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CCL5和CCL3寡聚化及与糖胺聚糖结合的结构基础

Structural basis for oligomerization and glycosaminoglycan binding of CCL5 and CCL3.

作者信息

Liang Wenguang G, Triandafillou Catherine G, Huang Teng-Yi, Zulueta Medel Manuel L, Banerjee Shiladitya, Dinner Aaron R, Hung Shang-Cheng, Tang Wei-Jen

机构信息

Ben May Department for Cancer Research, The University of Chicago, Chicago, IL 60637;

Graduate Program in Biophysical Sciences, The University of Chicago, Chicago, IL 60637;

出版信息

Proc Natl Acad Sci U S A. 2016 May 3;113(18):5000-5. doi: 10.1073/pnas.1523981113. Epub 2016 Apr 18.

Abstract

CC chemokine ligand 5 (CCL5) and CCL3 are critical for immune surveillance and inflammation. Consequently, they are linked to the pathogenesis of many inflammatory conditions and are therapeutic targets. Oligomerization and glycosaminoglycan (GAG) binding of CCL5 and CCL3 are vital for the functions of these chemokines. Our structural and biophysical analyses of human CCL5 reveal that CCL5 oligomerization is a polymerization process in which CCL5 forms rod-shaped, double-helical oligomers. This CCL5 structure explains mutational data and offers a unified mechanism for CCL3, CCL4, and CCL5 assembly into high-molecular-weight, polydisperse oligomers. A conserved, positively charged BBXB motif is key for the binding of CC chemokines to GAG. However, this motif is partially buried when CCL3, CCL4, and CCL5 are oligomerized; thus, the mechanism by which GAG binds these chemokine oligomers has been elusive. Our structures of GAG-bound CCL5 and CCL3 oligomers reveal that these chemokine oligomers have distinct GAG-binding mechanisms. The CCL5 oligomer uses another positively charged and fully exposed motif, KKWVR, in GAG binding. However, residues from two partially buried BBXB motifs along with other residues combine to form a GAG-binding groove in the CCL3 oligomer. The N termini of CC chemokines are shown to be involved in receptor binding and oligomerization. We also report an alternative CCL3 oligomer structure that reveals how conformational changes in CCL3 N termini profoundly alter its surface properties and dimer-dimer interactions to affect GAG binding and oligomerization. Such complexity in oligomerization and GAG binding enables intricate, physiologically relevant regulation of CC chemokine functions.

摘要

C-C趋化因子配体5(CCL5)和CCL3对免疫监视和炎症至关重要。因此,它们与许多炎症性疾病的发病机制相关,并且是治疗靶点。CCL5和CCL3的寡聚化以及与糖胺聚糖(GAG)的结合对于这些趋化因子的功能至关重要。我们对人CCL5的结构和生物物理分析表明,CCL5寡聚化是一个聚合过程,其中CCL5形成棒状双螺旋寡聚体。这种CCL5结构解释了突变数据,并为CCL3、CCL4和CCL5组装成高分子量、多分散寡聚体提供了统一机制。一个保守的带正电荷的BBXB基序是C-C趋化因子与GAG结合的关键。然而,当CCL3、CCL4和CCL5寡聚化时,这个基序会部分被掩埋;因此,GAG与这些趋化因子寡聚体结合的机制一直难以捉摸。我们的GAG结合的CCL5和CCL3寡聚体结构表明,这些趋化因子寡聚体具有不同的GAG结合机制。CCL5寡聚体在GAG结合中使用另一个带正电荷且完全暴露的基序KKWVR。然而,来自两个部分掩埋的BBXB基序的残基与其他残基结合,在CCL3寡聚体中形成一个GAG结合凹槽。已表明C-C趋化因子的N末端参与受体结合和寡聚化。我们还报道了一种CCL3寡聚体的替代结构,该结构揭示了CCL3 N末端的构象变化如何深刻改变其表面性质和二聚体-二聚体相互作用,从而影响GAG结合和寡聚化。寡聚化和GAG结合的这种复杂性使得对C-C趋化因子功能进行复杂的、生理相关的调节成为可能。

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