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Genetic Biochemical and Serological Characterization of a New Pneumococcal Serotype 6H and Generation of a Pneumococcal Strain Producing Three Different Capsular Repeat Units

机译:新型肺炎球菌血清型6H的遗传生化和血清学表征以及产生三种不同荚膜重复单元的肺炎球菌菌株的产生

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摘要

Streptococcus pneumoniae clinical isolates were recently described that produced capsular polysaccharide with properties of both serotypes 6A and 6B. Their hybrid serological property correlated with mutations affecting the glycosyltransferase WciP, which links rhamnose to ribitol by an α(1-3) linkage for serotypes 6A and 6C and an α(1-4) linkage for serotypes 6B and 6D. The isolates had mutations in the triad residues of WciP that have been correlated with enzyme specificity. The canonical triad residues of WciP are Ala192-Ser195-Arg254 for serotypes 6A and 6C and Ser192-Asn195-Gly254 for serotypes 6B and 6D. To prove that the mutations in the triad residues are responsible for the hybrid serotype, we introduced the previously described Ala192-Cys195-Arg254 triad into a 6A strain and found that the change made WciP bispecific, resulting in 6A and 6B repeat unit expression, although 6B repeat unit production was favored over production of 6A repeat units. Likewise, this triad permitted a 6C strain to express 6C and 6D repeat units. With reported bispecificity in WciN, which adds either glucose or galactose as the second sugar in the serogroup 6 repeat unit, the possibility exists for a strain to simultaneously produce all four serogroup 6 repeat units; however, when genes encoding both bispecific enzymes were introduced into a 6A strain, only 6A, 6B, and 6D repeat units were detected serologically. Nonetheless, this may be the first example of a bacterial polysaccharide with three different repeat units. This strategy of expressing multiple repeat units in a single polymer is a novel approach to broadening vaccine coverage by eliminating the need for multiple polysaccharide sources to cover multiple serogroup members.
机译:最近描述了肺炎链球菌临床分离株,其产生具有血清型6A和6B的特性的荚膜多糖。它们的杂合血清学特性与影响糖基转移酶WciP的突变相关,后者通过6型和6C型的α(1-3)键和6B和6D型的α(1-4)键将鼠李糖连接到核糖醇。分离株在WciP的三联体残基中具有与酶特异性相关的突变。对于血清型6A和6C,WciP的规范三元组残基为Ala192-Ser195-Arg254,对于血清型6B和6D,其为Ser192-Asn195-Gly254。为了证明三联体残基中的突变是造成杂种血清型的原因,我们将先前描述的Ala192-Cys195-Arg254三联体引入了6A菌株,发现该变化使WciP具有双特异性,导致6A和6B重复单元表达,尽管6B重复单元的生产优于6A重复单元的生产。同样,该三联体允许6C菌株表达6C和6D重复单元。据报道,在WciN中具有双特异性,在serogroup 6重复单元中添加了葡萄糖或半乳糖作为第二种糖,因此菌株可能同时产生所有四个serogroup 6重复单元。然而,当将编码两种双特异性酶的基因引入6A菌株时,血清学上仅检测到6A,6B和6D重复单元。尽管如此,这可能是具有三个不同重复单元的细菌多糖的第一个例子。在单个聚合物中表达多个重复单元的这种策略是一种新颖的方法,可通过消除对覆盖多个血清群成员的多种多糖来源的需求来扩大疫苗覆盖范围。

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