RGS2 attenuates alveolar macrophage damage by inhibiting the Gq/11-Ca2+ pathway during cowshed PM2.5 exposure, and aberrant RGS2 expression is associated with TLR2/4 activation

IF 3.3 3区 医学 Q2 PHARMACOLOGY & PHARMACY Toxicology and applied pharmacology Pub Date : 2024-05-20 DOI:10.1016/j.taap.2024.116976
Zhenhua Ma , Xiaohui Du , Yize Sun , Ke Sun , Xiqing Zhang , Lixia Wang , Yanbin Zhu , Wangdui Basang , Yunhang Gao
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Abstract

Staff and animals in livestock buildings are constantly exposed to fine particulate matter (PM2.5), which affects their respiratory health. However, its exact pathogenic mechanism remains unclear. Regulator of G-protein signaling 2 (RGS2) has been reported to play a regulatory role in pneumonia. The aim of this study was to explore the therapeutic potential of RGS2 in cowshed PM2.5-induced respiratory damage. PM2.5 was collected from a cattle farm, and the alveolar macrophages (NR8383) of the model animal rat were stimulated with different treatment conditions of cowshed PM2.5. The RGS2 overexpression vector was constructed and transfected it into cells. Compared with the control group, cowshed PM2.5 significantly induced a decrease in cell viability and increased the levels of apoptosis and proinflammatory factor expression. Overexpression of RGS2 ameliorated the above-mentioned cellular changes induced by cowshed PM2.5. In addition, PM2.5 has significantly induced intracellular Ca2+ dysregulation. Affinity inhibition of Gq/11 by RGS2 attenuated the cytosolic calcium signaling pathway mediated by PLCβ/IP3R. To further investigate the causes and mechanisms of action of differential RGS2 expression, the possible effects of oxidative stress and TLR2/4 activation were investigated. The results have shown that RGS2 expression was not only regulated by oxidative stress-induced nitric oxide during cowshed PM2.5 cells stimulation but the activation of TLR2/4 had also an important inhibitory effect on its protein expression. The present study demonstrates the intracellular Ca2+ regulatory role of RGS2 during cellular injury, which could be a potential target for the prevention and treatment of PM2.5-induced respiratory injury.

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在牛舍 PM2.5 暴露过程中,RGS2 通过抑制 Gq/11-Ca2+ 通路减轻肺泡巨噬细胞损伤,RGS2 的异常表达与 TLR2/4 激活有关。
畜牧业建筑中的工作人员和动物经常暴露在细颗粒物(PM2.5)中,这影响了他们的呼吸系统健康。然而,其确切的致病机制仍不清楚。据报道,G 蛋白信号调节器 2(RGS2)在肺炎中发挥调节作用。本研究旨在探索 RGS2 在牛舍 PM2.5 诱导的呼吸系统损伤中的治疗潜力。从养牛场收集 PM2.5,用不同处理条件的牛舍 PM2.5 刺激模型动物大鼠的肺泡巨噬细胞(NR8383)。构建 RGS2 过表达载体并转染细胞。与对照组相比,牛舍PM2.5明显诱导细胞活力下降,细胞凋亡和促炎因子表达水平升高。过表达 RGS2 可改善牛舍 PM2.5 诱导的上述细胞变化。此外,PM2.5 还显著诱导细胞内 Ca2+ 失调。RGS2 对 Gq/11 的亲和抑制减弱了 PLCβ/IP3R 介导的细胞膜钙信号通路。为了进一步研究 RGS2 不同表达的原因和作用机制,研究人员还调查了氧化应激和 TLR2/4 激活可能产生的影响。结果表明,在牛舍 PM2.5 细胞刺激过程中,RGS2 的表达不仅受氧化应激诱导的一氧化氮的调控,而且 TLR2/4 的激活对其蛋白表达也有重要的抑制作用。本研究证明了RGS2在细胞损伤过程中的细胞内Ca2+调节作用,这可能是预防和治疗PM2.5诱导的呼吸道损伤的潜在靶点。
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来源期刊
CiteScore
6.80
自引率
2.60%
发文量
309
审稿时长
32 days
期刊介绍: Toxicology and Applied Pharmacology publishes original scientific research of relevance to animals or humans pertaining to the action of chemicals, drugs, or chemically-defined natural products. Regular articles address mechanistic approaches to physiological, pharmacologic, biochemical, cellular, or molecular understanding of toxicologic/pathologic lesions and to methods used to describe these responses. Safety Science articles address outstanding state-of-the-art preclinical and human translational characterization of drug and chemical safety employing cutting-edge science. Highly significant Regulatory Safety Science articles will also be considered in this category. Papers concerned with alternatives to the use of experimental animals are encouraged. Short articles report on high impact studies of broad interest to readers of TAAP that would benefit from rapid publication. These articles should contain no more than a combined total of four figures and tables. Authors should include in their cover letter the justification for consideration of their manuscript as a short article.
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