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miR-485-3p targets SIRT1 in vascular smooth muscle cells mediating the occurrence of aortic dissection
Yuling Xie1,2, Linfeng Xie1,2, Zhihuang Qiu1,2
1Department of Cardiovascular Surgery, Fujian Medical University Union Hospital, Fuzhou, Fujian, P. R. China.
Abstract:
Studies have demonstrated a close correlation between MicroRNA and the occurrence of aortic dissection (AD). However, the molecular mechanisms underlying this relationship have not been fully elucidated and further exploration is still required. In this study, we found that miR-485-3p was significantly upregulated in human aortic dissection tissues. Meanwhile, we constructed in vitro AD models in HAVSMCs, HAECs and HAFs and found that the expression of miR-485-3p was increased only in HAVSMCs. Overexpression or knockdown of miR-485-3p in HAVSMCs could regulate the expression of inflammatory cytokines IL1β, IL6, TNF-α, and NLRP3, as well as the expression of apoptosis-related proteins BAX/BCL2 and Cleaved caspase3/Caspase3. In the in vivo AD model, we have observed that miR-485-3p regulates vascular inflammation and apoptosis, thereby participating in the modulation of AD development in mice. Based on target gene prediction, we have validated that SIRT1 is a downstream target gene of miR-485-3p. Furthermore, by administering SIRT1 agonists and inhibitors to mice, we observed that the activation of SIRT1 alleviates vascular inflammation and apoptosis, subsequently reducing the incidence of AD. Additionally, functional reversal experiments revealed that overexpression of SIRT1 in HAVSMCs could reverse the cell inflammation and apoptosis mediated by miR-485-3p. Therefore, our research suggests that miR-485-3p can aggravate inflammation and apoptosis in vascular smooth muscle cells by suppressing the expression of SIRT1, thereby promoting the progression of aortic dissection.
Insights
MicroRNA-485-3p promotes aortic dissection by increasing vascular smooth muscle cell inflammation and apoptosis. Targeting SIRT1 may offer a therapeutic strategy for aortic dissection.
Area of Science:
- Cardiovascular Biology
- Molecular Medicine
- Genetics
Background:
- Aortic dissection (AD) is a life-threatening condition with complex molecular underpinnings.
- MicroRNAs (miRNAs) are implicated in AD pathogenesis, but their specific roles and mechanisms remain incompletely understood.
Purpose of the Study:
- To elucidate the role of miR-485-3p in the molecular mechanisms of aortic dissection.
- To investigate the potential of targeting the miR-485-3p/SIRT1 axis for AD treatment.
Main Methods:
- Analysis of miR-485-3p expression in human AD tissues and in vitro AD models.
- Manipulation of miR-485-3p and SIRT1 levels in human vascular smooth muscle cells (HAVSMCs) and mouse models.
- Assessment of inflammatory cytokine and apoptosis-related protein expression.
- In vivo studies using SIRT1 agonists and inhibitors.
Main Results:
- miR-485-3p was significantly upregulated in AD tissues and HAVSMCs.
- miR-485-3p modulated inflammatory cytokines (IL1β, IL6, TNF-α, NLRP3) and apoptosis markers (BAX/BCL2, Cleaved caspase3/Caspase3) in HAVSMCs.
- miR-485-3p exacerbated vascular inflammation and apoptosis in vivo, promoting AD.
- SIRT1 was identified as a direct target of miR-485-3p.
- SIRT1 activation alleviated vascular inflammation and apoptosis, reducing AD incidence.
Conclusions:
- miR-485-3p promotes aortic dissection by upregulating inflammation and apoptosis in vascular smooth muscle cells via suppression of SIRT1.
- The miR-485-3p/SIRT1 pathway represents a potential therapeutic target for managing aortic dissection.
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