溶血磷脂酰胆碱
基因敲除
TLR4型
体内
信号转导
炎症
受体
MAPK/ERK通路
体外
药理学
心肌炎
细胞生物学
化学
收缩性
病毒性心肌炎
机制(生物学)
生物
基因沉默
NF-κB
Toll样受体
促炎细胞因子
免疫学
医学
下调和上调
癌症研究
上游和下游(DNA)
HEK 293细胞
交易激励
细胞信号
功能(生物学)
心功能曲线
作者
Diandian Zhu,Han Gao,Haoyi Zhang,Yaru Zhang,Mengqi Guo,Yuan Wang,Wei Wei,Ming Yang
摘要
Epidemiological studies link fine particulate matter (PM2.5) exposure to aggravated viral myocarditis (VMC), though the mechanisms remain unclear. This study aimed to investigate whether PM2.5 exacerbates the inflammatory response by disrupting lysophosphatidylcholine (LPC) metabolism and its downstream signaling pathways. We established the mouse model combining PM2.5 exposure and CVB3 infection. Cardiac function, inflammation, and signaling molecule alterations were assessed using echocardiography, histological analysis, and molecular techniques. In H9c2 cardiomyocytes, we applied PM2.5, LPC, GPR4 siRNA, and pathway inhibitors (U0126 and GW9662). PM2.5 reduced LPC levels in vivo and in vitro and downregulated its receptor GPR4. It also suppressed the ERK/PPARγ pathway, thereby lifting transcriptional inhibition of Toll-like receptor 4 (TLR4). GPR4 knockdown abolished the activating effects of LPC on ERK/PPARγ and its inhibitory effect on TLR4. Our study also confirmed that ERK and PPARγ function sequentially downstream of GPR4 and upstream of TLR4 within this pathway. The study suggests a novel mechanism by which PM2.5 exacerbates VMC. PM2.5 disrupts LPC metabolism, inhibits the GPR4/ERK/PPARγ pathway, and consequently releases the inhibition on TLR4, thereby increasing cardiac susceptibility to CVB3 and inflammatory injury. This pathway represents a potential therapeutic target for preventing PM2.5-associated myocardial damage.
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