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A群脑膜炎奈瑟菌荚膜生物合成复合体组分的分子克隆与功能表征:迈向体外疫苗生产

Molecular cloning and functional characterization of components of the capsule biosynthesis complex of Neisseria meningitidis serogroup A: toward in vitro vaccine production.

作者信息

Fiebig Timm, Freiberger Friedrich, Pinto Vittoria, Romano Maria Rosaria, Black Alan, Litschko Christa, Bethe Andrea, Yashunsky Dmitry, Adamo Roberto, Nikolaev Andrei, Berti Francesco, Gerardy-Schahn Rita

机构信息

From the Institute for Cellular Chemistry, Hannover Medical School, 30625 Hannover, Germany.

Novartis Vaccines, Research, Via Fiorentina 1, 53100 Siena, Italy.

出版信息

J Biol Chem. 2014 Jul 11;289(28):19395-407. doi: 10.1074/jbc.M114.575142. Epub 2014 May 21.

Abstract

The human pathogen Neisseria meningitidis (Nm) is a leading cause of bacterial meningitis and sepsis globally. A major virulence factor of Nm is the capsular polysaccharide (CPS), which in Nm serogroup A consists of N-acetyl-mannosamine-1-phosphate units linked together by phosphodiester linkages [ → 6)-α-D-ManNAc-(1 → OPO3 (-)→]n. Acetylation in O-3 (to a minor extent in O-4) position results in immunologically active polymer. In the capsule gene cluster (cps) of Nm, region A contains the genetic information for CPSA biosynthesis. Thereby the open reading frames csaA, -B, and -C are thought to encode the UDP-N-acetyl-D-glucosamine-2-epimerase, poly-ManNAc-1-phosphate-transferase, and O-acetyltransferase, respectively. With the aim to use a minimal number of recombinant enzymes to produce immunologically active CPSA, we cloned the genes csaA, csaB, and csaC and functionally characterized the purified recombinant proteins. If recombinant CsaA and CsaB were combined in one reaction tube, priming CPSA-oligosaccharides were efficiently elongated with UDP-GlcNAc as the donor substrate, confirming that CsaA is the functional UDP-N-acetyl-D-glucosamine-2-epimerase and CsaB the functional poly-ManNAc-1-phosphate-transferase. Subsequently, CsaB was shown to transfer ManNAc-1P onto O-6 of the non-reducing end sugar of priming oligosaccharides, to prefer non-O-acetylated over O-acetylated primers, and to efficiently elongate the dimer of ManNAc-1-phosphate. The in vitro synthesized CPSA was purified, O-acetylated with recombinant CsaC, and proven to be identical to the natural CPSA by (1)H NMR, (31)P NMR, and immunoblotting. If all three enzymes and their substrates were combined in a one-pot reaction, nature identical CPSA was obtained. These data provide the basis for the development of novel vaccine production protocols.

摘要

人类病原体脑膜炎奈瑟菌(Nm)是全球细菌性脑膜炎和败血症的主要病因。Nm的一个主要毒力因子是荚膜多糖(CPS),在Nm A血清群中,它由通过磷酸二酯键连接在一起的N-乙酰甘露糖胺-1-磷酸单元组成[→6)-α-D-ManNAc-(1→OPO3 (-)→]n。O-3(在较小程度上为O-4)位置的乙酰化产生具有免疫活性的聚合物。在Nm的荚膜基因簇(cps)中,A区域包含CPSA生物合成的遗传信息。因此,开放阅读框csaA、-B和-C分别被认为编码UDP-N-乙酰-D-葡萄糖胺-2-表异构酶、聚甘露糖胺-1-磷酸转移酶和O-乙酰转移酶。为了使用最少数量的重组酶来生产具有免疫活性的CPSA,我们克隆了基因csaA、csaB和csaC,并对纯化的重组蛋白进行了功能表征。如果将重组CsaA和CsaB在一个反应管中混合,以UDP-GlcNAc作为供体底物,引发的CPSA-寡糖会被有效地延长,这证实了CsaA是功能性的UDP-N-乙酰-D-葡萄糖胺-2-表异构酶,CsaB是功能性的聚甘露糖胺-1-磷酸转移酶。随后,CsaB被证明能将甘露糖胺-1P转移到引发寡糖非还原端糖的O-6位,优先选择非O-乙酰化的引物而非O-乙酰化的引物,并能有效地延长甘露糖胺-1-磷酸的二聚体。体外合成的CPSA被纯化,用重组CsaC进行O-乙酰化,并通过(1)H NMR、(31)P NMR和免疫印迹证明与天然CPSA相同。如果将所有三种酶及其底物在一锅反应中混合,就能得到与天然相同的CPSA。这些结果为开发新型疫苗生产方案奠定了基础。

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