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Defects in assembly explain reduced antiviral activity of the G249D polymorphism in human TRIM5α

机译:组装中的缺陷解释了人Trim5α中G249D多态性的降低的抗病毒活性

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摘要

TRIM5α is an interferon inducible restriction factor which contributes to intrinsic defense against HIV infection by targeting the HIV capsid protein CA. Although human TRIM5α (huTRIM5α) does not potently inhibit HIV-1 infection, the ability of huTRIM5α to exhibit some control of HIV-1 infection is evidenced by a single nucleotide polymorphism in huTRIM5α which substitutes aspartic acid to glycine at position 249 (G249D) in the L2 region and is associated with higher susceptibility to HIV-1 infection. To understand the mechanistic basis for the reduced antiviral activity, we employed biophysical and cell biological methods coupled with molecular dynamics simulations to compare WT and the G249D polymorphism of huTRIM5α. We investigated the differences in conformational dynamics of rhesus and huTRIM5α Coiled Coil-Linker 2 (CC-L2) dimers utilizing circular dichroism and single molecule-Fluorescence Energy Transfer (sm-FRET). These methods revealed that the G249D dimer exhibits secondary structure and conformational dynamics similar to WT huTRIM5α. Homology modelling revealed that G249 was present on the hairpin of the antiparallel dimer, in a position which may act to stabilize the adjacent BBox2 domain which mediates the inter-dimeric contacts required for the formation of TRIM5 assemblies. We therefore asked if the G249D mutant forms assemblies in cells with the same efficiency as WT protein by expressing these proteins as YFP fusions and quantifying the number of assemblies in cells. In cells expressing comparable amounts of protein, the G249D mutant formed fewer assemblies than WT protein, in agreement with our homology modeling predictions and molecular dynamics simulations of dimers and higher oligomers of TRIM5α, providing a mechanistic explanation of the reduced antiviral activity of the G249D polymorphism.
机译:TRIM5α是一种干扰素诱导的制约因素,这有助于免受艾滋病毒感染的内在防御由靶向HIV衣壳蛋白CA.虽然人类TRIM5α(huTRIM5α)不有效地抑制HIV-1感染,huTRIM5α的能力表现出HIV-1感染的一些控制是通过在huTRIM5α的单核苷酸多态性,其在位置249(G249D)替代天冬氨酸甘氨酸证明的L2区域中并且以更高的易感性相关于HIV-1感染。为了理解为降低抗病毒活性的机制基础,我们采用加上分子动力学模拟,比较WT和huTRIM5α的G249D多态性生物物理和细胞生物学方法。我们研究了在恒河猴和huTRIM5α卷曲螺旋 - 接头的构象动力学的差异2(CC-L2)利用圆二色性和单分子荧光能量转移(SM-FRET)二聚体。这些方法表明,G249D二聚体表现出的二级结构和构象动力学类似于WThuTRIM5α。同源性建模表明G249是存在于反平行二聚体的发夹,其中可起作用以稳定其介导对的TRIM5组件中形成所需的帧间二聚体接触相邻BBox2域的位置。因此,我们询问是否G249D突变形式组件与所述相同的效率WT蛋白通过表达这些蛋白作为融合YFP和定量细胞组件的数量的细胞。在表达可比量的蛋白质的细胞,所述G249D突变体形成更少的组件比WT蛋白,在协议与我们的同源性建模的预测和二聚体的分子动力学模拟和TRIM5α的高级低聚物,提供G249D多态性的减小的抗病毒活性的机理解释。

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