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Published on: March 21, 2021
Hyperoside relieves particulate matter-induced lung injury by inhibiting AMPK/mTOR-mediated autophagy deregulation
Yun Gao1, Xiaoye Fan1, Wenjing Gu2
1Department of Respiratory Medicine, The First Hospital of Jilin University, Changchun, China.
Abstract:
Autophagy-mediated cell death plays a critical role in the pathogenesis of PMs-induced lung injury. Hyperoside (Hyp), a flavonoid glycosides, is known to exert protective effects on many diseases by inhibiting autophagic activity. The current study aimed to explore the protective effect and mechanism of Hyp against PMs-induced lung injury in PM2.5 challenged Beas-2b cells in vitro and BALB/C mice in vivo. In vitro, we found that the organic solvent-extractable fraction of SRM1649b (O-PMs) caused more severe cytotoxicity in Beas-2b cells than the water solvent-extractable fraction of SRM1649b (W-PMs). O-PMs treatment dose-dependently upregulated the expression of autophagy markers (beclin-1, p62, atg3 and LC3II) and apoptotic proteins. This cytotoxicity of O-PMs was attenuated by Hyp pretreatment in parallel with downregulation of the expression of autophagy markers, apoptotic proteins, and p-AMPK and upregulation of p-mTOR expression. Notably, the therapeutic effect of Hyp was attenuated by pretreated with AICAR (an AMPK inducer), but enhanced by CC and 3-MA treatment. In vivo, Hyp reduced pathological lung injury and decreased the levels of PMs-induced inflammatory cytokines (TNF-α and IL-6), and the number of total cells in the BALF by inhibiting AMPK/mTOR signaling. Furthermore, cotreatment with AICAR (500 mg/kg) reduced but did not abrogate the pulmonary protective effect of Hyp. These findings indicate that Hyp protects against PMs-induced lung injury by suppressing autophagy deregulation and apoptosis through regulation of the AMPK/mTOR pathway.
Insights
Hyperoside protects against particulate matter-induced lung injury by inhibiting autophagy and apoptosis. This natural compound regulates the AMPK/mTOR pathway, offering a potential therapeutic strategy for lung damage.
Area of Science:
- Environmental Health
- Cell Biology
- Pharmacology
Background:
- Particulate matter (PM) exposure causes lung injury through autophagy-mediated cell death.
- Hyperoside (Hyp), a flavonoid, is known to inhibit autophagic activity and has protective effects in various diseases.
Purpose of the Study:
- To investigate the protective effects and underlying mechanisms of Hyperoside against PM-induced lung injury.
- To explore the role of the AMPK/mTOR pathway in Hyperoside's therapeutic action.
Main Methods:
- In vitro studies using Beas-2b cells challenged with organic solvent-extractable PM (O-PMs).
- In vivo studies using BALB/C mice exposed to PM.
- Assessed autophagy markers, apoptotic proteins, and AMPK/mTOR signaling pathway activation.
Main Results:
- O-PMs induced significant cytotoxicity, upregulated autophagy markers, and apoptotic proteins in Beas-2b cells.
- Hyperoside pretreatment attenuated O-PMs-induced cytotoxicity by downregulating autophagy and apoptosis markers, and modulating the p-AMPK/p-mTOR pathway.
- In vivo, Hyperoside reduced lung injury, inflammatory cytokines (TNF-α, IL-6), and BALF cell counts by inhibiting the AMPK/mTOR pathway.
Conclusions:
- Hyperoside demonstrates significant protective effects against PM-induced lung injury.
- The mechanism involves suppressing autophagy deregulation and apoptosis via the AMPK/mTOR signaling pathway.
- Hyperoside represents a potential therapeutic agent for particulate matter-related lung diseases.
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