Howard Hughes Medical Institute and Department of Biological Sciences, Purdue University, West Lafayette, IN 47907.
Proc Natl Acad Sci U S A. 2013 Nov 5;110(45):18132-7. doi: 10.1073/pnas.1311407110. Epub 2013 Oct 21.
ATP-binding cassette (ABC) transporters are molecular pumps that harness the chemical energy of ATP hydrolysis to translocate solutes across the membrane. The substrates transported by different ABC transporters are diverse, ranging from small ions to large proteins. Although crystal structures of several ABC transporters are available, a structural basis for substrate recognition is still lacking. For the Escherichia coli maltose transport system, the selectivity of sugar binding to maltose-binding protein (MBP), the periplasmic binding protein, does not fully account for the selectivity of sugar transport. To obtain a molecular understanding of this observation, we determined the crystal structures of the transporter complex MBP-MalFGK2 bound with large malto-oligosaccharide in two different conformational states. In the pretranslocation structure, we found that the transmembrane subunit MalG forms two hydrogen bonds with malto-oligosaccharide at the reducing end. In the outward-facing conformation, the transmembrane subunit MalF binds three glucosyl units from the nonreducing end of the sugar. These structural features explain why modified malto-oligosaccharides are not transported by MalFGK2 despite their high binding affinity to MBP. They also show that in the transport cycle, substrate is channeled from MBP into the transmembrane pathway with a polarity such that both MBP and MalFGK2 contribute to the overall substrate selectivity of the system.
ATP 结合盒(ABC)转运蛋白是一种分子泵,利用 ATP 水解的化学能将溶质跨膜转运。不同 ABC 转运蛋白转运的底物多种多样,小到离子,大到蛋白质。尽管已经有几种 ABC 转运蛋白的晶体结构,但底物识别的结构基础仍然缺乏。对于大肠杆菌麦芽糖运输系统,麦芽糖结合蛋白(MBP)即周质结合蛋白对糖的结合选择性并不能完全解释糖的运输选择性。为了从分子水平理解这一观察结果,我们确定了麦芽糖结合蛋白-MalFGK2 转运蛋白复合物与两种不同构象状态的大麦芽寡糖结合的晶体结构。在预转运结构中,我们发现跨膜亚基 MalG 在还原端与麦芽寡糖形成两个氢键。在向外开放构象中,跨膜亚基 MalF 从糖的非还原端结合三个葡萄糖基。这些结构特征解释了为什么修饰的麦芽寡糖尽管与 MBP 具有高结合亲和力,但不能被 MalFGK2 转运。它们还表明,在运输循环中,底物从 MBP 进入跨膜途径,极性使得 MBP 和 MalFGK2 都对系统的整体底物选择性有贡献。