Fox Jamie C, Tyler Robert C, Guzzo Christina, Tuinstra Robbyn L, Peterson Francis C, Lusso Paolo, Volkman Brian F
Department of Biochemistry, Medical College of Wisconsin , Milwaukee, Wisconsin 53226, United States.
Laboratory of Immunoregulation, National Institute of Allergy and Infectious Diseases, National Institutes of Health , Bethesda, Maryland 20892, United States.
ACS Chem Biol. 2015 Nov 20;10(11):2580-8. doi: 10.1021/acschembio.5b00542. Epub 2015 Sep 2.
Unlike other chemokines, XCL1 undergoes a distinct metamorphic interconversion between a canonical monomeric chemokine fold and a unique β-sandwich dimer. The monomeric conformation binds and activates the receptor XCR1, whereas the dimer binds extracellular matrix glycosaminoglycans and has been associated with anti-human immunodeficiency virus (HIV) activity. Functional studies of WT-XCL1 are complex, as both conformations are populated in solution. To overcome this limitation, we engineered a stabilized dimeric variant of XCL1 designated CC5. This variant features a new disulfide bond (A36C-A49C) that prevents structural interconversion by locking the chemokine into the β-sandwich dimeric conformation, as demonstrated by NMR structural analysis and hydrogen/deuterium exchange experiments. Functional studies analyzing glycosaminoglycan binding demonstrate that CC5 binds with high affinity to heparin. In addition, CC5 exhibits potent inhibition of HIV-1 activity in primary peripheral blood mononuclear cells (PBMCs), demonstrating the importance of the dimer in blocking viral infection. Conformational variants like CC5 are valuable tools for elucidating the biological relevance of the XCL1 native-state interconversion and will assist in future antiviral and functional studies.
与其他趋化因子不同,XCL1在典型的单体趋化因子折叠结构和独特的β-折叠三明治二聚体之间经历独特的变形相互转化。单体构象可结合并激活受体XCR1,而二聚体则结合细胞外基质糖胺聚糖,并与抗人类免疫缺陷病毒(HIV)活性相关。野生型XCL1的功能研究较为复杂,因为两种构象在溶液中都存在。为克服这一限制,我们构建了一种稳定的XCL1二聚体变体,命名为CC5。如核磁共振结构分析和氢/氘交换实验所示,该变体具有一个新的二硫键(A36C-A49C),通过将趋化因子锁定在β-折叠三明治二聚体构象中来防止结构相互转化。分析糖胺聚糖结合的功能研究表明,CC5与肝素具有高亲和力结合。此外,CC5在原代外周血单核细胞(PBMC)中表现出对HIV-1活性的强效抑制作用,证明了二聚体在阻断病毒感染中的重要性。像CC5这样的构象变体是阐明XCL1天然状态相互转化生物学相关性的宝贵工具,并将有助于未来的抗病毒和功能研究。