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首页> 外文期刊>Journal of Molecular Biology >Osmolyte effects on kinetics of FKBP12 C22A folding coupled with prolyl isomerization.
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Osmolyte effects on kinetics of FKBP12 C22A folding coupled with prolyl isomerization.

机译:渗透液对FKBP12 C22A折叠动力学以及脯氨酰异构化的影响。

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摘要

Unfolding and refolding kinetics of human FKBP12 C22A were monitored by fluorescence emission over a wide range of urea concentration in the presence and absence of protecting osmolytes glycerol, proline, sarcosine and trimethylamine-N-oxide (TMAO). Unfolding is well described by a mono-exponential process, while refolding required a minimum of two exponentials for an adequate fit throughout the urea concentration range considered. The bi-exponential behavior resulted from complex coupling between protein folding, and prolyl isomerization in the denatured state in which the urea-dependent rate constant for folding was greater than, equal to, and less than the rate constants for prolyl isomerization within the urea concentration range of zero to five molar. Amplitudes and the observed folding and unfolding rate constants were fitted to a reversible three-state model composed of two sequential steps involving the native state and a folding-competent denatured species thermodynamically linked to a folding-incompetent denatured species. Excellent agreement between thermodynamic parameters for FKBP12 C22A folding calculated from the kinetic parameters and those obtained directly from equilibrium denaturation assays provides strong support for the applicability of the mechanism, and provides evidence that FKBP12 C22A folding/unfolding is two-state, with prolyl isomer heterogeneity in the denatured ensemble. Despite the chemical diversity of the protecting osmolytes, they all exhibit the same kinetic behavior of increasing the rate constant of folding and decreasing the rate constant for unfolding. Osmolyte effects on folding/unfolding kinetics are readily explained in terms of principles established in understanding osmolyte effects on protein stability. These principles involve the osmophobic effect, which raises the Gibbs energy of the denatured state due to exposure of peptide backbone, thereby increasing the folding rate. This effect also plays a key role in decreasing the unfolding rate when, as is often the case, the activated complex exposes more backbone than is exposed in the native state.
机译:在存在和不存在保护渗透压甘油,脯氨酸,肌氨酸和三甲胺-N-氧化物(TMAO)的情况下,通过在宽泛的尿素浓度范围内发射荧光来监测人FKBP12 C22A的解折叠和重折叠动力学。展开是通过单指数过程很好地描述的,而重新折叠至少需要两个指数才能在所考虑的尿素浓度范围内完全适合。双指数行为是由蛋白质折叠与变性状态下脯氨酰异构化之间的复杂耦合导致的,在变性状态下,脲依赖性折叠速率常数大于,等于和小于尿素浓度内脯氨酰异构化的速率常数零至五摩尔的范围。将幅值和观察到的折叠和展开速率常数拟合到可逆的三态模型,该模型由两个顺序步骤组成,这些步骤涉及原始状态和与折叠不相容的变性物种热力学连接的折叠后变性的物种。从动力学参数计算得出的FKBP12 C22A折叠热力学参数与直接从平衡变性分析获得的热力学参数之间的极好的一致性为该机理的适用性提供了有力的支持,并提供了证据表明FKBP12 C22A折叠/展开为两种状态,脯氨酰异构体具有异质性在变性的合奏中。尽管保护渗透物的化学多样性,但它们都表现出相同的动力学行为,即增加折叠的速率常数和减小展开的速率常数。渗透液对折叠/展开动力学的影响很容易根据理解渗透液对蛋白质稳定性的影响所建立的原理进行解释。这些原理涉及疏水作用,由于肽主链的暴露,其提高了变性状态的吉布斯能量,从而提高了折叠率。当活化的复合物暴露的骨架比天然状态暴露的骨架多时,这种作用在降低展开速率中也起着关键作用。

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