Department of Biochemistry and Molecular Biology, Zilkha Neurogenetic Institute, Keck School of Medicine, University of Southern California, 1501 San Pablo Street, Los Angeles, CA 90033, USA.
Department of Biochemistry and Molecular Biology, Zilkha Neurogenetic Institute, Keck School of Medicine, University of Southern California, 1501 San Pablo Street, Los Angeles, CA 90033, USA.
J Mol Biol. 2014 Oct 23;426(21):3670-80. doi: 10.1016/j.jmb.2014.08.020. Epub 2014 Aug 29.
Understanding the structure, folding, and interaction of membrane proteins requires experimental tools to quantify the association of transmembrane (TM) helices. Here, we introduce isothermal titration calorimetry (ITC) to measure integrin αIIbβ3 TM complex affinity, to study the consequences of helix-helix preorientation in lipid bilayers, and to examine protein-induced lipid reorganization. Phospholipid bicelles served as membrane mimics. The association of αIIbβ3 proceeded with a free energy change of -4.61±0.04kcal/mol at bicelle conditions where the sampling of random helix-helix orientations leads to complex formation. At bicelle conditions that approach a true bilayer structure in effect, an entropy saving of >1kcal/mol was obtained from helix-helix preorientation. The magnitudes of enthalpy and entropy changes increased distinctly with bicelle dimensions, indicating long-range changes in bicelle lipid properties upon αIIbβ3 TM association. NMR spectroscopy confirmed ITC affinity measurements and revealed αIIbβ3 association and dissociation rates of 4500±100s(-1) and 2.1±0.1s(-1), respectively. Thus, ITC is able to provide comprehensive insight into the interaction of membrane proteins.
理解膜蛋白的结构、折叠和相互作用需要实验工具来定量测量跨膜(TM)螺旋的缔合。在这里,我们引入了等温热力学滴定法(ITC)来测量整合素 αIIbβ3 TM 复合物的亲和力,研究螺旋-螺旋预定向在脂质双层中的后果,并检查蛋白质诱导的脂质重排。磷脂双体微囊用作膜模拟物。αIIbβ3 的缔合具有-4.61±0.04kcal/mol 的自由能变化,在双体微囊条件下,随机螺旋-螺旋取向的采样导致复合物形成。在双体微囊条件下,接近真实的双层结构,从螺旋-螺旋预定向中获得了>1kcal/mol 的熵节省。焓和熵变化的幅度明显随双体微囊尺寸增加,表明 αIIbβ3 TM 缔合时双体微囊脂质性质的长程变化。NMR 光谱证实了 ITC 亲和力测量,并揭示了 αIIbβ3 的缔合和解离速率分别为 4500±100s(-1)和 2.1±0.1s(-1)。因此,ITC 能够提供对膜蛋白相互作用的全面了解。