Characterization of a Novel Cell Wall-Associated Nucleotidase of Enterococcus faecalis that Degrades Extracellular c-di-AMP.

Adriana G Morales Rivera, Anju Bala, Leila G Casella, Debra N Brunson, Aria Patel, Elsa Wongso, Ana L Flores-Mireles, José A Lemos
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Abstract

Enterococcus faecalis is a prolific opportunistic pathogen responsible for a range of life-threatening infections for which treatment options are increasingly limited due to the high prevalence of multidrug-resistant isolates. Cyclic di-AMP has emerged as an essential bacterial signaling molecule due to its impact on physiological processes, including osmotic adaptation, cell wall homeostasis, antibiotic tolerance, and virulence. In addition, c-di-AMP is a potent pathogen-associated molecular pattern (PAMP) molecule recognized by the host immune system to trigger protective responses. In previous work, we identified and characterized the enzymes responsible for the synthesis and degradation of intracellular c-di-AMP in E. faecalis, demonstrating that maintaining c-di-AMP homeostasis is vital for bacterial fitness and virulence. In addition to the intracellular enzymes that regulate c-di-AMP levels, a limited number of bacteria encode surface-associated nucleotidases capable of cleaving extracellular c-di-AMP, potentially facilitating immune evasion. Here, we characterize a novel and unique cell wall-anchored phosphodiesterase, termed EecP (E. faecalis extracellular c-di-AMP phosphodiesterase), which features duplicated catalytic domains and specifically degrades extracellular c-di-AMP. Deletion of eecPeecP) resulted in a marked accumulation of extracellular c-di-AMP. Although the ΔeecP strain exhibited comparable growth and behavior to the parent strain in vitro, it displayed increased susceptibility to killing by phagocytic cells. Using two murine infection models, we show that the impact of eecP deletion and the consequent buildup of extracellular c-di-AMP on E. faecalis pathogenesis may be site-specific. Notably, disseminated infection was more severe in mice infected with the ΔeecP strain, suggesting that extracellular c-di-AMP influences infection outcomes, likely through modulation of host immune responses.

降解细胞外c-二磷酸腺苷的新型粪肠球菌细胞壁相关核苷酸酶的表征。
粪肠球菌是一种多产的机会性病原体,可导致一系列危及生命的感染,由于耐多药分离株的高度流行,治疗方案越来越有限。由于其对渗透适应、细胞壁稳态、抗生素耐受性和毒力等生理过程的影响,环二磷酸腺苷已成为一种重要的细菌信号分子。此外,c-di-AMP是一种有效的病原体相关分子模式(PAMP)分子,可被宿主免疫系统识别以触发保护反应。在之前的工作中,我们鉴定并表征了粪肠杆菌胞内c-二磷酸腺苷合成和降解的酶,证明维持c-二磷酸腺苷的稳态对细菌的适应性和毒力至关重要。除了调节c-二磷酸腺苷水平的细胞内酶外,有限数量的细菌编码能够切割细胞外c-二磷酸腺苷的表面相关核苷酸酶,可能促进免疫逃避。在这里,我们描述了一种新的和独特的细胞壁锚定磷酸二酯酶,称为EecP (E. faecalis胞外c-二- amp磷酸二酯酶),它具有重复的催化结构域,并特异性地降解胞外c-二- amp。eecP的缺失(Δ eecP)导致细胞外c-二- amp的显著积累。虽然Δ eecP菌株在体外表现出与亲本菌株相当的生长和行为,但它对吞噬细胞的杀伤表现出更高的敏感性。通过两种小鼠感染模型,我们发现eecP缺失和随之产生的细胞外c-二- amp的积累对粪肠球菌发病机制的影响可能是部位特异性的。值得注意的是,在感染Δ eecP菌株的小鼠中,播散性感染更为严重,这表明细胞外c-di-AMP可能通过调节宿主免疫反应影响感染结果。作者总结:粪肠球菌是一种主要的机会性病原体,也是几种危及生命的医院相关感染的主要原因。环二磷酸腺苷(Cyclic di-AMP)是一种细菌第二信使核苷酸,它调节细胞的基本过程,在细菌发病和宿主免疫激活中起关键作用。我们之前对E. faecalis中负责c-di-AMP合成和降解的酶进行了表征,证明了这种信号分子对细菌适应性和毒力至关重要。在这项研究中,我们描述了EecP的特性,EecP是一种新的细胞壁相关酶,可以在细胞外降解c-二- amp。我们的研究结果确定EecP是粪肠杆菌中一种新的毒力因子,能够调节感染结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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