Beijing Advanced Innovation Center for Biomedical Engineering , Beihang University , Beijing 100083 , China.
Key Laboratory of Ministry of Education for Biomechanics and Mechanobiology, School of Biological Science and Medical Engineering , Beihang University , Beijing 100083 , China.
J Phys Chem B. 2019 Feb 7;123(5):1009-1016. doi: 10.1021/acs.jpcb.8b10148. Epub 2019 Jan 24.
The transmembrane domain (TMD) of membrane proteins plays an essential role in their dynamics and functions. Certain properties of TMDs, such as raft affinity and orientation, have been studied extensively both experimentally and computationally. However, the extent to which specific physicochemical properties of TMDs determine their membrane domain-partitioning thermodynamics is still far from clear. In this work, we propose an approach based on umbrella sampling molecular dynamics simulations of model membranes and idealized TMDs to quantify the effect of TMD physicochemical properties, namely, length, degree of hydrophobicity, and size of TMDs, on their membrane domain-partitioning thermodynamics. The results, which are fully consistent with previous experimental and simulation data, indicate that the concept of "hydrophobic mismatch" should go beyond differences in hydrophobic thickness to include mismatch in the degree of hydrophobicity between the TMD and the surrounding hydrocarbon lipid chains. Our method provides quantitative insights into the role of specific physicochemical features of TMDs in membrane localization and orientation, which will be broadly useful for predicting the raft affinity and membrane partitioning of any transmembrane protein.
膜蛋白的跨膜结构域(TMD)在其动态和功能中起着至关重要的作用。TMD 的某些特性,如筏亲和性和取向,已经在实验和计算上得到了广泛的研究。然而,TMD 的特定物理化学特性在多大程度上决定了它们的膜域分配热力学仍然远不清楚。在这项工作中,我们提出了一种基于模型膜和理想化 TMD 的伞形采样分子动力学模拟的方法,以量化 TMD 物理化学性质(即长度、疏水性程度和 TMD 大小)对其膜域分配热力学的影响。结果与以前的实验和模拟数据完全一致,表明“疏水失配”的概念不应仅限于疏水厚度的差异,而应包括 TMD 与周围碳氢脂质链之间的疏水性程度的不匹配。我们的方法提供了对 TMD 特定物理化学特征在膜定位和取向中的作用的定量见解,这将广泛用于预测任何跨膜蛋白的筏亲和性和膜分配。