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细菌毒素产生的细胞 cAMP 的独特时空分布差异抑制调理吞噬信号。

Distinct Spatiotemporal Distribution of Bacterial Toxin-Produced Cellular cAMP Differentially Inhibits Opsonophagocytic Signaling.

机构信息

Institute of Microbiology of the CAS, v. v. i., Videnska 1083, 142 20 Prague, Czech Republic.

出版信息

Toxins (Basel). 2019 Jun 20;11(6):362. doi: 10.3390/toxins11060362.

Abstract

Myeloid phagocytes have evolved to rapidly recognize invading pathogens and clear them through opsonophagocytic killing. The adenylate cyclase toxin (CyaA) of and the edema toxin (ET) of are both calmodulin-activated toxins with adenylyl cyclase activity that invade host cells and massively increase the cellular concentrations of a key second messenger molecule, 3',5'-cyclic adenosine monophosphate (cAMP). However, the two toxins differ in the kinetics and mode of cell entry and generate different cAMP concentration gradients within the cell. While CyaA rapidly penetrates cells directly across their plasma membrane, the cellular entry of ET depends on receptor-mediated endocytosis and translocation of the enzymatic subunit across the endosomal membrane. We show that CyaA-generated membrane-proximal cAMP gradient strongly inhibits the activation and phosphorylation of Syk, Vav, and Pyk2, thus inhibiting opsonophagocytosis. By contrast, at similar overall cellular cAMP levels, the ET-generated perinuclear cAMP gradient poorly inhibits the activation and phosphorylation of these signaling proteins. Hence, differences in spatiotemporal distribution of cAMP produced by the two adenylyl cyclase toxins differentially affect the opsonophagocytic signaling in myeloid phagocytes.

摘要

髓样吞噬细胞进化出了快速识别入侵病原体并通过调理吞噬作用将其清除的能力。 和 的腺苷酸环化酶毒素(CyaA)和水肿毒素(ET)都是钙调蛋白激活毒素,具有腺苷酸环化酶活性,可侵入宿主细胞并大量增加关键第二信使分子 3',5'-环腺苷酸(cAMP)的细胞浓度。 然而,这两种毒素在细胞进入的动力学和模式上存在差异,并在细胞内产生不同的 cAMP 浓度梯度。 虽然 CyaA 可直接穿过质膜快速穿透细胞,但 ET 的细胞进入依赖于受体介导的内吞作用和酶亚基穿过内体膜的易位。 我们表明,CyaA 产生的靠近质膜的 cAMP 梯度强烈抑制了 Syk、Vav 和 Pyk2 的激活和磷酸化,从而抑制了调理吞噬作用。 相比之下,在相似的整体细胞 cAMP 水平下,ET 产生的核周 cAMP 梯度对这些信号蛋白的激活和磷酸化抑制作用很差。 因此,两种腺苷酸环化酶毒素产生的 cAMP 的时空分布差异会对髓样吞噬细胞的调理吞噬作用信号产生不同的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/db80/6628411/359ad4f0e53e/toxins-11-00362-g0A1.jpg

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