DNA binds to a specific site of the adhesive blood-protein von Willebrand factor guided by electrostatic interactions

血管性血友病因子 生物 生物物理学 DNA 静电 结合位点 DNA超螺旋 血浆蛋白结合 生物化学 细胞生物学 血小板 分子生物学 DNA复制 免疫学 电气工程 工程类
作者
Angélica Sandoval‐Pérez,Ricarda Berger,Adiran Garaizar,Stephen E. Farr,Maria A. Brehm,Gesa König,Stefan W. Schneider,Rosana Collepardo‐Guevara,Volker Huck,Joachim O. Rädler,Camilo Aponte‐Santamaría
出处
期刊:Nucleic Acids Research [Oxford University Press]
卷期号:48 (13): 7333-7344 被引量:17
标识
DOI:10.1093/nar/gkaa466
摘要

Neutrophils release their intracellular content, DNA included, into the bloodstream to form neutrophil extracellular traps (NETs) that confine and kill circulating pathogens. The mechanosensitive adhesive blood protein, von Willebrand Factor (vWF), interacts with the extracellular DNA of NETs to potentially immobilize them during inflammatory and coagulatory conditions. Here, we elucidate the previously unknown molecular mechanism governing the DNA-vWF interaction by integrating atomistic, coarse-grained, and Brownian dynamics simulations, with thermophoresis, gel electrophoresis, fluorescence correlation spectroscopy (FCS), and microfluidic experiments. We demonstrate that, independently of its nucleotide sequence, double-stranded DNA binds to a specific helix of the vWF A1 domain, via three arginines. This interaction is attenuated by increasing the ionic strength. Our FCS and microfluidic measurements also highlight the key role shear-stress has in enabling this interaction. Our simulations attribute the previously-observed platelet-recruitment reduction and heparin-size modulation, upon establishment of DNA-vWF interactions, to indirect steric hindrance and partial overlap of the binding sites, respectively. Overall, we suggest electrostatics-guiding DNA to a specific protein binding site-as the main driving force defining DNA-vWF recognition. The molecular picture of a key shear-mediated DNA-protein interaction is provided here and it constitutes the basis for understanding NETs-mediated immune and hemostatic responses.

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