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首页> 外文期刊>Journal of Molecular Biology >NON-PROLYL CIS-TRANS PEPTIDE BOND ISOMERIZATION AS A RATE-DETERMINING STEP IN PROTEIN UNFOLDING AND REFOLDING
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NON-PROLYL CIS-TRANS PEPTIDE BOND ISOMERIZATION AS A RATE-DETERMINING STEP IN PROTEIN UNFOLDING AND REFOLDING

机译:非脯氨酸CIS-跨肽键异构化是蛋白质解折叠和复性的决定速率的步骤

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In wild-type ribonuclease T-1 the peptide bond between Tyr38 and Pro39 is in the cis conformation. When Pro39 is replaced by an alanine this cis conformation is retained, and a non-prolyl cis Tyr38-Ala39 peptide bond is generated. We employed a stopped-flow double-mixing technique to investigate the kinetics of the cis --> trans isomerization of this peptide bond in the unfolding and the trans --> cis isomerization in the refolding of Pro39Ala-ribonuclease T-1. In 6.0 M GdmCl (pH 1.6) and 25 degrees C the protein unfolds rapidly with a time constant of 20 ms, followed by Tyr38-Ala39 cis --> trans isomerization. This reaction shows a time constant of 730 ms and is about 60-fold faster than the isomerization of the Tyr38-Pro39 bond in the wild-type protein. Unfolded molecules with the Tyr38-Ala39 bond still in the native-like cis conformation accumulate transiently for a short time after unfolding is initiated, and they can refold very rapidly to the native state with a time constant of 290 ms (in 1.0 M GdmCl, pH 4.6, 25 degrees C). After more than three seconds of unfolding virtually all protein molecules contain an incorrect trans Tyr38-Ala39 bond and refolding is decelerated approximately 1000-fold, because Tyr38-Ala39 trans --> cis re-isomerization is very slow and, with its time constant of 480 s, determines the overall rate of refolding. Due to the coupling of the cis-trans equilibrium with protein folding it was possible to measure the kinetic parameters of the isomerization of a non-prolyl peptide bond in a protein. Previously this could not be accomplished, because the trans isomer is strongly preferred for unsubstituted peptide bonds in oligopeptides under virtually all conditions. Our data indicate that the kinetics of Tyr38-Pro39 and of Tyr38-Ala39 isomerization differ predominantly in the rate of the cis --> trans, rather than of the trans --> cis reaction. The rate of the trans --> cis reaction is, however, measured during refolding and may be influenced by the formation of ordered protein structure. [References: 39]
机译:在野生型核糖核酸酶T-1中,Tyr38和Pro39之间的肽键为顺式构象。当Pro39被丙氨酸替代时,该顺式构象得以保留,并生成非脯氨酰的顺式Tyr38-Ala39肽键。我们采用了停流双重混合技术,研究了Pro39Ala-核糖核酸酶T-1的解折叠过程中该肽键的顺式->反式异构化和反折叠的动力学。在6.0 M GdmCl(pH 1.6)和25摄氏度下,蛋白质以20毫秒的时间常数快速展开,然后进行Tyr38-Ala39顺式->反式异构化。该反应的时间常数为730毫秒,比野生型蛋白中Tyr38-Pro39键的异构化速度快约60倍。展开后,带有Tyr38-Ala39键的未折叠分子仍以天然的顺式构象短暂蓄积,它们可以以290 ms的时间常数(在1.0 M GdmCl中, pH 4.6,25摄氏度)。展开超过三秒钟后,几乎所有蛋白质分子都包含不正确的反式Tyr38-Ala39键,并且重新折叠的速度降低了约1000倍,因为Tyr38-Ala39反式->顺式重新异构化非常缓慢,并且其时间常数为480 s,确定整体重折叠速度。由于顺式-反式平衡与蛋白质折叠的偶联,有可能测量蛋白质中非脯氨酰肽键异构化的动力学参数。以前这不能实现,因为反式异构体对于几乎所有条件下的寡肽中的未取代肽键都是非常优选的。我们的数据表明,Tyr38-Pro39和Tyr38-Ala39异构化的动力学主要不同之处在于顺式->反式,而不是反式->顺式反应的速率。但是,反式->顺式反应的速率是在重折叠过程中测量的,并且可能受有序蛋白质结构形成的影响。 [参考:39]

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