Department of Microbiology/Immunology, Northwestern University, Chicago, Illinois, USA.
Infect Immun. 2010 Aug;78(8):3346-57. doi: 10.1128/IAI.00223-10. Epub 2010 May 17.
ExoU is a potent effector protein that causes rapid host cell death upon injection by the type III secretion system of Pseudomonas aeruginosa. The N-terminal half of ExoU contains a patatin-like phospholipase A(2) (PLA(2)) domain that requires the host cell cofactor superoxide dismutase 1 (SOD1) for activation, while the C-terminal 137 amino acids constitute a membrane localization domain (MLD). Previous studies had utilized insertion and deletion mutations to show that portions of the MLD are required for membrane localization and catalytic activity. Here we further characterize this domain by identifying six residues that are essential for ExoU activity. Substitutions at each of these positions resulted in abrogation of membrane targeting, decreased ExoU-mediated cytotoxicity, and reductions in PLA(2) activity. Likewise, each of the six MLD residues was necessary for full virulence in cell culture and murine models of acute pneumonia. Purified recombinant ExoU proteins with substitutions at five of the six residues were not activated by SOD1, suggesting that these five residues are critical for activation by this cofactor. Interestingly, these same five ExoU proteins were partially activated by HeLa cell extracts, suggesting that a host cell cofactor other than SOD1 is capable of modulating the activity of ExoU. These findings add to our understanding of the role of the MLD in ExoU-mediated virulence.
ExoU 是一种有效的效应蛋白,当它被铜绿假单胞菌的 III 型分泌系统注射到宿主细胞中时,会导致宿主细胞迅速死亡。ExoU 的 N 端含有一个类脂肪酶 PLA(2)(PLA(2))结构域,该结构域需要宿主细胞辅助因子超氧化物歧化酶 1(SOD1)才能激活,而 C 端的 137 个氨基酸则构成一个膜定位结构域(MLD)。先前的研究利用插入和缺失突变表明,MLD 的某些部分对于膜定位和催化活性是必需的。在这里,我们通过鉴定对 ExoU 活性至关重要的六个残基来进一步研究这个结构域。这些位置的取代导致膜靶向丧失、ExoU 介导的细胞毒性降低以及 PLA(2)活性降低。同样,MLD 的六个残基中的每一个对于细胞培养和急性肺炎的小鼠模型中的完全毒力都是必需的。在六个残基中的五个位置发生取代的纯化重组 ExoU 蛋白不能被 SOD1 激活,这表明这五个残基对于该辅助因子的激活至关重要。有趣的是,这些相同的五个 ExoU 蛋白被 HeLa 细胞提取物部分激活,这表明除 SOD1 之外的宿主细胞辅助因子能够调节 ExoU 的活性。这些发现增加了我们对 MLD 在 ExoU 介导的毒力中的作用的理解。