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首页> 外文期刊>Journal of chemical theory and computation: JCTC >Mechanism and Kinetics of Acetyl-Lysine Binding to Bromodomains
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Mechanism and Kinetics of Acetyl-Lysine Binding to Bromodomains

机译:乙酰赖氨酸结合溴结构域的机理和动力学。

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摘要

Bromodomains are four-helix bundle proteins that specifically recognize acetylation of lysine side chains on histones. The available X-ray structures of bromodomain/histone tail complexes show that the conserved Asn residue in the loop between helices B and C is involved in a hydrogen bond with the acetyl-lysine side chain, Here we analyze the spontaneous binding of acetyl-lysine to the bromodomain TAF1(2) by the first molecular dynamics simulations of histone mark binding to an epigenetic reader protein. Multiple events of reversible association sampled along the unbiased simulations allow us to determine the pathway and kinetics of binding. The simulations show that acetyl-lysine has two major binding modes in TAP 1(2) one of which corresponds to the available crystal structures and is stabilized by a hydrogen bond to the conserved Asn side chain, The other major binding mode is more buried than in the crystal structures and is stabilized by two hydrogen bonds with conserved residues of the loop between helices Z and A. In the more buried binding conformation, three of the six structured water molecules at the bottom of the binding pocket are displaced by the acetyl-lysine side chain. The kinetic analysis shows that the two binding modes interconvert on a faster time scale with respect to the association/dissociation process. The atomic-level description of the binding pathway and binding modes is useful for the design of small molecule modulators of histone binding to bromodomains.
机译:溴结构域是四螺旋束蛋白,可特异性识别组蛋白上赖氨酸侧链的乙酰化。溴结构域/组蛋白尾部复合物的可用X射线结构表明,螺旋B和C之间的环中保守的Asn残基与乙酰基赖氨酸侧链的氢键有关,在这里我们分析了乙酰基赖氨酸的自发结合组蛋白标记与表观遗传阅读器蛋白质结合的第一个分子动力学模拟,将其与bromodomain TAF1(2)结合。沿无偏模拟采样的多个可逆关联事件使我们能够确定结合的途径和动力学。模拟表明,乙酰赖氨酸在TAP 1(2)中具有两个主要结合模式,其中一个对应于可用的晶体结构,并通过与保守的Asn侧链的氢键稳定,另一个主要结合模式比在晶体结构中,并通过两个氢键以及在螺旋Z和A之间的环的保守残基来稳定。在更隐蔽的结合构象中,结合口袋底部的六个结构化水分子中的三个被乙酰基置换。赖氨酸侧链。动力学分析表明,相对于缔合/解离过程,两种结合模式在更快的时间尺度上相互转化。结合途径和结合模式的原子水平描述对于组蛋白与溴结构域结合的小分子调节剂的设计是有用的。

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