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基于丙氨酸的α-螺旋多肽折叠与解折叠机制的建模

Modeling of folding and unfolding mechanisms in alanine-based alpha-helical polypeptides.

作者信息

Morozov Alexander N, Lin Sheng Hsien

机构信息

Institute of Atomic and Molecular Sciences, Academia Sinica, PO Box 23-166, Taipei, Taiwan, Republic of China.

出版信息

J Phys Chem B. 2006 Oct 19;110(41):20555-61. doi: 10.1021/jp061781e.

Abstract

alpha-Helix formation is known to be opposed by the entropy loss due to the folding and favored by the energy of molecular interactions. However, the underlying mechanism of these factors is still being discussed. Here we have used the experimental and calculation data for short alanine-based peptides embedded in water to model the mechanism of helix folding and unfolding and to calculate microscopically the free energy factors of alanine in the frame of helix coil conformational integrals. Classical helix-coil transition theories take into account the interactions in a peptide chain only if the i, i + 3 peptide bond participates in hydrogen bonding. But quantum mechanical calculations showed that interactions of the i, i + 2 peptide bond play an important role in helix folding too. We also included the short-range repulsive interactions due to molecular steric clashes and the end effects due to polar/hydrogen-bonding interactions at the N and C termini. The helix and coil regions of peptide conformational space were defined using an experimental steric criterion for hydrogen bonding. Arginine helix propensity was discussed and estimated. Monte Carlo numerical simulations of thermodynamics and kinetics for the 21 amino acid alpha-helical polypeptide Ac-A5(AAARA)3A-NMe were carried out and found to be in an agreement with the experimental results.

摘要

已知α-螺旋的形成会受到折叠导致的熵损失的阻碍,而分子间相互作用的能量则有利于其形成。然而,这些因素的潜在机制仍在讨论之中。在这里,我们利用嵌入水中的短丙氨酸基肽的实验和计算数据,对螺旋折叠和展开的机制进行建模,并在螺旋-线团构象积分框架内微观计算丙氨酸的自由能因子。经典的螺旋-线团转变理论仅在i,i + 3肽键参与氢键形成时才考虑肽链中的相互作用。但量子力学计算表明,i,i + 2肽键的相互作用在螺旋折叠中也起着重要作用。我们还纳入了由于分子空间位阻冲突引起的短程排斥相互作用,以及由于N和C末端的极性/氢键相互作用引起的末端效应。使用氢键的实验空间标准定义了肽构象空间的螺旋和线团区域。对精氨酸的螺旋倾向进行了讨论和估计。对21个氨基酸的α-螺旋多肽Ac-A5(AAARA)3A-NMe进行了热力学和动力学的蒙特卡罗数值模拟,发现与实验结果一致。

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