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A model-free method for measuring dimerization free energies of CLC-ec1 in lipid bilayers

机译:测量脂质双层中CLC-ec1二聚自由能的无模型方法

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摘要

The thermodynamic reasons why membrane proteins form stable complexes inside the hydrophobic lipid bilayer remain poorly understood. This is largely because of a lack of membrane–protein systems amenable for equilibrium studies and a limited number of methods for measuring these reactions. Recently, we reported the equilibrium dimerization of the CLC-ec1 Cl/H+ transporter in lipid bilayers (Chadda et al. 2016. eLife. ), which provided a new type of model system for studying protein association in membranes. The measurement was conducted using the subunit-capture approach, involving passive dilution of the protein in large multilamellar vesicles, followed by single-molecule photobleaching analysis of the Poisson distribution describing protein encapsulation into extruded liposomes. To estimate the fraction of dimers (FDimer) as a function of protein density, the photobleaching distributions for the nonreactive, ideal monomer and dimer species must be known so that random co-capture probabilities can be accounted for. Previously, this was done by simulating the Poisson process of protein reconstitution into a known size distribution of liposomes composed of Escherichia coli polar lipids (EPLs). In the present study, we investigate the dependency of FDimer and ΔG° on the modeling through a comparison of different liposome size distributions (EPL versus 2:1 POPE/POPG). The results show that the estimated FDimer values are comparable, except at higher densities when liposomes become saturated with protein. We then develop empirical controls to directly measure the photobleaching distributions of the nonreactive monomer (CLC-ec1 I201W/I422W) and ideal dimer (WT CLC-ec1 cross-linked by glutaraldehyde or CLC-ec1 R230C/L249C cross-linked by a disulfide bond). The measured equilibrium constants do not depend on the correction method used, indicating the robustness of the subunit-capture approach. This strategy therefore presents a model-free way to quantify protein dimerization in lipid bilayers, offering a simplified strategy in the ongoing effort to characterize equilibrium membrane–protein reactions in membranes.
机译:膜蛋白在疏水性脂质双层内部形成稳定复合物的热力学原因仍然知之甚少。这主要是由于缺乏适合进行平衡研究的膜蛋白系统,以及用于测量这些反应的方法数量有限。最近,我们报道了脂质双层中CLC-ec1 Cl - / H + 转运蛋白的平衡二聚化(Chadda等人,2016,eLife。)。用于研究膜中蛋白质缔合的模型系统的类型。使用亚单位捕获方法进行测量,包括被动稀释大型多层囊泡中的蛋白质,然后对Poisson分布进行单分子光漂白分析,描述蛋白质封装入挤出脂质体的过程。为了估算作为蛋白质密度函数的二聚体含量(FDimer),必须知道非反应性,理想单体和二聚体物种的光致漂白分布,以便可以考虑随机捕获的可能性。以前,这是通过将蛋白质重构的Poisson过程模拟为已知大小分布的大肠杆菌极性脂质(EPL)构成的脂质体来完成的。在本研究中,我们通过比较不同脂质体大小分布(EPL与2:1 POPE / POPG)来研究FDimer和ΔG°对建模的依赖性。结果表明,估计的FDimer值具有可比性,但当脂质体被蛋白质饱和时密度更高。然后,我们开发经验控制,以直接测量非反应性单体(CLC-ec1 I201W / I422W)和理想二聚体(通过戊二醛交联的WT CLC-ec1或通过二硫键交联的CLC-ec1 R230C / L249C)的光致漂白分布)。测得的平衡常数不依赖于所使用的校正方法,这表明了子单元捕获方法的鲁棒性。因此,该策略提供了一种无模型的方法来定量脂质双层中的蛋白质二聚化,为正在进行的表征膜中平衡膜-蛋白质反应的工作提供了简化的策略。

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