首页> 美国卫生研究院文献>Protein Science : A Publication of the Protein Society >The C-terminal domain of dimeric serine hydroxymethyltransferase plays a key role in stabilization of the quaternary structure and cooperative unfolding of protein: Domain swapping studies with enzymes having high sequence identity
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The C-terminal domain of dimeric serine hydroxymethyltransferase plays a key role in stabilization of the quaternary structure and cooperative unfolding of protein: Domain swapping studies with enzymes having high sequence identity

机译:二聚体丝氨酸羟甲基转移酶的C末端结构域在稳定蛋白质的四级结构和协同展开中起关键作用:使用具有高序列同一性的酶进行结构域交换研究

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摘要

The serine hydroxymethyltransferase from Bacillus subtilis (bsSHMT) and B. stearothermophilus (bstSHMT) are both homodimers and share ~77% sequence identity; however, they show very different thermal stabilities and unfolding pathways. For investigating the role of N- and C-terminal domains in stability and unfolding of dimeric SHMTs, we have swapped the structural domains between bs- and bstSHMT and generated the two novel chimeric proteins bsbstc and bstbsc, respectively. The chimeras had secondary structure, tyrosine, and pyridoxal-5′-phosphate microenvironment similar to that of the wild-type proteins. The chimeras showed enzymatic activity slightly higher than that of the wild-type proteins. Interestingly, the guanidium chloride (GdmCl)–induced unfolding showed that unlike the wild-type bsSHMT, which undergoes dissociation of native dimer into monomers at low guanidium chloride (GdmCl) concentration, resulting in a non-cooperative unfolding of enzyme, its chimera bsbstc, having the C-terminal domain of bstSHMT was resistant to low GdmCl concentration and showed a GdmCl-induced cooperative unfolding from native dimer to unfolded monomer. In contrast, the wild-type dimeric bstSHMT was resistant to low GdmCl concentration and showed a GdmCl-induced cooperative unfolding, whereas its chimera bstbsc, having the C- terminal domain of bsSHMT, showed dissociation of native dimer into monomer at low GdmCl concentration and a GdmCl-induced non-cooperative unfolding. These results clearly demonstrate that the C-terminal domain of dimeric SHMT plays a vital role in stabilization of the oligomeric structure of the native enzyme hence modulating its unfolding pathway.
机译:枯草芽孢杆菌(bsSHMT)和嗜热脂肪芽孢杆菌(bstSHMT)的丝氨酸羟甲基转移酶均为同型二聚体,共有约77%的序列同一性。但是,它们表现出截然不同的热稳定性和展开途径。为了研究N末端和C末端结构域在二聚体SHMT的稳定性和展开中的作用,我们在bs-和bstSHMT之间交换了结构域,并分别产生了两个新的嵌合蛋白bsbstc和bstbsc。嵌合体具有与野生型蛋白质相似的二级结构,酪氨酸和吡ido醛-5'-磷酸微环境。嵌合体显示的酶促活性略高于野生型蛋白。有趣的是,氯化胍(GdmCl)诱导的解折叠表明,与野生型bsSHMT不同,后者在低氯化胍(GdmCl)浓度下会经历天然二聚体解离成单体,从而导致酶的非合作性展开,即嵌合体bsbstc ,具有bstSHMT的C-末端结构域,对低GdmCl浓度具有抗性,并且显示出GdmCl诱导的从天然二聚体到未折叠单体的协同展开。相比之下,野生型二聚体bstSHMT对低GdmCl浓度具有抵抗力,并显示GdmCl诱导的协同展开,而其嵌合​​体bstbsc具有bsSHMT的C端结构域,在低GdmCl浓度下,其天然二聚体解离成单体。 GdmCl诱导的非合作性展开。这些结果清楚地表明,二聚体SHMT的C-末端结构域在稳定天然酶的寡聚体结构从而调节其展开途径中起着至关重要的作用。

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