Transketolase drives the development of aortic dissection by impairing mitochondrial bioenergetics

Author:

Wang Chaoyun1ORCID,Zhang Li23ORCID,Zhang Qinghua1,Zheng Hui4,Yang Xi25,Cai Weixing1,Zou Qiuying1,Lin Jingjing1,Zhang Lin1,Zhong Lin1,Li Xinyao1,Liao Yuqing1,Liu Qin1,Chen Liangwan25,Li Yumei12ORCID

Affiliation:

1. Fujian Center for Safety Evaluation of New Drug, The School of Pharmacy Fujian Medical University Fuzhou China

2. Department of Cardiovascular Surgery Fujian Medical University Union Hospital Fuzhou China

3. Department of Physiology & Pathophysiology, The School of Basic Medical Sciences Fujian Medical University Fuzhou China

4. Department of Cardiac Surgery The First Affiliated Hospital of Guangzhou Medical University Guangzhou China

5. Key Laboratory of Cardio‐Thoracic Surgery (Fujian Medical University) Fujian Province University Fuzhou China

Abstract

AbstractAimAortic dissection (AD) is a disease with rapid onset but with no effective therapeutic drugs yet. Previous studies have suggested that glucose metabolism plays a critical role in the progression of AD. Transketolase (TKT) is an essential bridge between glycolysis and the pentose phosphate pathway. However, its role in the development of AD has not yet been elucidated. In this study, we aimed to explore the role of TKT in AD.MethodsWe collected AD patients' aortic tissues and used high‐throughput proteome sequencing to analyze the main factors influencing AD development. We generated an AD model using BAPN in combination with angiotensin II (Ang II) and pharmacological inhibitors to reduce TKT expression. The effects of TKT and its downstream mediators on AD were elucidated using human aortic vascular smooth muscle cells (HAVSMCs).ResultsWe found that glucose metabolism plays an important role in the development of AD and that TKT is upregulated in patients with AD. Western blot and immunohistochemistry confirmed that TKT expression was upregulated in mice with AD. Reduced TKT expression attenuated AD incidence and mortality, maintained the structural integrity of the aorta, aligned elastic fibers, and reduced collagen deposition. Mechanistically, TKT was positively associated with impaired mitochondrial bioenergetics by upregulating AKT/MDM2 expression, ultimately contributing to NDUFS1 downregulation.ConclusionOur results provide new insights into the role of TKT in mitochondrial bioenergetics and AD progression. These findings provide new intervention options for the treatment of AD.

Funder

Natural Science Foundation of Fujian Province

National Natural Science Foundation of China

Publisher

Wiley

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