Yin Yi, Tian Mingxing, Zhang Guangdong, Ding Chan, Yu Shengqing
Shanghai Veterinary Research Institute, Chinese Academy of Agricultural Sciences (CAAS), Shanghai 200241, China.
Shanghai Veterinary Research Institute, Chinese Academy of Agricultural Sciences (CAAS), Shanghai 200241, China; Shanghai Key Laboratory of Veterinary Biotechnology, School of Agriculture and Biology, Shanghai Jiao Tong University, Shanghai 200240, China.
Microbiol Res. 2025 Mar;292:128015. doi: 10.1016/j.micres.2024.128015. Epub 2024 Dec 13.
Brucella relies on the type IV secretion system (T4SS) to establish replication niches within host cells. However, the Brucella T4SS effectors and their functions have not been fully identified. In this study, we investigated the function of Brucella RS15060, a novel T4SS effector discovered in our previous study, on the bacterial biological characteristics and pathogenesis by construction of the gene deletion and complementation strains. We found that deletion of the rs15060 gene weakened abilities of Brucella to replicate within host cells and establish chronic infection in mice but enhanced abilities to adhere/invade HeLa cells and evade lysosomal degradation in the early stage of infection. In addition, the rs15060 deletion Brucella strain showed significant changes in bacterial shape, cell wall thickness, and sensitivity to bactericidal factors. Furthermore, the rs15060 deletion strain showed an increased synthesis of bacterial lipopolysaccharide core and induced a stronger host's inflammatory response. The Brucella rs15060 complementation strain restored the altered biological characteristics. Moreover, BLASTP prediction and 3D structure simulation revealed that the Brucella RS15060 contains NAD(P)-binding and active motifs in structure, which are important for proteins to exert NAD dependent epimerase/dehydratase activity. The complementation strain with mutation on NAD(P)-binding and/or active motifs of RS15060 did not restore the altered characteristics, suggesting that the Brucella RS15060 is a potential NAD dependent epimerase/dehydratase, and the predicted NAD(P)-binding and/or active motifs play an important role on bacterial cell wall and LPS core synthesis, which is crucial for maintaining bacterial morphology and exerting virulence.
布鲁氏菌依靠IV型分泌系统(T4SS)在宿主细胞内建立复制微环境。然而,布鲁氏菌T4SS效应蛋白及其功能尚未完全明确。在本研究中,我们通过构建基因缺失和互补菌株,研究了我们之前研究中发现的一种新型T4SS效应蛋白——布鲁氏菌RS15060对细菌生物学特性和致病机制的影响。我们发现,rs15060基因的缺失削弱了布鲁氏菌在宿主细胞内复制以及在小鼠体内建立慢性感染的能力,但增强了其在感染早期黏附/侵袭HeLa细胞以及逃避溶酶体降解的能力。此外,缺失rs15060基因的布鲁氏菌菌株在细菌形态、细胞壁厚度和对杀菌因子的敏感性方面表现出显著变化。此外,缺失rs15060基因的菌株显示出细菌脂多糖核心合成增加,并诱导宿主产生更强的炎症反应。布鲁氏菌rs15060互补菌株恢复了改变的生物学特性。此外,BLASTP预测和三维结构模拟显示,布鲁氏菌RS150在结构上含有NAD(P)结合基序和活性基序,这对于蛋白质发挥NAD依赖的表异构酶/脱水酶活性很重要。在RS15060的NAD(P)结合和/或活性基序上发生突变的互补菌株未能恢复改变的特性,这表明布鲁氏菌RS15060是一种潜在的NAD依赖的表异构酶/脱水酶,预测的NAD(P)结合和/或活性基序在细菌细胞壁和LPS核心合成中起重要作用,这对于维持细菌形态和发挥毒力至关重要。