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Mixed quantum-classical dynamics of an amide-I vibrational excitation in a protein a-helix

机译:蛋白质螺旋结构中酰胺-I振动激发的混合量子经典动力学

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摘要

Adenosine triphosphate sATPd is known to be the main energy currency of the living cell, and is used as a coenzyme to generate energy for many cellular processes through hydrolysis to adenosine diphosphate sADPd,although the mechanism of energy transfer is not well understood. It has been proposed that following hydrolysis of the ATP cofactor bound to a protein, up to two quanta of amide-I vibrational energy are excited and utilized to bring about important structural changes in the protein. To study whether, and how, amide-I vibrational excitations are capable of leading to protein structural changes, we have added components arising from quantum-mechanical amide-I vibrational excitations to the total energy and force terms within a moleculardynamics simulation. This model is applied to helical deca-alanine as a test case to investigate how its dynamics differs in the presence or absence of an amide-I excitation. We find that the presence of an amide-I excitation can bias the structure toward a more helical state.
机译:众所周知,三磷酸腺苷sATPd是活细胞的主要能量货币,尽管它尚未很好地理解能量转移的机理,但它被用作辅酶通过水解为二磷酸腺苷sADPd为许多细胞过程产生能量。已经提出,在与蛋白质结合的ATP辅因子水解之后,最多激发两个量子的酰胺-I振动能并被利用来引起蛋白质的重要​​结构变化。为了研究酰胺-I振动激发是否以及如何导致蛋白质结构变化,我们在分子动力学模拟中将量子力学酰胺-I振动激发产生的成分添加到了总能量和力项中。该模型作为测试案例应用于螺旋十丙氨酸,以研究其动力学在存在或不存在酰胺I激发下的差异。我们发现酰胺-I激发的存在会使结构偏向更螺旋的状态。

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