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环境酸化影响的化脓性链球菌分泌组的无标记蛋白质组学分析揭示了一种参与坏死性筋膜炎的新型酸诱导蛋白组氨酸三联体蛋白A(HtpA)。

Label-free proteomic analysis of environmental acidification-influenced Streptococcus pyogenes secretome reveals a novel acid-induced protein histidine triad protein A (HtpA) involved in necrotizing fasciitis.

作者信息

Wen Yao-Tseng, Wang Jie-Siou, Tsai Shu-Han, Chuan Chiang-Ni, Wu Jiunn-Jong, Liao Pao-Chi

机构信息

Department of Environmental and Occupational Health, College of Medicine, National Cheng Kung University, Tainan, Taiwan.

Department of Microbiology and Immunology Chang Gung University, Tao-Yuan, Taiwan.

出版信息

J Proteomics. 2014 Sep 23;109:90-103. doi: 10.1016/j.jprot.2014.06.026. Epub 2014 Jul 3.

Abstract

UNLABELLED

Streptococcus pyogenes is responsible for various diseases. During infection, bacteria must adapt to adverse environments, such as the acidic environment. Acidic stimuli may stimulate S. pyogenes to invade into deeper tissue. However, how this acidic stimulus causes S. pyogenes to manipulate its secretome for facilitating invasion remains unclear. The dynamic label-free LC-MS/MS profiling identified 97 proteins, which are influenced by environmental acidification. Among these, 33 (34%) of the identified proteins were predicted to be extracellular proteins. Interestingly, classical secretory proteins comprise approximately 90% of protein abundance of the secretome in acidic condition at the stationary phase. One acid-induced secreted protein, HtpA, was selected to investigate its role in invasive infection. The mouse infected by the htpA deficient mutant showed lower virulence and smaller lesion area than the wild-type strain. The mutant strain was more efficiently cleared at infected skin than the wild-type strain. Besides, the relative phagocytosis resistance is lower in the mutant strain than in the wild-type strain. These data indicate that a novel acid-induced virulence factor, HtpA, which improves anti-phagocytosis ability for causing necrotizing fasciitis. Our investigation provides vital information for documenting the broad influences and mechanisms underlying the invasive behavior of S. pyogenes in an acidified environment.

BIOLOGICAL SIGNIFICANCE

The acidified infected environment may facilitate S. pyogenes invasion from the mucosa to the deeper subepithelial tissue. The acid stimuli have been considered to affect the complex regulatory network of S. pyogenes for causing severe infections. Many of secreted virulence factors influenced by acidified environment may also play a crucial role in pathogenesis of invasive disease. To investigate temporal secretome changes under acidic environment, a comparative secretomics approach using label-free LC-MS/MS was undertaken to analyze the secretome in acidic and neutral conditions. The dynamic label-free LC-MS/MS profiling and secretome prediction were used in this study for mining acid-influenced secreted proteins. We identified 33 acid-influenced secreted proteins in this study. Among these proteins, a novel acid-induced virulence factor, HtpA, was demonstrated to improve anti-phagocytosis ability for causing necrotizing fasciitis. In addition, our study demonstrates the first evidence that acidic stimuli and growth-phase cues are crucial for classical protein secretion in S. pyogenes.

摘要

未标记

化脓性链球菌可引发多种疾病。在感染过程中,细菌必须适应不利环境,如酸性环境。酸性刺激可能会促使化脓性链球菌侵入更深层组织。然而,这种酸性刺激如何使化脓性链球菌调控其分泌组以促进入侵尚不清楚。基于无标记的动态液相色谱 - 串联质谱分析鉴定出97种受环境酸化影响的蛋白质。其中,33种(34%)鉴定出的蛋白质预计为细胞外蛋白。有趣的是,在稳定期酸性条件下,经典分泌蛋白约占分泌组蛋白质丰度的90%。选择一种酸诱导分泌蛋白HtpA来研究其在侵袭性感染中的作用。感染htpA缺陷突变体的小鼠比野生型菌株表现出更低的毒力和更小的病变面积。突变菌株在感染皮肤处比野生型菌株更易被清除。此外,突变菌株的相对抗吞噬能力低于野生型菌株。这些数据表明,一种新的酸诱导毒力因子HtpA可提高抗吞噬能力,从而导致坏死性筋膜炎。我们的研究为记录化脓性链球菌在酸化环境中侵袭行为的广泛影响和机制提供了重要信息。

生物学意义

酸化的感染环境可能有助于化脓性链球菌从黏膜侵入更深层的上皮下组织。酸性刺激被认为会影响化脓性链球菌导致严重感染的复杂调控网络。许多受酸化环境影响的分泌毒力因子可能在侵袭性疾病的发病机制中也起关键作用。为了研究酸性环境下分泌组的时间变化,采用基于无标记液相色谱 - 串联质谱的比较蛋白质组学方法分析酸性和中性条件下的分泌组。本研究使用基于无标记的动态液相色谱 - 串联质谱分析和分泌组预测来挖掘受酸影响的分泌蛋白。我们在本研究中鉴定出33种受酸影响的分泌蛋白。在这些蛋白质中,一种新的酸诱导毒力因子HtpA被证明可提高抗吞噬能力,从而导致坏死性筋膜炎。此外,我们的研究首次证明酸性刺激和生长阶段线索对化脓性链球菌中的经典蛋白质分泌至关重要。

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