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Low pH Environmental Stress Inhibits LPS and LTA-Stimulated Proinflammatory Cytokine Production in Rat Alveolar Macrophages

机译:低pH环境压力抑制大鼠肺泡巨噬细胞中LPS和LTA刺激的促炎性细胞因子的产生。

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Gastric aspiration increases the risks for developing secondary bacterial pneumonia. Cytokine elaboration through pathogen recognition receptors (PRRs) is an important mechanism in initiating innate immune host response. Effects of low pH stress, a critical component of aspiration pathogenesis, on the PRR pathways were examined, specifically toll-like receptor-2 (TLR2) and TLR4, using isolated rat alveolar macrophages (aMØs). We assessed the ability of aMØs after brief exposure to acidified saline to elaborate proinflammatory cytokines in response to lipopolysaccharide (LPS) and lipoteichoic acid (LTA) stimulation, known ligands of TLR4 and TLR2, respectively. Low pH stress reduced LPS- and LTA-mediated cytokine release (CINC-1, MIP-2, TNF-α, MCP-1, and IFN-β). LPS and LTA increased intracellular Ca2+concentrations while Ca2+chelation by BAPTA decreased LPS- and LTA-mediated cytokine responses. BAPTA blocked the effects of low pH stress on most of LPS-stimulated cytokines but not of LTA-stimulated responses.In vivomouse model demonstrates suppressedE. coliandS. pneumoniaeclearance following acid aspiration. In conclusion, low pH stress inhibits antibacterial cytokine response of aMØs due to impaired TLR2 (MyD88 pathway) and TLR4 signaling (MyD88 and TRIF pathways). The role of Ca2+in low pH stress-induced signaling is complex but appears to be distinct between LPS- and LTA-mediated responses.
机译:胃抽吸增加了继发细菌性肺炎的风险。通过病原体识别受体(PRR)进行细胞因子的修饰是引发先天性免疫宿主反应的重要机制。使用分离的大鼠肺泡巨噬细胞(aMØs),研究了低pH胁迫(抽吸机制的重要组成部分)对PRR途径的影响,特别是toll样受体2(TLR2)和TLR4。我们评估了短暂暴露于酸化盐水后aMØs应对脂多糖(LPS)和脂磷壁酸(LTA)刺激(分别是TLR4和TLR2的已知配体)产生的促炎细胞因子的能力。低pH胁迫降低了LPS和LTA介导的细胞因子释放(CINC-1,MIP-2,TNF-α,MCP-1和IFN-β)。 LPS和LTA增加了细胞内Ca2 +浓度,而BAPTA引起的Ca2 +螯合降低了LPS和LTA介导的细胞因子反应。 BAPTA阻止了低pH应激对大多数LPS刺激的细胞因子的影响,但对LTA刺激的反应没有影响。大肠埃希氏菌。吸酸后清除肺炎。总之,由于TLR2(MyD88途径)和TLR4信号传导(MyD88和TRIF途径)受损,低pH胁迫抑制aMØs的抗菌细胞因子反应。 Ca2 +在低pH胁迫诱导的信号转导中的作用很复杂,但在LPS和LTA介导的反应之间似乎是不同的。

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