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TCF7L2 promotes abdominal aortic aneurysm through smooth muscle cell–mediated extracellular matrix remodeling
Yongjie Deng, Yaozhong Liu, Yang Zhao, Hongyu Liu, Guizhen Zhao, Zhenguo Wang, Xu Zhang, Chao Xue, Wei Huang, Tianqing Zhu, Haocheng Lu, Yanhong Guo, Lin Chang, Ida Surakka, Y. Eugene Chen, Jifeng Zhang
Yongjie Deng, Yaozhong Liu, Yang Zhao, Hongyu Liu, Guizhen Zhao, Zhenguo Wang, Xu Zhang, Chao Xue, Wei Huang, Tianqing Zhu, Haocheng Lu, Yanhong Guo, Lin Chang, Ida Surakka, Y. Eugene Chen, Jifeng Zhang
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Research Article Cardiology Cell biology Vascular biology

TCF7L2 promotes abdominal aortic aneurysm through smooth muscle cell–mediated extracellular matrix remodeling

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Abstract

Abdominal aortic aneurysm (AAA) lacks effective pharmacological therapies. Here, we investigate transcription factor 7–like 2 (TCF7L2), a genetic locus associated with both thoracic and abdominal aortic aneurysms, to elucidate its role in AAA pathogenesis. Integrating summary data–based Mendelian randomization (SMR) with single-cell RNA sequencing of human and mouse aortae, we identify TCF7L2 as a gene enriched in vascular smooth muscle cells (VSMCs) and causally linked to AAA development. Smooth muscle cell–specific TCF7L2 knockout significantly attenuates AAA formation across 3 distinct murine models (AAA induced by angiotensin II infusion, by β-aminopropionitrile/angiotensin II coadministration, and by elastase), independent of systemic blood pressure or lipid levels. Mechanistic studies reveal that TCF7L2 directly upregulates MMP14 and downregulates TIMP3 expression in vitro and in vivo, driving MMP2-mediated extracellular matrix (ECM) degradation. Concurrently, TCF7L2 represses integrin β1 (ITGB1) expression, reducing VSMC adhesion to the ECM. Collectively, these findings identify TCF7L2 as a key driver of pathological vascular remodeling in AAA, suggesting that targeting TCF7L2 may offer a novel therapeutic strategy for limiting AAA progression.

Authors

Yongjie Deng, Yaozhong Liu, Yang Zhao, Hongyu Liu, Guizhen Zhao, Zhenguo Wang, Xu Zhang, Chao Xue, Wei Huang, Tianqing Zhu, Haocheng Lu, Yanhong Guo, Lin Chang, Ida Surakka, Y. Eugene Chen, Jifeng Zhang

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Figure 3

Transcriptomic and epigenetic profiling reveals TCF7L2 as a regulator of ECM turnover and VSMC-ECM adhesion.

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Transcriptomic and epigenetic profiling reveals TCF7L2 as a regulator of...
(A–F) HASMCs were transfected with 20 nM siTCF7L2 or siControl for 48 hours, followed by serum starvation in Opti-MEM for 24 hours before RNA isolation for qPCR (A) and RNA-seq (B–F). (B) Principal component analysis (PCA). (C) Volcano plot showing differentially expressed genes (DEGs); red and blue dots represent significantly upregulated and downregulated genes, respectively. Padj, adjusted P value. (D–F) Pathway enrichment analysis of DEGs. (D) Gene Ontology biological processes (GO_BP). (E) Reactome pathways. (F) KEGG pathways. (G–I) For ChIP-seq analysis, HASMCs at about 80% confluence were serum-starved for 24 hours before chromatin isolation. (G) Genomic distribution of TCF7L2 ChIP-seq peaks. (H) Average TCF7L2 ChIP-seq signal distribution around TSS. (I) GO enrichment analysis of TCF7L2-bound genes. Data are presented as mean ± SEM. P values were calculated using Student’s t test (A).

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