Low-intensity pulsed ultrasound protects from inflammatory dilated cardiomyopathy through inciting extracellular vesicles

Author:

Sun Ping123,Li Yi12,Li Yifei123,Ji Huan12,Mang Ge34,Fu Shuai123,Jiang Shuangquan12,Choi Stephen5,Wang Xiaoqi34,Tong Zhonghua34,Wang Chao123,Gao Fei123,Wan Pingping34,Chen Shuang123,Li You123,Zhao Peng123,Leng Xiaoping12,Zhang Maomao34,Tian Jiawei123ORCID

Affiliation:

1. Department of Ultrasound, Second Affiliated Hospital of Harbin Medical University , No. 246 XueFu Road, Nan Gang Dist., Harbin, 150086, Heilongjiang Province , China

2. Ultrasound Molecular Imaging Joint Laboratory of Heilongjiang Province , No. 246 XueFu Road, Nan Gang Dist, Harbin, 150086, Heilongjiang Province , China

3. The Key Laboratory of Myocardial Ischemia, Harbin Medical University, Ministry of Education , No. 246 XueFu Road, Nan Gang Dist, Harbin, 150086, Heilongjiang Province , China

4. Department of Cardiology, the Second Affiliated Hospital of Harbin Medical University , No. 246 XueFu Road, Nan Gang Dist, Harbin, 150086, Heilongjiang Province , China

5. SXULTRASONIC (Shenzhen) Ltd. Kerry Rehabilitation Medicine Research Institute , 126 Zhongkang Road, Shang Mei LinFutian, Shenzhen, 518000, Guangdong Province , China

Abstract

Abstract Aims CD4+ T cells are activated during inflammatory dilated cardiomyopathy (iDCM) development to induce immunogenic responses that damage the myocardium. Low-intensity pulsed ultrasound (LIPUS), a novel physiotherapy for cardiovascular diseases, has recently been shown to modulate inflammatory responses. However, its efficacy in iDCM remains unknown. Here, we investigated whether LIPUS could improve the severity of iDCM by orchestrating immune responses and explored its therapeutic mechanisms. Methods and results In iDCM mice, LIPUS treatment reduced cardiac remodelling and dysfunction. Additionally, CD4+ T-cell inflammatory responses were suppressed. LIPUS increased Treg cells while decreasing Th17 cells. LIPUS mechanically stimulates endothelial cells, resulting in increased secretion of extracellular vesicles (EVs), which are taken up by CD4+ T cells and alter their differentiation and metabolic patterns. Moreover, EVs selectively loaded with microRNA (miR)-99a are responsible for the therapeutic effects of LIPUS. The hnRNPA2B1 translocation from the nucleus to the cytoplasm and binding to caveolin-1 and miR-99a confirmed the upstream mechanism of miR-99a transport. This complex is loaded into EVs and taken up by CD4+ T cells, which further suppress mTOR and TRIB2 expression to modulate cellular differentiation. Conclusion Our findings revealed that LIPUS uses an EVs-dependent molecular mechanism to protect against iDCM progression. Therefore, LIPUS is a promising new treatment option for iDCM.

Funder

National Natural Science Foundation of China

Heilongjiang Province Key research and Development Plan Project

Natural Science Foundation of Heilongjiang Province

Publisher

Oxford University Press (OUP)

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