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Structural determination of the complement inhibitory domain of Borrelia burgdorferi BBK32 provides insight into classical pathway complement evasion by Lyme disease spirochetes

机译:伯氏疏螺旋体BBK32补体抑制域的结构测定提供了对莱姆病螺旋体逃逸经典途径补体的了解

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The carboxy-terminal domain of the BBK32 protein from Borrelia burgdorferi sensu stricto, termed BBK32-C, binds and inhibits the initiating serine protease of the human classical complement pathway, C1r. In this study we investigated the function of BBK32 orthologues of the Lyme-associated Borrelia burgdorferi sensu lato complex, designated BAD16 from B. afzelii strain PGau and BGD19 from B. garinii strain IP90. Our data show that B. afzelii BAD16-C exhibits BBK32-C-like activities in all assays tested, including high-affinity binding to purified C1r protease and C1 complex, and potent inhibition of the classical complement pathway. Recombinant B. garinii BGD19-C also bound C1 and C1r with high-affinity yet exhibited significantly reduced in vitro complement inhibitory activities relative to BBK32-C or BAD16-C. Interestingly, natively produced BGD19 weakly recognized C1r relative to BBK32 and BAD16 and, unlike these proteins, BGD19 did not confer significant protection from serum killing. Site-directed mutagenesis was performed to convert BBK32-C to resemble BGD19-C at three residue positions that are identical between BBK32 and BAD16 but different in BGD19. The resulting chimeric protein was designated BXK32-C and this BBK32-C variant mimicked the properties observed for BGD19-C. To query the disparate complement inhibitory activities of BBK32 orthologues, the crystal structure of BBK32-C was solved to 1.7Å limiting resolution. BBK32-C adopts an anti-parallel four-helix bundle fold with a fifth alpha-helix protruding from the helical core. The structure revealed that the three residues targeted in the BXK32-C chimera are surface-exposed, further supporting their potential relevance in C1r binding and inhibition. Additional binding assays showed that BBK32-C only recognized C1r fragments containing the serine protease domain. The structure-function studies reported here improve our understanding of how BBK32 recognizes and inhibits C1r and provide new insight into complement evasion mechanisms of Lyme-associated spirochetes of the B. burgdorferi sensu lato complex.
机译:来自严格疏螺旋疏螺旋体的BBK32蛋白的羧基末端结构域,称为BBK32-C,结合并抑制人经典补体途径C1r的起始丝氨酸蛋白酶。在这项研究中,我们调查了与莱姆相关的伯氏疏螺旋体复合物的BBK32直向同源物的功能,该复合物被命名为Afzelii菌株PGau的BAD16和B. garinii菌株IP90的BGD19。我们的数据显示,在所有测试方法中,非洲双歧杆菌BAD16-C均显示BBK32-C样活性,包括与纯化的C1r蛋白酶和C1复合物的高亲和力结合以及对经典补体途径的有效抑制。重组芽孢杆菌BGD19-C还以高亲和力结合C1和C1r,但相对于BBK32-C或BAD16-C表现出明显降低的体外补体抑制活性。有趣的是,相对于BBK32和BAD16,天然产生的BGD19对C1r的识别较弱,并且与这些蛋白质不同,BGD19并未赋予血清杀灭显着的保护作用。进行定点诱变以在三个残基位置将BBK32-C转换为类似于BGD19-C,这三个残基在BBK32和BAD16之间相同但在BGD19中不同。所得的嵌合蛋白称为BXK32-C,该BBK32-C变异体模仿了BGD19-C的特性。为了查询BBK32直向同源物的不同的补体抑制活性,将BBK32-C的晶体结构解析为1.7Å极限分辨率。 BBK32-C采用了反平行的四螺旋束折叠,第五个α螺旋从螺旋形芯突出。该结构表明,BXK32-C嵌合体中靶向的三个残基是表面暴露的,进一步支持了它们在C1r结合和抑制中的潜在相关性。额外的结合试验表明,BBK32-C仅识别含有丝氨酸蛋白酶结构域的C1r片段。此处报道的结构功能研究提高了我们对BBK32如何识别和抑制C1r的理解,并提供了对B. burgdorferi sensu lato复合物的莱姆相关螺旋体补体逃逸机制的新见解。

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