Evidence map›Paper›PMID 40377016›Full record

ArticleCardiovascular research2025

Novel roles of Nrf3-Trim5 axis in vascular smooth muscle cell dysfunctions and neointimal hyperplasia.

Qishan Chen, Shasha Sun, Zhenning Shi, Leyu Wang, Yumeng Wang, Ancheng Zheng, Xiaolei Xu, Mei Yang, Kun Sun, Qingzhong Xiao and 1 more

Abstract read
In one paragraph

Article in Cardiovascular research, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 2 papers.

0numbers the graph read from it
0cells of the map it votes in
2citing papers in PubMed
–field-weighted citation impact
1 · What the graph read from it

What it found

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The abstract states no effect estimate the extractor could read, or names no intervention and outcome on the map, so this paper lights no cell and moves no belief. It is still indexed, cited and linked below.

2 · The registry

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Neither the registry nor the abstract names a trial number. If this is a trial report, that itself is worth knowing.

3 · Its place in the literature

Who cites it

2 citing papers in PubMed.

  1. Review
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4 · The record

Corrections and comments

5 · Who and what money

Authors and funding

11 authors.

Qishan ChenDepartment of Cardiology, Institute for Developmental and Regenerative Cardiovascular Medicine, Xinhua Hospital Affiliated to Shanghai Jiaotong University School of Medicine, Shanghai 200092, China.
Shasha SunDepartment of Cardiology, Institute for Developmental and Regenerative Cardiovascular Medicine, Xinhua Hospital Affiliated to Shanghai Jiaotong University School of Medicine, Shanghai 200092, China.
Zhenning ShiDepartment of Cardiology, Institute for Developmental and Regenerative Cardiovascular Medicine, Xinhua Hospital Affiliated to Shanghai Jiaotong University School of Medicine, Shanghai 200092, China.
Leyu WangDepartment of Cardiology, Institute for Developmental and Regenerative Cardiovascular Medicine, Xinhua Hospital Affiliated to Shanghai Jiaotong University School of Medicine, Shanghai 200092, China.
Yumeng WangDepartment of Cardiology, Institute for Developmental and Regenerative Cardiovascular Medicine, Xinhua Hospital Affiliated to Shanghai Jiaotong University School of Medicine, Shanghai 200092, China.
Ancheng ZhengDepartment of Cardiology, Institute for Developmental and Regenerative Cardiovascular Medicine, Xinhua Hospital Affiliated to Shanghai Jiaotong University School of Medicine, Shanghai 200092, China.
Xiaolei XuDepartment of Cardiology, Institute for Developmental and Regenerative Cardiovascular Medicine, Xinhua Hospital Affiliated to Shanghai Jiaotong University School of Medicine, Shanghai 200092, China.
Mei YangDepartment of Cardiology, Institute for Developmental and Regenerative Cardiovascular Medicine, Xinhua Hospital Affiliated to Shanghai Jiaotong University School of Medicine, Shanghai 200092, China.
Kun SunDepartment of Cardiology, Institute for Developmental and Regenerative Cardiovascular Medicine, Xinhua Hospital Affiliated to Shanghai Jiaotong University School of Medicine, Shanghai 200092, China.
Qingzhong XiaoCentre for Clinical Pharmacology and Precision Medicine, William Harvey Research Institute, Faculty of Medicine and Dentistry, William Harvey Research, Queen Mary University of London, William Harvey Heart Centre, Charterhouse Square, London EC1M 6BQ, UK.ORCID 0000-0001-9101-0498
Li ZhangDepartment of Cardiology, Institute for Developmental and Regenerative Cardiovascular Medicine, Xinhua Hospital Affiliated to Shanghai Jiaotong University School of Medicine, Shanghai 200092, China.ORCID 0000-0002-0007-198X

Funding

British Heart Foundation PG/15/11/31279British Heart Foundation PG/15/86/31723British Heart Foundation PG/20/10458British Heart Foundation PG/23/11371National Key R&D Program of China 2022YFA1104200National Natural Sciences Foundation of China 81930010National Natural Sciences Foundation of China 82100503National Natural Sciences Foundation of China 82125005National Natural Sciences Foundation of China 82270430Shanghai Natural Science Foundation 22ZR148000Zhejiang Provincial Natural Science Foundation LR20H020001
6 · The paper itself

