Department of Biochemistry and Molecular Biology, School of Medicine, Wayne State University, Detroit, MI 48201, USA.
Proc Natl Acad Sci U S A. 2011 Sep 6;108(36):14813-8. doi: 10.1073/pnas.1106420108. Epub 2011 Aug 22.
Human apolipoprotein E (apoE) is one of the major determinants in lipid transport, playing a critical role in atherosclerosis and other diseases. Binding to lipid and heparan sulfate proteoglycans (HSPG) induces apoE to adopt active conformations for binding to low-density lipoprotein receptor (LDLR) family. ApoE also interacts with beta amyloid peptide, manifests critical isoform-specific effects on Alzheimer's disease. Despite the importance of apoE in these major human diseases, the fundamental questions of how apoE adjusts its structure upon binding to regulate its diverse functions remain unsolved. We report the NMR structure of apoE3, displaying a unique topology of three structural domains. The C-terminal domain presents a large exposed hydrophobic surface that likely initiates interactions with lipids, HSPG, and beta amyloid peptides. The unique topology precisely regulates apoE tertiary structure to permit only one possible conformational adaptation upon binding and provides a double security in preventing lipid-free and partially-lipidated apoE from premature binding to apoE receptors during receptor biogenesis. This topology further ensures the optimal receptor-binding activity by the fully lipidated apoE during lipoprotein transport in circulation and in the brain. These findings provide a structural framework for understanding the structural basis of the diverse functions of this important protein in human diseases.
人载脂蛋白 E(apoE)是脂质转运的主要决定因素之一,在动脉粥样硬化和其他疾病中起着关键作用。与脂质和硫酸乙酰肝素蛋白聚糖(HSPG)结合诱导 apoE 采取活性构象,以与低密度脂蛋白受体(LDLR)家族结合。apoE 还与β淀粉样肽相互作用,对阿尔茨海默病表现出关键的异构体特异性影响。尽管 apoE 在这些主要人类疾病中具有重要意义,但关于 apoE 在结合时如何调整其结构以调节其多种功能的基本问题仍未得到解决。我们报告了 apoE3 的 NMR 结构,显示了三个结构域的独特拓扑结构。C 端结构域呈现出一个大的暴露疏水面,可能首先与脂质、HSPG 和β淀粉样肽相互作用。独特的拓扑结构精确地调节 apoE 的三级结构,只允许在结合时进行一种可能的构象适应,并在受体生物发生过程中防止无脂和部分脂化的 apoE 与 apoE 受体过早结合方面提供双重安全性。这种拓扑结构进一步确保了在脂蛋白转运过程中,完全脂化的 apoE 在循环和大脑中具有最佳的受体结合活性。这些发现为理解该重要蛋白在人类疾病中的多种功能的结构基础提供了一个结构框架。