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膜联蛋白V与膜结合的熵和焓贡献:一个综合定量模型。

Entropic and enthalpic contributions to annexin V-membrane binding: a comprehensive quantitative model.

作者信息

Jeppesen Brian, Smith Christina, Gibson Donald F, Tait Jonathan F

机构信息

Department of Laboratory Medicine, University of Washington, Seattle, WA 98195, USA.

出版信息

J Biol Chem. 2008 Mar 7;283(10):6126-35. doi: 10.1074/jbc.M707637200. Epub 2008 Jan 3.

Abstract

Annexin V binds to membranes with very high affinity, but the factors responsible remain to be quantitatively elucidated. Analysis by isothermal microcalorimetry and calcium titration under conditions of low membrane occupancy showed that there was a strongly positive entropy change upon binding. For vesicles containing 25% phosphatidylserine at 0.15 m ionic strength, the free energy of binding was -53 kcal/mol protein, whereas the enthalpy of binding was -38 kcal/mol. Addition of 4 m urea decreased the free energy of binding by about 30% without denaturing the protein, suggesting that hydrophobic forces make a significant contribution to binding affinity. This was confirmed by mutagenesis studies that showed that binding affinity was modulated by the hydrophobicity of surface residues that are likely to enter the interfacial region upon protein-membrane binding. The change in free energy was quantitatively consistent with predictions from the Wimley-White scale of interfacial hydrophobicity. In contrast, binding affinity was not increased by making the protein surface more positively charged, nor decreased by making it more negatively charged, ruling out general ionic interactions as major contributors to binding affinity. The affinity of annexin V was the same regardless of the head group present on the anionic phospholipids tested (phosphatidylserine, phosphatidylglycerol, phosphatidylmethanol, and cardiolipin), ruling out specific interactions between the protein and non-phosphate moieties of the head group as a significant contributor to binding affinity. Analysis by fluorescence resonance energy transfer showed that multimers did not form on phosphatidylserine membranes at low occupancy, indicating that annexin-annexin interactions did not contribute to binding affinity. In summary, binding of annexin V to membranes is driven by both enthalpic and entropic forces. Dehydration of hydrophobic regions of the protein surface as they enter the interfacial region makes an important contribution to overall binding affinity, supplementing the role of protein-calcium-phosphate chelates.

摘要

膜联蛋白V以非常高的亲和力结合到膜上,但其中的相关因素仍有待定量阐明。在低膜占有率条件下通过等温滴定量热法和钙滴定分析表明,结合时存在强烈的正熵变。对于在0.15 m离子强度下含有25%磷脂酰丝氨酸的囊泡,结合的自由能为-53 kcal/mol蛋白质,而结合焓为-38 kcal/mol。添加4 m尿素可使结合自由能降低约30%,且不会使蛋白质变性,这表明疏水力对结合亲和力有重要贡献。诱变研究证实了这一点,该研究表明结合亲和力受表面残基疏水性的调节,这些残基在蛋白质与膜结合时可能进入界面区域。自由能的变化与界面疏水性的Wimley-White量表的预测在定量上是一致的。相比之下,使蛋白质表面带更多正电荷不会增加结合亲和力,使其带更多负电荷也不会降低结合亲和力,排除了一般离子相互作用是结合亲和力的主要贡献因素。无论所测试的阴离子磷脂(磷脂酰丝氨酸、磷脂酰甘油、磷脂酰甲醇和心磷脂)上存在何种头部基团,膜联蛋白V的亲和力都是相同的,排除了蛋白质与头部基团的非磷酸部分之间的特异性相互作用是结合亲和力的重要贡献因素。荧光共振能量转移分析表明,在低占有率下磷脂酰丝氨酸膜上不会形成多聚体,这表明膜联蛋白-膜联蛋白相互作用对结合亲和力没有贡献。总之,膜联蛋白V与膜的结合是由焓力和熵力共同驱动的。蛋白质表面疏水区域进入界面区域时发生的脱水对整体结合亲和力有重要贡献,补充了蛋白质-钙-磷酸螯合物的作用。

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