Myf5 Progenitors Define the Lineage Identity of Somitic Vascular Smooth Muscle Cells

Vascular smooth muscle cell (VSMC) heterogeneity drives region-specific aortic pathologies, yet the roles of somite-derived lineages remain unclear. Utilizing Myf5 and MyoD lineage tracing alongside a smooth muscle-specific Myf5 conditional knockout model, we show that Myf5-derived cells selectively populate the thoracic aortic media, whereas the MyoD lineage completely spares large arteries. Early embryonic Myf5 deletion suppressed embryonic VSMC proliferation and downregulated α-SMA, reduced the synthesis of elastic, establishing its necessity in aortic morphogenesis. Upon in vitro ox-LDL challenge and calcification induction, the non-Myf5 lineage primarily drives excessive proliferation and osteogenic transdifferentiation, whereas Myf5 lineage VSMCs exhibit remarkable phenotypic stability and resistance to PDGF-BB-induced dedifferentiation compared to their non-Myf5 counterparts. Collectively, our findings demonstrate a strict lineage divergence between Myf5 and MyoD, suggesting that Myf5 lineage cells play an important role in maintaining aortic integrity, and uncover a lineage-imprinted plasticity that explains regional vascular heterogeneity.

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Publication Details

Journal
International Journal of Molecular Sciences
Published
2026-09-25
DOI
https://doi.org/10.3390/ijms27198594
Primary Topic
Connective tissue disorders research
Type
article
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article

Myf5 Progenitors Define the Lineage Identity of Somitic Vascular Smooth Muscle Cells

Xifeng Chang, Xingrong Zhai, Lei Fu, Hongjin Chen et al.
International Journal of Molecular Sciences
Connective tissue disorders research
article

Myf5 Progenitors Define the Lineage Identity of Somitic Vascular Smooth Muscle Cells

Xifeng Chang, Xingrong Zhai, Lei Fu, Hongjin Chen, Cheng-Chao Ruan, Kun Chen, Donghua Hu, Xi Hu, Kailei Shi, Xinkai Qu
article en

Abstract

Vascular smooth muscle cell (VSMC) heterogeneity drives region-specific aortic pathologies, yet the roles of somite-derived lineages remain unclear. Utilizing Myf5 and MyoD lineage tracing alongside a smooth muscle-specific Myf5 conditional knockout model, we show that Myf5-derived cells selectively populate the thoracic aortic media, whereas the MyoD lineage completely spares large arteries. Early embryonic Myf5 deletion suppressed embryonic VSMC proliferation and downregulated α-SMA, reduced the synthesis of elastic, establishing its necessity in aortic morphogenesis. Upon in vitro ox-LDL challenge and calcification induction, the non-Myf5 lineage primarily drives excessive proliferation and osteogenic transdifferentiation, whereas Myf5 lineage VSMCs exhibit remarkable phenotypic stability and resistance to PDGF-BB-induced dedifferentiation compared to their non-Myf5 counterparts. Collectively, our findings demonstrate a strict lineage divergence between Myf5 and MyoD, suggesting that Myf5 lineage cells play an important role in maintaining aortic integrity, and uncover a lineage-imprinted plasticity that explains regional vascular heterogeneity.

International Journal of Molecular SciencesVol. 27(19)
Shanghai Medical College of Fudan University (CN), Fudan University (CN), Huadong Hospital (CN)
Openalex Percentile: Top 12%
Connective tissue disorders research
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Myf5 Progenitors Define the Lineage Identity of Somitic Vascular Smooth Muscle Cells — Xifeng Chang, Xingrong Zhai, et al. · International Journal of Molecular Sciences (2026) | TGRS Research Map | TGRS