Abstract

aimsNeointimal hyperplasia (NIH) characterized by vascular smooth muscle cell (VSMC) dysfunctions plays a critical role in many vascular diseases including atherosclerosis and restenosis, which leads to serious ischaemic complications and has limited therapeutic approaches. Our previous studies confirm a critical role for nuclear factor erythroid 2-related factor 3 (Nrf3) in VSMC differentiation. However, little is known about the functional implications of Nrf3 in NIH. METHODS AND

resultsTranscriptome dataset and human atherosclerotic samples were used to determine Nrf3 expression levels. Global (Nrf3-/-) and VSMC-specific (Nrf3ΔSMC) Nrf3 knockout mice were used to assess the role of Nrf3 in VSMC function and injury-induced NIH. Complementary molecular methods were performed to identify Nrf3 downstream targets and elucidate the regulatory role of Nrf3 in target gene regulation. Porcine carotid stenting model was used to validate the therapeutic effects of Nrf3 inhibition in vascular remodelling. Transcriptomic data and immunostaining analysis showed increased levels of Nrf3, and a positive correlation between Nrf3 and NIH in the human atherosclerotic vessels. Various pathophysiological stimuli induced endoplasmic reticulum stress that enhanced Nrf3 expression via Activating Transcription Factor 4 (ATF4). Nrf3 overexpression promoted both human and mouse VSMC proliferation, migration, and inflammatory response, while opposite effects were observed when Nrf3 was deleted or knockdown. Nrf3-/- and Nrf3ΔSMC mice showed decreased VSMC accumulation and attenuated vascular injury-induced NIH. Mechanistically, tripartite motif-containing 5 (Trim5), a genetic risk locus for coronary artery disease, was identified as a functional downstream target of Nrf3 in VSMCs and in injured arteries. Nrf3 enhanced autophagy in VSMCs and injured arteries by up-regulating Trim5 expression, which subsequently promoted dysfunctions of VSMCs, thereby increasing injury-induced NIH. Importantly, restoring either Nrf3 or Trim5 expression in Nrf3-/- mice rescued the arterial phenotypes observed in Nrf3-/- mice. Critically, the porcine carotid artery restenosis induced by ballooning and stenting was significantly reduced by suppressing Nrf3 expression through perivascular administration of the Nrf3 inhibitors.

conclusionsWe comprehensively demonstrate that Nrf3 is a novel modulator in VSMC dysfunctions and injury-induced NIH. Nrf3 exerts its pathological functions by transcriptional activation of Trim5 gene, which in turn triggers autophagy in VSMCs and injured arteries, promoting arterial remodelling. Inhibiting the Nrf3-Trim5 signal axis ameliorates injury-induced NIH, offering novel therapeutics for treating patients with NIH-related vascular diseases.

Indexed as

Carotid Artery DiseasesCarotid Artery InjuriesMuscle, Smooth, VascularMyocytes, Smooth MuscleNeointimaUbiquitin-Protein LigasesVascular RemodelingAnimalsCell ProliferationCells, CulturedDisease Models, AnimalHumansHyperplasiaMaleMiceMice, Inbred C57BLUbiquitin-Protein LigasesAutophagyCell migrationCell proliferationEndoplasmic reticulum stressNeointimaNeointimal hyperplasiaNuclear factor erythroid 2-related factor 3 (Nrf3)Porcine carotid artery restenosisPost-angioplasty restenosisTripartite motif-containing 5 (Trim5)Vascular smooth muscle cells

Identifiers

PMID40377016
PMCPMC12310284

What Socratic holds

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Registered trials

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Read under generation 80e0d062 · epoch 390. Bibliography from PubMed, PubMed Central and OpenAlex; grants from NIH RePORTER; trial links from ClinicalTrials.gov; estimates, votes and beliefs from the Socratic graph.