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利用CMP-唾液酸类似物解析淋病奈瑟菌脂寡糖介导的补体抗性并设计新型疗法。

Utilizing CMP-Sialic Acid Analogs to Unravel Neisseria gonorrhoeae Lipooligosaccharide-Mediated Complement Resistance and Design Novel Therapeutics.

作者信息

Gulati Sunita, Schoenhofen Ian C, Whitfield Dennis M, Cox Andrew D, Li Jianjun, St Michael Frank, Vinogradov Evgeny V, Stupak Jacek, Zheng Bo, Ohnishi Makoto, Unemo Magnus, Lewis Lisa A, Taylor Rachel E, Landig Corinna S, Diaz Sandra, Reed George W, Varki Ajit, Rice Peter A, Ram Sanjay

机构信息

Division of Infectious Diseases and Immunology, University of Massachusetts Medical School, Worcester, Massachusetts, United States of America.

Human Health Therapeutics Portfolio, National Research Council of Canada, Ottawa, Ontario, Canada.

出版信息

PLoS Pathog. 2015 Dec 2;11(12):e1005290. doi: 10.1371/journal.ppat.1005290. eCollection 2015 Dec.

Abstract

Neisseria gonorrhoeae deploys a novel immune evasion strategy wherein the lacto-N-neotetraose (LNnT) structure of lipooligosaccharide (LOS) is capped by the bacterial sialyltransferase, using host cytidine-5'-monophosphate (CMP)-activated forms of the nine-carbon nonulosonate (NulO) sugar N-acetyl-neuraminic acid (Neu5Ac), a sialic acid (Sia) abundant in humans. This allows evasion of complement-mediated killing by recruiting factor H (FH), an inhibitor of the alternative complement pathway, and by limiting classical pathway activation ("serum-resistance"). We utilized CMP salts of six additional natural or synthetic NulOs, Neu5Gc, Neu5Gc8Me, Neu5Ac9Ac, Neu5Ac9Az, legionaminic acid (Leg5Ac7Ac) and pseudaminic acid (Pse5Ac7Ac), to define structural requirements of Sia-mediated serum-resistance. While all NulOs except Pse5Ac7Ac were incorporated into the LNnT-LOS, only Neu5Gc incorporation yielded high-level serum-resistance and FH binding that was comparable to Neu5Ac, whereas Neu5Ac9Az and Leg5Ac7Ac incorporation left bacteria fully serum-sensitive and did not enhance FH binding. Neu5Ac9Ac and Neu5Gc8Me rendered bacteria resistant only to low serum concentrations. While serum-resistance mediated by Neu5Ac was associated with classical pathway inhibition (decreased IgG binding and C4 deposition), Leg5Ac7Ac and Neu5Ac9Az incorporation did not inhibit the classical pathway. Remarkably, CMP-Neu5Ac9Az and CMP-Leg5Ac7Ac each prevented serum-resistance despite a 100-fold molar excess of CMP-Neu5Ac in growth media. The concomitant presence of Leg5Ac7Ac and Neu5Ac on LOS resulted in uninhibited classical pathway activation. Surprisingly, despite near-maximal FH binding in this instance, the alternative pathway was not regulated and factor Bb remained associated with bacteria. Intravaginal administration of CMP-Leg5Ac7Ac to BALB/c mice infected with gonorrhea (including a multidrug-resistant isolate) reduced clearance times and infection burden. Bacteria recovered from CMP-Leg5Ac7Ac-treated mice were sensitive to human complement ex vivo, simulating in vitro findings. These data reveal critical roles for the Sia exocyclic side-chain in gonococcal serum-resistance. Such CMP-NulO analogs may provide a novel therapeutic strategy against the global threat of multidrug-resistant gonorrhea.

摘要

淋病奈瑟菌采用了一种新的免疫逃避策略,其中脂寡糖(LOS)的乳糖 - N - 新四糖(LNnT)结构被细菌唾液酸转移酶封闭,该酶利用宿主胞苷 - 5'-单磷酸(CMP)激活的九碳非ulosonate(NulO)糖N - 乙酰神经氨酸(Neu5Ac),这是一种在人类中丰富的唾液酸(Sia)。这使得淋病奈瑟菌能够通过招募替代补体途径的抑制剂因子H(FH)以及限制经典途径的激活(“血清抗性”)来逃避补体介导的杀伤。我们利用了六种额外的天然或合成NulO的CMP盐,即Neu5Gc、Neu5Gc8Me、Neu5Ac9Ac、Neu5Ac9Az、Legionaminic acid(Leg5Ac7Ac)和pseudaminic acid(Pse5Ac7Ac),来确定Sia介导的血清抗性的结构要求。虽然除了Pse5Ac7Ac之外的所有NulO都被整合到LNnT - LOS中,但只有Neu5Gc的整合产生了与Neu5Ac相当的高水平血清抗性和FH结合,而Neu5Ac9Az和Leg5Ac7Ac的整合使细菌对血清完全敏感,并且没有增强FH结合。Neu5Ac9Ac和Neu5Gc8Me仅使细菌对低血清浓度具有抗性。虽然Neu5Ac介导的血清抗性与经典途径抑制(IgG结合减少和C4沉积减少)相关,但Leg5Ac7Ac和Neu5Ac9Az的整合并未抑制经典途径。值得注意的是,尽管生长培养基中CMP - Neu5Ac的摩尔过量100倍,但CMP - Neu5Ac9Az和CMP - Leg5Ac7Ac各自都阻止了血清抗性。LOS上同时存在Leg5Ac7Ac和Neu5Ac导致经典途径不受抑制地激活。令人惊讶的是,尽管在这种情况下FH结合接近最大值,但替代途径并未受到调节,并且因子Bb仍然与细菌相关。将CMP - Leg5Ac7Ac经阴道给药给感染淋病(包括多重耐药菌株)的BALB/c小鼠,可减少清除时间和感染负担。从CMP - Leg5Ac7Ac处理的小鼠中回收的细菌在体外对人补体敏感,这与体外研究结果一致。这些数据揭示了Sia外环侧链在淋球菌血清抗性中的关键作用。此类CMP - NulO类似物可能为应对多重耐药淋病的全球威胁提供一种新的治疗策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/df84/4668040/c47bddaea5a9/ppat.1005290.g001.jpg

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