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对半胱氨酸蛋白酶抑制作用的原子水平见解:首次量子力学/分子力学计算阐明基于环氧化物抑制剂的立体选择性

Atomistic insights into the inhibition of cysteine proteases: first QM/MM calculations clarifying the stereoselectivity of epoxide-based inhibitors.

作者信息

Mladenovic Milena, Ansorg Kay, Fink Reinhold F, Thiel Walter, Schirmeister Tanja, Engels Bernd

机构信息

Institut fur Organische Chemie, Universitat Wurzburg, Am Hubland, Wurzburg, Germany.

出版信息

J Phys Chem B. 2008 Sep 18;112(37):11798-808. doi: 10.1021/jp803895f. Epub 2008 Aug 20.

Abstract

Due to their important role in many diseases, cysteine proteases represent new promising drug targets. An important class of cysteine-protease inhibitors is derived from the naturally occurring compound E64, possessing an epoxysuccinyl moiety as warhead. Experimental studies show stereoselectivity concerning the inhibition potency, e.g., a trans-configured epoxide ring is essential for inhibition, and furthermore, in most cases, the ( S, S)-configured inhibitors have a higher inhibition potency than their ( R, R)-counterparts. However, the underlying effects are not fully understood. In this work, such effects are investigated by classical molecular dynamics simulations and combined quantum mechanics/molecular modeling (QM/MM) calculations for the E64c-cathepsin B complex. Our computations reveal that the hydrogen bonding network between the enzyme and the E64c (or its derivatives) determines the stereoselectivity of the subsequent ring opening reaction by governing the distance between the attacking thiolate and the attacked C2 atom of the epoxide ring. For the ( S, S)-configuration, a strong network can be realized which enables a close contact between the reacting centers, so that the irreversible step becomes very efficient. The ( R, S)-configuration ( cis-configuration) can only form networks in which the two reacting centers are so far away from each other that the irreversible step can hardly happen. The ( R, R)-configuration is in between, less optimal than the ( S, S)-configuration but much better than the ( R, S)-configuration. Exceptions where the ( R, R)-configurations shows higher potency than the ( S, S) ones are also explained.

摘要

由于半胱氨酸蛋白酶在许多疾病中发挥着重要作用,它们成为了新的有前景的药物靶点。一类重要的半胱氨酸蛋白酶抑制剂源自天然化合物E64,其具有环氧琥珀酰基部分作为活性基团。实验研究表明,在抑制效力方面存在立体选择性,例如,反式构型的环氧环对于抑制至关重要,而且在大多数情况下,(S,S)构型的抑制剂比其(R,R)对应物具有更高的抑制效力。然而,其潜在影响尚未完全理解。在这项工作中,通过经典分子动力学模拟以及对E64c-组织蛋白酶B复合物的量子力学/分子建模(QM/MM)计算来研究此类影响。我们的计算结果表明,酶与E64c(或其衍生物)之间的氢键网络通过控制攻击硫醇盐与环氧环被攻击的C2原子之间的距离,决定了后续开环反应的立体选择性。对于(S,S)构型,可以形成一个强大的网络,使反应中心紧密接触,从而使不可逆步骤变得非常高效。(R,S)构型(顺式构型)只能形成反应中心彼此距离很远以至于不可逆步骤几乎无法发生的网络。(R,R)构型介于两者之间,不如(S,S)构型理想,但比(R,S)构型好得多。还解释了(R,R)构型比(S,S)构型表现出更高效力的例外情况。

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