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Rapamycin inhibits hydrogen peroxide-induced loss of vascular contractility
Ge Gao1, Jing-Jing Li, Yuenan Li
1Department of Biochemistry and Molecular Biology, Faculty of Medicine, Univ. of Calgary, Calgary, Alberta, Canada.
Abstract:
Rapamycin, an inhibitor of the mammalian target of rapamycin (mTOR) pathway, has been shown to extend the life span of mice, and oxidative stress plays critical roles in vascular aging involving loss of compliance of arteries. We examined, therefore, whether rapamycin has protective effects on the inhibition of vascular contractility by hydrogen peroxide (H₂O₂). Prolonged (3 h) exposure to H₂O₂ induced complete loss of contraction of mouse aortic rings and mesenteric (resistance) arteries to either KCl or phenylephrine, which was attenuated by pretreatment with rapamycin. H₂O₂-induced loss of contractility was unaffected by treatment with actinomycin D or cycloheximide, inhibitors of gene transcription and protein synthesis, respectively. Western blot analysis showed that there was no increase in phosphorylation of S6 kinase 1 (S6K) or factor 4E binding protein 1 (4EBP1) in response to H₂O₂ treatment, suggesting involvement of the mTOR complex-2 (mTORC2) rather than mTORC1. H₂O₂ treatment inhibited phosphorylation of the 20-kDa regulatory light chains of myosin (LC₂₀), which was partially blocked by rapamycin treatment. Interestingly, the calcineurin inhibitors cyclosporine A and FK506 were found to mimic the rapamycin effect, and rapamycin inhibited calcineurin activation induced by H₂O₂. We conclude that rapamycin inhibits H₂O₂-induced loss of vascular contractility, likely through an mTORC2-calcineurin pathway.
Insights
Rapamycin protects against hydrogen peroxide-induced vascular dysfunction by inhibiting the mTORC2-calcineurin pathway. This finding offers potential therapeutic strategies for vascular aging and related conditions.
Area of Science:
- Vascular Biology
- Pharmacology
- Aging Research
Background:
- Oxidative stress is implicated in vascular aging and arterial stiffening.
- Hydrogen peroxide (H₂O₂) induces vascular contractility loss, a key feature of aging arteries.
Purpose of the Study:
- To investigate the protective effects of rapamycin against H₂O₂-induced inhibition of vascular contractility.
- To elucidate the molecular mechanisms underlying rapamycin's protective action.
Main Methods:
- Mouse aortic rings and mesenteric arteries were exposed to H₂O₂ with or without rapamycin pretreatment.
- Contractile responses to KCl and phenylephrine were measured.
- Western blot analysis assessed signaling pathway activation (mTORC1/mTORC2, LC₂₀ phosphorylation).
- Calcineurin activity was evaluated.
Main Results:
- Rapamycin pretreatment attenuated H₂O₂-induced loss of vascular contractility.
- H₂O₂-induced dysfunction was independent of gene transcription and protein synthesis.
- Rapamycin's effect involved the mTOR complex-2 (mTORC2) pathway, not mTORC1, and inhibited calcineurin activation.
- Rapamycin partially blocked H₂O₂-induced inhibition of myosin light chain (LC₂₀) phosphorylation.
Conclusions:
- Rapamycin protects vascular smooth muscle from oxidative stress-induced contractility loss.
- The protective mechanism involves the mTORC2-calcineurin signaling axis.
- These findings suggest rapamycin as a potential therapeutic agent for vascular aging.
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