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首页> 外文期刊>Biochemistry >Urea-induced unfolding and conformational stability of 3-isopropylmalate dehydrogenase from the Thermophile thermus thermophilus and its mesophilic counterpart from Escherichia coli.
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Urea-induced unfolding and conformational stability of 3-isopropylmalate dehydrogenase from the Thermophile thermus thermophilus and its mesophilic counterpart from Escherichia coli.

机译:尿素诱导的嗜热嗜热菌及其嗜温对应物的3-异丙基苹果酸脱氢酶的解构和构象稳定性。

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摘要

To reveal the basis of the thermal stability of 3-isopropylmalate dehydrogenase (IPMDH) from an extreme thermophile, Thermus thermophilus, urea-induced unfolding of the enzyme and of its mesophilic counterpart from Escherichia coli has been studied. The urea-induced equilibrium unfolding of T. thermophilus and E. coli IPMDHs at 27 degreesC was monitored by measuring the changes in far-UV CD, intrinsic fluorescence, anilinonaphthalenesulfonic acid (ANS) binding, and catalytic activity in the presence of nonionic detergent Tween 20. For both enzymes, the spectral methods revealed a biphasic unfolding transition. The first transition was protein concentration-independent, whereas the second was protein concentration-dependent for both enzymes. The observation suggested a three-state unfolding mechanism with a dimeric intermediate. However, the intermediates of the E. coli and the T. thermophilus IPMDHs seemed to be different from each other. The intermediate of the E. coli IPMDH lost its secondary and tertiary structure more than that of the thermophilic enzyme. E. coli IPMDH lost enzymatic activity through the transition from the native to the intermediate state, though the intermediate of the T. thermophilus enzyme was still active. The unfolding process of E. coli IPMDH can be explained by a sequential unfolding of individual folding domains, while there is only a small structural perturbation in the intermediate of T. thermophilus IPMDH. The higher thermal stability of T. thermophilus IPMDH can be attributed to the increase in the extent of interaction inside the first domain which unfolded prior to the unfolding of the whole molecular structure in E. coli IPMDH.
机译:为了揭示极端嗜热菌Thermus thermophilus的3-异丙基苹果酸脱氢酶(IPMDH)的热稳定性的基础,已研究了尿素诱导的该酶的解折叠以及其大肠杆菌中温对应物的解折叠。在非离子型洗涤剂吐温的存在下,通过测量远紫外线CD,固有荧光,苯胺基萘磺酸(ANS)的结合以及催化活性的变化,可以监测尿素诱导的嗜热链球菌和大肠杆菌IPMDHs在27摄氏度时的平衡展开。 20.对于这两种酶,光谱方法均显示出双相展开过渡。对于两种酶,第一个转变是蛋白质浓度无关的,而第二个转变是蛋白质浓度依赖性的。该观察结果表明具有二聚体中间体的三态展开机制。但是,大肠杆菌和嗜热链球菌IPMDH的中间体似乎彼此不同。大肠杆菌IPMDH的中间体损失其二级和三级结构比嗜热酶更多。大肠杆菌IPMDH通过从天然状态过渡到中间状态而失去了酶活性,尽管嗜热链球菌酶的中间物仍然具有活性。大肠杆菌IPMDH的展开过程可以通过单个折叠域的顺序展开来解释,而嗜热链球菌IPMDH的中间只有很小的结构扰动。嗜热链球菌IPMDH的较高的热稳定性可以归因于在大肠杆菌IPMDH中整个分子结构展开之前在第一结构域内部展开的相互作用程度的增加。

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