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首页> 外文期刊>Protein Science: A Publication of the Protein Society >Side chain electrostatic interactions and pH‐dependent expansion of the intrinsically disordered, highly acidic carboxyl‐terminus of γ‐tubulin
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Side chain electrostatic interactions and pH‐dependent expansion of the intrinsically disordered, highly acidic carboxyl‐terminus of γ‐tubulin

机译:侧链静电相互作用和pH依赖性γ-微管蛋白的本质无序,高度酸性羧基末端的膨胀

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Abstract Intramolecular electrostatic attraction and repulsion strongly influence the conformational sampling of intrinsically disordered proteins and domains (IDPs). In order to better understand this complex relationship, we have used nuclear magnetic resonance to measure side chain pK a values and pH‐dependent translational diffusion coefficients for the unstructured and highly acidic carboxyl‐terminus of γ‐tubulin (γ‐CT), providing insight into how the net charge of an IDP relates to overall expansion or collapse of the conformational ensemble. Many of the pK a values in the γ‐CT are shifted upward by 0.3–0.4 units and exhibit negatively cooperative ionization pH profiles, likely due to the large net negative charge that accumulates on the molecule as the pH is raised. pK a shifts of this magnitude correspond to electrostatic interaction energies between the affected residues and the rest of the charged molecule that are each on the order of 1 kcal?mol ?1 . Diffusion of the γ‐CT slowed with increasing net charge, indicative of an expanding hydrodynamic radius ( r H ). The degree of expansion agreed quantitatively with what has been seen from comparisons of IDPs with different charge content, yielding the general trend that every 0.1 increase in relative charge (| Q |/res) produces a roughly 5% increase in r H . While γ‐CT pH titration data followed this trend nearly perfectly, there were substantially larger deviations for the database of different IDP sequences. This suggests that other aspects of an IDP's primary amino acid sequence beyond net charge influence the sensitivity of r H to electrostatic interactions.
机译:摘要分子内的静电吸引力和排斥力强烈影响本质无序蛋白质和域(IDPS)的构象取样。为了更好地理解这种复杂的关系,我们已经使用核磁共振来测量侧链PK的γ-微管蛋白(γ-CT)的非结构化和高度酸性羧基末端的值和pH依赖性平移扩散系数,提供洞察力纳入IDP的净费用如何与构象集合的整体扩展或崩溃相关。许多PKγ-CT中的值向上移动0.3-0.4单元并表现出负面合作的电离pH型材,可能由于在pH升高时积聚在分子上的大净负电荷。 PK这种幅度的偏移对应于受影响的残留物和剩余的带电分子之间的静电相互作用能量,其每分钟为1kcal?摩尔α1。 γ-CT的扩散随着净电荷的增加而减慢,指示膨胀的流体动力半径(R H)。从IDPS比较具有不同电荷含量的IDPS比较时,总量的扩展程度,产生了相对电荷(| / RES)的每0.1增加的一般趋势,产生的R H增加大约5%。虽然γ-CT pH滴定数据遵循此趋势几乎完美,但不同IDP序列的数据库存在大大更大的偏差。这表明IDP的主要氨基酸序列的其他方面超过净电荷会影响R H对静电相互作用的敏感性。

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