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从晶体结构到伯克霍尔德菌鞭毛钩相关蛋白FlgK的计算机模拟表位发现

From crystal structure to in silico epitope discovery in the Burkholderia pseudomallei flagellar hook-associated protein FlgK.

作者信息

Gourlay Louise J, Thomas Rachael J, Peri Claudio, Conchillo-Solé Oscar, Ferrer-Navarro Mario, Nithichanon Arnone, Vila Jordi, Daura Xavier, Lertmemongkolchai Ganjana, Titball Richard, Colombo Giorgio, Bolognesi Martino

机构信息

Department of Biosciences, University of Milan, Italy.

出版信息

FEBS J. 2015 Apr;282(7):1319-33. doi: 10.1111/febs.13223. Epub 2015 Feb 23.

Abstract

Melioidosis, caused by the Gram-negative bacterium Burkholderia pseudomallei, is a potentially fatal infection that is endemic in Southeast Asia and Northern Australia that is poorly controlled by antibiotics. Research efforts to identify antigenic components for a melioidosis vaccine have led to the identification of several proteins, including subunits forming the flagella that mediate bacterial motility, host colonization, and virulence. This study focuses on the B. pseudomallei flagellar hook-associated protein (FlgK(Bp)), and provides the first insights into the 3D structure of FlgK proteins as targets for structure-based antigen engineering. The FlgK(Bp) crystal structure (presented here at 1.8-Å resolution) reveals a multidomain fold, comprising two small β-domains protruding from a large elongated α-helical bundle core. The evident structural similarity to flagellin, the flagellar filament subunit protein, suggests that, depending on the bacterial species, flagellar hook-associated proteins are likely to show a conserved, elongated α-helical bundle scaffold coupled to a variable number of smaller domains. Furthermore, we present immune serum recognition data confirming, in agreement with previous findings, that recovered melioidosis patients produce elevated levels of antibodies against FlgK(Bp), in comparison with seronegative and seropositive healthy subjects. Moreover, we show that FlgK(Bp) has cytotoxic effects on cultured murine macrophages, suggesting an important role in bacterial pathogenesis. Finally, computational epitope prediction methods applied to the FlgK(Bp) crystal structure, coupled with in vitro mapping, allowed us to predict three antigenic regions that locate to discrete protein domains. Taken together, our results point to FlgK(Bp) as a candidate for the design and production of epitope-containing subunits/domains as potential vaccine components.

摘要

类鼻疽是由革兰氏阴性细菌伯克霍尔德菌引起的一种潜在致命感染,在东南亚和澳大利亚北部流行,抗生素对其控制效果不佳。鉴定类鼻疽疫苗抗原成分的研究工作已鉴定出几种蛋白质,包括构成鞭毛的亚基,这些鞭毛介导细菌运动、宿主定植和毒力。本研究聚焦于伯克霍尔德菌鞭毛钩相关蛋白(FlgK(Bp)),并首次深入了解了FlgK蛋白的三维结构,将其作为基于结构的抗原工程靶点。FlgK(Bp)晶体结构(此处以1.8埃分辨率呈现)揭示了一种多结构域折叠,由从一个大的细长α-螺旋束核心突出的两个小β-结构域组成。与鞭毛丝亚基蛋白鞭毛蛋白明显的结构相似性表明,根据细菌种类不同,鞭毛钩相关蛋白可能呈现出一种保守的、细长的α-螺旋束支架,并与可变数量的较小结构域相连。此外,我们提供的免疫血清识别数据证实,与先前的研究结果一致,与血清阴性和血清阳性的健康受试者相比,康复的类鼻疽患者产生的抗FlgK(Bp)抗体水平升高。而且,我们表明FlgK(Bp)对培养的小鼠巨噬细胞具有细胞毒性作用,提示其在细菌致病过程中起重要作用。最后,将计算表位预测方法应用于FlgK(Bp)晶体结构,并结合体外图谱分析,使我们能够预测位于离散蛋白结构域的三个抗原区域。综上所述,我们的结果表明FlgK(Bp)作为设计和生产含表位亚基/结构域作为潜在疫苗成分的候选物。

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