Adenosine kinase inhibition protects mice from abdominal aortic aneurysm via epigenetic modulation of VSMC inflammation

腺苷激酶 腺苷 炎症 腹主动脉瘤 医学 腺苷A3受体 核苷 嘌呤能信号 腺苷受体 药理学 内科学 内分泌学 化学 动脉瘤 生物化学 受体 腺苷脱氨酶 外科 兴奋剂
作者
Jiean Xu,Zhiping Liu,Qiuhua Yang,Qian Ma,Yaqi Zhou,Yongfeng Cai,Dingwei Zhao,Guizhen Zhao,Tammy Lu,Kunfu Ouyang,Mei Hong,Ha Won Kim,Huidong Shi,Jifeng Zhang,David Fulton,Clint L. Miller,Rajeev Malhotra,Neal L. Weintraub,Yuqing Huo
出处
期刊:Cardiovascular Research [Oxford University Press]
卷期号:120 (10): 1202-1217 被引量:4
标识
DOI:10.1093/cvr/cvae093
摘要

Abstract Aims Abdominal aortic aneurysm (AAA) is a common, serious vascular disease with no effective pharmacological treatment. The nucleoside adenosine plays an important role in modulating vascular homeostasis, which prompted us to determine whether adenosine kinase (ADK), an adenosine metabolizing enzyme, modulates AAA formation via control of the intracellular adenosine level, and to investigate the underlying mechanisms. Methods and results We used a combination of genetic and pharmacological approaches in murine models of AAA induced by calcium chloride (CaCl2) application or angiotensin II (Ang II) infusion to study the role of ADK in the development of AAA. In vitro functional assays were performed by knocking down ADK with adenovirus-short hairpin RNA in human vascular smooth muscle cells (VSMCs), and the molecular mechanisms underlying ADK function were investigated using RNA-sequencing, isotope tracing, and chromatin immunoprecipitation quantitative polymerase chain reaction (ChIP-qPCR). The heterozygous deficiency of ADK protected mice from CaCl2- and Ang II-induced AAA formation. Moreover, specific knockout of ADK in VSMCs prevented Ang II-induced AAA formation, as evidenced by reduced aortic extracellular elastin fragmentation, neovascularization, and aortic inflammation. Mechanistically, ADK knockdown in VSMCs markedly suppressed the expression of inflammatory genes associated with AAA formation, and these effects were independent of adenosine receptors. The metabolic flux and ChIP-qPCR results showed that ADK knockdown in VSMCs decreased S-adenosylmethionine (SAM)-dependent transmethylation, thereby reducing H3K4me3 binding to the promoter regions of the genes that are associated with inflammation, angiogenesis, and extracellular elastin fragmentation. Furthermore, the ADK inhibitor ABT702 protected mice from CaCl2-induced aortic inflammation, extracellular elastin fragmentation, and AAA formation. Conclusion Our findings reveal a novel role for ADK inhibition in attenuating AAA via epigenetic modulation of key inflammatory genes linked to AAA pathogenesis.
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