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Published on: August 4, 2022
Impaired autophagy mediates hyperhomocysteinemia-induced HA-VSMC phenotypic switching
Tingjuan Ni1, Feidan Gao2, Jie Zhang3
1Zhejiang University School of Medicine, Hangzhou, 310000, Zhejiang, China.
Insights
High homocysteine levels impair autophagy in vascular cells, promoting atherosclerosis. The transcription factor KLF4 and rapamycin signaling pathway protect against this damage.
Area of Science:
- Vascular Biology
- Cellular Autophagy
- Atherosclerosis Pathogenesis
Background:
- Hyperhomocysteinemia (HHcy) is a risk factor for atherosclerosis, involving vascular smooth muscle cell (VSMC) changes.
- Autophagy's role in HHcy-induced cardiovascular disease remains unclear.
- Understanding HHcy and VSMC autophagy interaction is crucial for cardiovascular disease mechanisms.
Purpose of the Study:
- To investigate the role of homocysteine in VSMC phenotypic switching and atherosclerosis.
- To elucidate the mechanisms linking HHcy, VSMC autophagy, and the KLF4 signaling pathway.
- To explore rapamycin's effect on HHcy-induced VSMC changes.
Main Methods:
- Studied human aortic (HA)-VSMCs under HHcy conditions.
- Utilized small interfering RNA (siRNA) to knockdown the autophagy gene Atg7.
- Assessed autophagy markers (MAP1LC3B II/MAP1LC3B I), contractile proteins, osteopontin, and KLF4 expression.
- Investigated the m-TOR signaling pathway and rapamycin's effects.
Main Results:
- Impaired autophagy (decreased MAP1LC3B II/MAP1LC3B I) in HHcy-induced HA-VSMCs promoted phenotypic switching.
- Atg7 knockdown exacerbated HA-VSMC phenotypic switching, confirming autophagy's protective role.
- Rapamycin treatment enhanced autophagy and alleviated phenotypic switching.
- HHcy decreased KLF4 expression, which is critical for maintaining autophagy and resisting oxidative stress.
- KLF4 knockdown worsened autophagy defects and phenotypic switching.
- KLF4 regulates HHcy-induced autophagy reduction via the m-TOR pathway.
Conclusions:
- The KLF4-dependent rapamycin signaling pathway is a novel mechanism in HA-VSMC phenotypic switching.
- Defective autophagy in HHcy-induced HA-VSMCs accelerates early atherosclerosis.
- Targeting KLF4 and autophagy may offer therapeutic strategies for HHcy-related cardiovascular disease.
Abstract:
Hyperhomocysteinemia (HHcy) is a highly-related risk factor in vascular smooth muscle cell (VSMC) phenotypic modulation and atherosclerosis. Growing evidence indicated that autophagy is involved in pathological arterial changes. However, the risk mechanisms by which homocysteine and VSMC autophagy interact with cardiovascular disease are poorly understood. This study verified the homocysteine-responsive endoplasmic reticulum protein promotion of VSMC phenotypic switching, and the formation of atherosclerotic plaque in vitro. We found that impaired autophagy, as evidenced by decreased levels of MAP1LC3B II/MAP1LC3B I, has a vital role in HHcy-induced human aortic (HA)-VSMC phenotypic switching, with a decrease in contractile proteins (SM α-actin and calponin) and an increase in osteopontin. Knockdown of the essential autophagy gene Atg7 by small interfering RNA promoted HA-VSMC phenotypic switching, indicating that impaired autophagy induces phenotypic switching in these cells. HHcy co-treatment with rapamycin triggered autophagy, which alleviated HA-VSMC phenotypic switching. Finally, we found that Krüppel-like factor 4 (KLF4), a zinc-finger transcription factor for maintaining genomic stability by resisting oxidative stress and restoring autophagy, is closely involved in this process. HHcy clearly decreased KLF4 expression. KLF4-specific siRNA aggravated defective autophagy and phenotypic switching. Mechanistically, KLF4 regulated the HHcy-induced decrease in HA-VSMC autophagy via the m-TOR signaling pathway. In conclusion, these results demonstrated that the KLF4-dependent rapamycin signaling pathway is a novel mechanism underlying HA-VSMC phenotypic switching and is crucial for HHcy-induced HA-VSMCs with defective autophagy to accelerate early atherosclerosis.
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