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首页> 外文期刊>International journal of medical microbiology: IJMM >Pseudomonas quinolone signalling system: A component of quorum sensing cascade is a crucial player in the acute urinary tract infection caused by Pseudomonas aeruginosa
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Pseudomonas quinolone signalling system: A component of quorum sensing cascade is a crucial player in the acute urinary tract infection caused by Pseudomonas aeruginosa

机译:假单胞菌喹诺酮信号系统:群体感应级联的组成部分是铜绿假单胞菌引起的急性尿路感染的关键因素

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Pseudomonas aeruginosa is an opportunistic pathogen which employs quorum sensing system to regulate several genes required for its survival and pathogenicity within the host. Besides acylhomoserine lactone (AHL) mediated las and rhl systems, this organism possesses Pseudomonas quinolone signalling (PQS) system based on alkyl quinolone signal molecules. The quinolone system represents another layer of sophistication in the complex quorum sensing cascade. Therefore, in the present study, we evaluated the contribution of the PQS system in the establishment of acute urinary tract infection (UTI) in the mouse model. For this, wild-type parent strain of P. aeruginosa MPAO1 and its isogenic single transposon mutant strains pqsH and pqsA were employed to induce UTI in mice. PQS molecules in the tissue homogenates of mice were detected by high performance thin layer chromatography (HP-TLC) method. Virulence of strains was assessed in terms of bacteriological count, histopathological lesions in the renal and bladder tissue and generation of pathological index markers like reactive nitrogen intermediates and malondialdehyde. HP-TLC analysis showed presence of PQS molecules in the renal and bladder tissue of mice infected with MPAO1 while no PQS was detected in case of pqsH and pqsA mutant strains. Results indicated that MPAO1 possessing fully functional PQS biosynthetic genes was highly virulent and caused acute pyelonephritis with severe inflammation and tissue destruction. On the contrary, significant reduction in the log count, mild tissue damage and declined levels of pathological markers were observed in mice infected with mutant strains as compared to MPAO1. Further among mutants, all these parameters were maximally impaired in the pqsA mutant in which synthesis of alkyl quinolones was completely abolished due to the transposon mutation in respective gene. Virulence of the pqsH mutant strain was lesser than that of the MPAO1 but higher than pqsA mutant. In addition, the levels of locally generated pro- and anti-inflammatory cytokines were also found to be low in the renal homogenates of mice infected with the mutant strains. Further, supplementation of strains with PQS resulted in significant enhancement in the virulence as indicated by increased bacterial load, severe histopathological damage and enhanced levels of pro-inflammatory cytokines. These findings provide a new insight into the relevant importance of the Pseudomonas quinolone signalling system in the acute UTI caused by P. aeruginosa. This system can be a potential target for futuristic anti-infective approach against this organism. (C) 2014 Elsevier GmbH. All rights reserved.
机译:铜绿假单胞菌是一种机会病原体,它利用群体感应系统调节其在宿主内的存活和致病性所需的几个基因。除了酰基高丝氨酸内酯(AHL)介导的las和rhl系统外,该生物还具有基于烷基喹诺酮信号分子的假单胞菌喹诺酮信号传导(PQS)系统。喹诺酮系统代表复杂群体感应级联反应中的另一层复杂性。因此,在本研究中,我们评估了PQS系统在小鼠模型中建立急性尿路感染(UTI)中的作用。为此,采用铜绿假单胞菌MPAO1的野生型亲本菌株及其同基因单转座子突变体菌株pqsH和pqsA诱导小鼠尿路感染。通过高效薄层色谱法(HP-TLC)检测小鼠组织匀浆中的PQS分子。根据细菌学计数,肾和膀胱组织中的组织病理学损害以及病理学指标标记(如活性氮中间体和丙二醛)的生成来评估菌株的毒力。 HP-TLC分析显示,感染MPAO1的小鼠的肾脏和膀胱组织中存在PQS分子,而在pqsH和pqsA突变株中未检测到PQS。结果表明,具有完整功能的PQS生物合成基因的MPAO1具有高毒力,可引起急性肾盂肾炎,并伴有严重的炎症和组织破坏。相反,与MPAO1相比,在感染突变株的小鼠中观察到对数计数的显着降低,轻度的组织损伤和病理标志物水平的下降。此外,在突变体中,所有这些参数在pqsA突变体中受到最大损害,在该突变体中,由于各个基因中的转座子突变,烷基喹诺酮的合成被完全取消。 pqsH突变株的毒力小于MPAO1,但高于pqsA突变体。另外,在感染突变株的小鼠的肾脏匀浆中,还发现局部产生的促炎和抗炎细胞因子水平较低。另外,用PQS补充菌株导致毒力的显着增强,如增加的细菌载量,严重的组织病理学损害和增强的促炎细胞因子水平所表明的。这些发现为铜绿假单胞菌引起的急性UTI中假单胞菌喹诺酮信号系统的相关重要性提供了新的见解。该系统可能是针对该生物体的未来抗感染方法的潜在目标。 (C)2014 Elsevier GmbH。版权所有。

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