Kraft Thomas E, Hresko Richard C, Hruz Paul W
Department of Pediatrics, Washington University School of Medicine, St Louis, Missouri, 63110.
Department of Cell Biology and Physiology, Washington University School of Medicine, St Louis, Missouri, 63110.
Protein Sci. 2015 Dec;24(12):2008-19. doi: 10.1002/pro.2812. Epub 2015 Oct 14.
The insulin-responsive facilitative glucose transporter GLUT4 is of fundamental importance for maintenance of glucose homeostasis. Despite intensive effort, the ability to express and purify sufficient quantities of structurally and functionally intact protein for biophysical analysis has previously been exceedingly difficult. We report here the development of novel methods to express, purify, and functionally reconstitute GLUT4 into detergent micelles and proteoliposomes. Rat GLUT4 containing FLAG and His tags at the amino and carboxy termini, respectively, was engineered and stably transfected into HEK-293 cells. Overexpression in suspension culture yielded over 1.5 mg of protein per liter of culture. Systematic screening of detergent solubilized GLUT4-GFP fusion protein via fluorescent-detection size exclusion chromatography identified lauryl maltose neopentyl glycol (LMNG) as highly effective for isolating monomeric GLUT4 micelles. Preservation of structural integrity and ligand binding was demonstrated via quenching of tryptophan fluorescence and competition of ATB-BMPA photolabeling by cytochalasin B. GLUT4 was reconstituted into lipid nanodiscs and proper folding was confirmed. Reconstitution of purified GLUT4 with amphipol A8-35 stabilized the transporter at elevated temperatures for extended periods of time. Functional activity of purified GLUT4 was confirmed by reconstitution of LMNG-purified GLUT4 into proteoliposomes and measurement of saturable uptake of D-glucose over L-glucose. Taken together, these data validate the development of an efficient means to generate milligram quantities of stable and functionally intact GLUT4 that is suitable for a wide array of biochemical and biophysical analyses.
胰岛素反应性易化葡萄糖转运蛋白GLUT4对于维持葡萄糖稳态至关重要。尽管付出了巨大努力,但此前要表达和纯化足够量的结构和功能完整的蛋白质用于生物物理分析一直极为困难。我们在此报告了一些新方法的开发,这些方法可用于表达、纯化GLUT4并将其功能重构到去污剂胶束和蛋白脂质体中。分别在氨基和羧基末端含有FLAG和His标签的大鼠GLUT4被设计并稳定转染到HEK-293细胞中。在悬浮培养中过表达可使每升培养物产生超过1.5毫克的蛋白质。通过荧光检测尺寸排阻色谱法对去污剂溶解的GLUT4-GFP融合蛋白进行系统筛选,确定月桂基麦芽糖新戊二醇(LMNG)对于分离单体GLUT4胶束非常有效。通过色氨酸荧光猝灭和细胞松弛素B对ATB-BMPA光标记的竞争,证明了结构完整性和配体结合的保留。GLUT4被重构到脂质纳米盘中,并确认了其正确折叠。用两亲性聚合物A8-35重构纯化的GLUT4可在升高的温度下长时间稳定转运蛋白。通过将LMNG纯化的GLUT4重构到蛋白脂质体中并测量D-葡萄糖相对于L-葡萄糖的可饱和摄取,证实了纯化的GLUT4的功能活性。综上所述,这些数据验证了一种有效方法的开发,该方法可产生毫克量的稳定且功能完整的GLUT4,适用于广泛的生化和生物物理分析。