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Updated: Jun 12, 2026

Isolation of Primary Patient-specific Aortic Smooth Muscle Cells and Semiquantitative Real-time Contraction Measurements In Vitro
Published on: February 15, 2022
ALKBH5 as a therapeutic target for hypertension: Inhibiting vascular smooth muscle cell phenotypic switch via the
Liying Luo1, Lei Wang2, Dan Ma1
1Department of Cardiology, The First Affiliated Hospital of Harbin Medical University, Harbin, China.
Insights
ALKBH5 knockdown in vascular smooth muscle cells (VSMCs) lowers blood pressure and reduces vascular remodeling in hypertension. This occurs via the TEAD3/PDZK1 pathway, suggesting ALKBH5 as a therapeutic target.
Area of Science:
- Cardiovascular Biology
- Molecular Medicine
- Epigenetics
Background:
- Hypertension is characterized by vascular remodeling.
- ALKBH5, an m6A demethylase, plays a role in cardiovascular diseases.
- ALKBH5 is upregulated in hypertensive rat aortas, specifically in vascular smooth muscle cells (VSMCs).
Purpose of the Study:
- To investigate the role of ALKBH5 in hypertension-induced vascular remodeling.
- To define the functional mechanism of ALKBH5 in VSMCs during hypertension.
- To explore ALKBH5 as a potential therapeutic target for hypertension.
Main Methods:
- Generated a VSMC-specific Alkbh5-knockdown AAV9 vector for in vivo studies in spontaneously hypertensive rats (SHRs).
- Administered vector via tail-vein injection to SHRs.
- Conducted in vitro studies using primary aortic VSMCs from SHRs, Wistar-Kyoto rats, and human aortic smooth muscle cells with adenoviral knockdown of Alkbh5.
Main Results:
- ALKBH5 knockdown significantly reduced arterial pressure and ameliorated cardiac and vascular remodeling in SHRs.
- In vitro, ALKBH5 knockdown suppressed VSMC proliferation and phenotypic switching.
- Mechanistically, ALKBH5 knockdown stabilized TEAD3 mRNA, which promoted PDZK1 transcription, and PDZK1 knockdown reversed the inhibitory effects of ALKBH5 knockdown on VSMC proliferation.
Conclusions:
- ALKBH5 knockdown alleviates hypertension-induced vascular remodeling by inhibiting VSMC phenotypic switching via the TEAD3/PDZK1 axis.
- ALKBH5 emerges as a potential therapeutic target for managing hypertension and its associated vascular complications.
Abstract:
Hypertension is a chronic disease accompanied by vascular remodeling. As an m6A demethylase, ALKBH5 is implicated in cardiovascular diseases. Herein, we demonstrated that ALKBH5 expression was upregulated in the aortic tissues of spontaneously hypertensive rats (SHR), with predominant localization in vascular smooth muscle cells (VSMCs). To define ALKBH5 function, we generated an SM22α-driven, VSMC-specific Alkbh5-knockdown AAV9 vector and administered a single tail-vein injection (11 × 10¹² v.g./rat) to 4-week-old male SHRs. Alkbh5 knockdown markedly lowered arterial pressure in SHRs, ameliorated left ventricular remodeling, attenuated aortic media thickening and extracellular matrix deposition, and suppressed the contractile-to-synthetic/proliferative phenotypic switch of VSMCs. Primary thoracic aortic VSMCs were isolated from 16-week-old SHRs and Wistar-Kyoto (WKY) rats, with Alkbh5 knockdown achieved via adenoviral transduction. Separately, primary human aortic smooth muscle cells were pretreated with 1 μM angiotensin II for 24 h prior to adenoviral infection. In vitro assays further verified that ALKBH5 knockdown suppressed proliferation and the contractile-to-synthetic/proliferative phenotypic switch in VSMCs in hypertensive context. Subsequent mechanistic studies revealed that ALKBH5 knockdown enhanced the stability of TEAD3 mRNA by increasing its m6A modification; the upregulated TEAD3 could directly bind to the PDZK1 promoter and promote its transcription. Moreover, PDZK1 knockdown reversed the inhibitory effect of ALKBH5 knockdown on the abnormal proliferation of VSMCs. In conclusion, ALKBH5 knockdown inhibits the abnormal phenotypic switch of VSMCs through the TEAD3/PDZK1 axis, thereby alleviating vascular remodeling caused by hypertension. These findings suggest that ALKBH5 may serve as a potential therapeutic target for hypertension.
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