螺旋端部设计。氨基酸偏好,氢键和静电相互作用。

S Dasgupta, J A Bell
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引用次数: 0

摘要

对163个螺旋末端的氨基酸序列和化学相互作用进行了调查,以便更好地了解先前观察到的氨基酸偏好[Richardson, J.S. & Richardson, D.C. (1988) Science 240, 1648-1652]。氨基酸偏好在一些重要细节和可能影响蛋白质螺旋设计过程中氨基酸选择的方式上与之前的调查不同。以下关于螺旋末端的主要结论是从观察到的氨基酸发生和相互作用的其他模式中推断出来的。(1)在谷氨酸(或谷氨酰胺)的N3位侧链和n -帽酰胺的氢之间,以及n -帽侧链(通常是苏氨酸)和N3酰胺的氢之间,经常观察到一对特定的氢键。这种相互作用可能是稳定螺旋n端的重要手段。(2)螺旋n端带负电荷的氨基酸(天冬氨酸和谷氨酸)可能比c端带正电荷的残基(主要是赖氨酸)在稳定蛋白质螺旋方面更重要。(3) N-cap位置残基的身份与该位置的主链构象相关。(4) N2或N3位置的天冬氨酸(或天冬酰胺)可能与螺旋末端形成氢键相互作用的构象,特别是当n-帽侧链不与螺旋末端形成氢键时。
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Design of helix ends. Amino acid preferences, hydrogen bonding and electrostatic interactions.

The amino acid sequence and chemical interactions at the ends of 163 helices were surveyed so as better to understand amino acid preferences previously observed [Richardson, J.S. & Richardson, D.C. (1988) Science 240, 1648-1652]. Amino acid preferences differed from the previous survey in some significant details and in ways that might affect the choice of amino acids during the design of a protein helix. The following major conclusions about helix ends were deduced from additional patterns of amino acid occurrence and interactions that were observed. (1) A specific pair of hydrogen bonds is often observed between a glutamic acid (or glutamine) side chain at the N3 position and the N-cap amide hydrogen, and between the N-cap side chain (often threonine) and the N3 amide hydrogen. This reciprocal interaction may be an important means of stabilizing the N-terminal end of a helix. (2) Negatively charged amino acids (aspartic acid and glutamic acid) at the N-terminal end of helices may be more important in stabilizing protein helices than positively charged residues (chiefly lysine) at the C-terminal end. (3) The identity of the residue at the N-cap position is correlated with the backbone conformation at that position. (4) Aspartic acid (or asparagine) at the N2 or N3 position may adopt a conformation that suggests a hydrogen-bonding interaction with the end of the helix, especially when the N-cap side chain does not form a hydrogen bond with the end of the helix.

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