缺乏 SixA 的大肠杆菌比野生型大肠杆菌具有竞争优势。值得注意的是,这种定植缺陷需要 NPr,并且与先前鉴定的与氮相关磷酸转移酶系统失调相关的体外生长缺陷不同。SixA 的广泛保守性及其与本研究中研究的磷酸转移酶系统的巧合表明,这种去磷酸化机制可能在其他细菌中保守。