Video Experimental Relacionado
Updated: May 2, 2026

Ultrasound Imaging of the Thoracic and Abdominal Aorta in Mice to Determine Aneurysm Dimensions
Published on: March 8, 2019
Deficiencia de Tgfbr2 promueve la disfunción mitocondrial de las células musculares lisas vasculares en aneurismas y
Zhenqing Teng1, Qi Wang1, Yang Zhang2
1Department of Cardiology, First Affiliated Hospital of Xinjiang Medical University, Urumqi, China.
Abstract:
Mitochondrial dysregulation promotes vascular destabilization through modulation of the phenotypic plasticity of vascular smooth muscle cells (VSMCs) in thoracic aortic aneurysms and dissections (TAADs). Canonical transforming growth factor-β (TGF-β) signaling, another pivotal pathway in TAADs, also controls VSMC homeostasis, yet the mechanistic interplay between these two axes is unclear. We aimed to determine whether, and how, dysregulated TGF-β signaling directly precipitates mitochondrial injury that drives TAADs progression. Herein, we systematically characterized the regulatory nexus between TGF-β signaling and mitochondrial function during TAADs progression. Single-cell transcriptomic profiling revealed significant correlation between mitochondrial dysfunction and TGF-β pathway dysregulation in TAADs specimens. Using conditional Tgfbr2 knockout mice with VSMC-specific targeting, we provide compelling evidence that dysregulated TGF-β signaling mediates mitochondrial impairment through intricate molecular crosstalk. Bulk RNA sequencing and untargeted metabolomics established a definitive causal relationship between mitochondrial dysfunction and aortic degeneration severity in VSMC-specific Tgfbr2-deficient mice. Pseudo-temporal trajectory analysis identified mitochondrial respiratory complex IV as a critical downstream effector of TGF-β-mediated mitochondrial regulation. Western blot analyses demonstrated that VSMC-specific Tgfbr2 ablation significantly diminished the expression of complex IV regulatory proteins, exhibiting linear correlation with vascular injury severity. Our findings establish a paradigmatic shift in TAADs pathophysiology from unidirectional mechanisms toward integrated multi-pathway networks, providing a robust theoretical framework for developing synergistic therapeutic interventions targeting the mitochondrial-TGF-β regulatory axis.
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