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Rational design of a meningococcal antigen inducing broad protective immunity.

机译:诱导广泛保护性免疫的脑膜炎球菌抗原的合理设计。

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The sequence variability of protective antigens is a major challenge to the development of vaccines. For Neisseria meningitidis, the bacterial pathogen that causes meningitis, the amino acid sequence of the protective antigen factor H binding protein (fHBP) has more than 300 variations. These sequence differences can be classified into three distinct groups of antigenic variants that do not induce cross-protective immunity. Our goal was to generate a single antigen that would induce immunity against all known sequence variants of N. meningitidis. To achieve this, we rationally designed, expressed, and purified 54 different mutants of fHBP and tested them in mice for the induction of protective immunity. We identified and determined the crystal structure of a lead chimeric antigen that was able to induce high levels of cross-protective antibodies in mice against all variant strains tested. The new fHBP antigen had a conserved backbone that carried an engineered surface containing specificities for all three variant groups. We demonstrate that the structure-based design of multiple immunodominant antigenic surfaces on a single protein scaffold is possible and represents an effective way to create broadly protective vaccines.
机译:保护性抗原的序列变异性是疫苗开发的主要挑战。对于引起脑膜炎的细菌性病原体脑膜炎奈瑟氏球菌,保护性抗原因子H结合蛋白(fHBP)的氨基酸序列具有300多种变异。这些序列差异可以分为不诱导交叉保护性免疫的三个不同的抗原变体组。我们的目标是产生一种能够诱导针对脑膜炎奈瑟氏球菌所有已知序列变异体的免疫力的单一抗原。为实现此目的,我们合理设计,表达和纯化了54种不同的fHBP突变体,并在小鼠中测试了它们对保护性免疫的诱导作用。我们确定并确定了一种嵌合嵌合铅抗原的晶体结构,该抗原能够在小鼠中诱导针对测试的所有变异株的高水平交叉保护抗体。新的fHBP抗原具有保守的骨架,该骨架带有经过工程改造的表面,该表面含有对所有三个变异组的特异性。我们证明在单个蛋白质支架上的多个免疫优势抗原表面的基于结构的设计是可能的,并且代表了创建广泛保护性疫苗的有效途径。

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