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Updated: Nov 23, 2025

Calcification of Vascular Smooth Muscle Cells and Imaging of Aortic Calcification and Inflammation
Published on: May 31, 2016
ERK1/2 inhibition reduces vascular calcification by activating miR-126-3p-DKK1/LRP6 pathway
Peng Zeng1, Jie Yang1, Lipei Liu1
1College of Life Sciences, State Key Laboratory of Medicinal Chemical Biology, Key Laboratory of Bioactive Materials of Ministry of Education, Nankai University, Tianjin, China.
Abstract:
Rationale: Vascular microcalcification increases the risk of rupture of vulnerable atherosclerotic lesions. Inhibition of ERK1/2 reduces atherosclerosis in animal models while its role in vascular calcification and the underlying mechanisms remains incompletely understood. Methods: Levels of activated ERK1/2, DKK1, LRP6 and BMP2 in human calcific aortic valves were determined. ApoE deficient mice received ERK1/2 inhibitor (U0126) treatment, followed by determination of atherosclerosis, calcification and miR-126-3p production. C57BL/6J mice were used to determine the effect of U0126 on Vitamin D3 (VD3)-induced medial arterial calcification. HUVECs, HAECs and HASMCs were used to determine the effects of ERK1/2 inhibitor or siRNA on SMC calcification and the involved mechanisms. Results: We observed the calcification in human aortic valves was positively correlated to ERK1/2 activity. At cellular and animal levels, U0126 reduced intimal calcification in atherosclerotic lesions of high-fat diet-fed apoE deficient mice, medial arterial calcification in VD3-treated C57BL/6J mice, and calcification in cultured SMCs and arterial rings. The reduction of calcification was attributed to ERK1/2 inhibition-reduced expression of ALP, BMP2 and RUNX2 by activating DKK1 and LRP6 expression, and consequently inactivating both canonical and non-canonical Wnt signaling pathways in SMCs. Furthermore, we determined ERK1/2 inhibition activated miR-126-3p production by facilitating its maturation through activation of AMPKα-mediated p53 phosphorylation, and the activated miR-126-3p from ECs and SMCs played a key role in anti-vascular calcification actions of ERK1/2 inhibition. Conclusions: Our study demonstrates that activation of miR-126-3p production in ECs/SMCs and interactions between ECs and SMCs play an important role in reduction of vascular calcification by ERK1/2 inhibition.
Insights
Inhibiting ERK1/2 reduces vascular calcification by activating miR-126-3p and modulating Wnt signaling pathways. This finding offers new therapeutic targets for preventing arterial calcification and atherosclerosis.
Area of Science:
- Cardiovascular Biology
- Molecular Medicine
- Vascular Biology
Background:
- Vascular microcalcification exacerbates atherosclerotic lesion vulnerability and rupture risk.
- The precise role and mechanisms of ERK1/2 inhibition in vascular calcification remain largely unelucidated.
Purpose of the Study:
- To investigate the role of ERK1/2 signaling in vascular calcification.
- To elucidate the underlying molecular mechanisms, including Wnt signaling and microRNA involvement.
Main Methods:
- Assessed ERK1/2 activity, DKK1, LRP6, and BMP2 in human aortic valves.
- Utilized ApoE-deficient and C57BL/6J mouse models with ERK1/2 inhibitor (U0126) treatment.
- Employed human vascular cells (HUVECs, HAECs, HASMCs) and arterial rings for in vitro studies.
Main Results:
- ERK1/2 activity positively correlated with calcification in human aortic valves.
- U0126 treatment reduced vascular calcification in both atherosclerotic and medial arterial calcification models.
- ERK1/2 inhibition decreased ALP, BMP2, and RUNX2 expression by activating DKK1/LRP6, thus inhibiting Wnt signaling.
- ERK1/2 inhibition promoted miR-126-3p maturation via AMPKα-mediated p53 phosphorylation, contributing to anti-calcification effects.
Conclusions:
- ERK1/2 inhibition effectively reduces vascular calcification through multiple mechanisms.
- Activation of miR-126-3p and modulation of EC-SMC interactions are key to ERK1/2 inhibition's anti-calcification effects.
- Targeting ERK1/2 signaling presents a promising therapeutic strategy for vascular calcification.
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