4.7 Article

Adenosine kinase is critical for neointima formation after vascular injury by inducing aberrant DNA hypermethylation

期刊

CARDIOVASCULAR RESEARCH
卷 117, 期 2, 页码 561-575

出版社

OXFORD UNIV PRESS
DOI: 10.1093/cvr/cvaa040

关键词

Adenosine kinase; DNA methylation; Vascular smooth muscle cells; Arterial neointima

资金

  1. Natural Science Foundation of China [81870363, 81870217, 81700395, 81400826]
  2. National Institutes of Health [HL095556, R01DK095828, R01DK095862]
  3. American Heart Association [16GRNT30510010, 15POST22810024]
  4. Shenzhen Science and Technology Innovation Committee [JSGG20140717102922014, JCYJ20140903101709818, KQCX2015032709315529, 201605170847126 52, 20160503001803075]
  5. National Guan gdong Natural Science Foundation [2014A030312004]

向作者/读者索取更多资源

The study reveals a novel mechanism by which ADK promotes VSMC proliferation via inducing aberrant DNA hypermethylation, down-regulating KLF4 expression and promoting neointima formation. The findings suggest the possibility of targeting ADK as an epigenetic modulator to combat vascular injury.
Aims Adenosine receptors and extracellular adenosine have been demonstrated to modulate vascular smooth muscle cell (VSMC) proliferation and neointima formation. Adenosine kinase (ADK) is a major enzyme regulating intracellular adenosine levels but is function in VSMC remains unclear. Here, we investigated the role of ADK in vascular injury-induced smooth muscle proliferation and delineated the mechanisms underlying its action. Methods and results We found that ADK expression was higher in the neointima of injured vessels and in platelet-derived growth factor-treated VSMCs. Genetic and pharmacological inhibition of ADK was enough to attenuate arterial injury-induced neointima formation due to inhibition of VSMC proliferation. Mechanistically, using infinium methylation assays and bisutfite sequencing, we showed that ADK metabolized the intracellular adenosine and potentiated the transmethylation pathway, then induced the aberrant DNA hypermethylation. Pharmacological inhibition of aberrant DNA hypermethylation increased KLF4 expression and suppressed VSMC proliferation as well as the neointima formation. Importantly, in human femoral arteries, we observed increased ADK expression and DNA hypermethylation as well as decreased KLF4 expression in neointimat VSMCs of stenotic vessels suggesting that our findings in mice are relevant for human disease and may hold translational significance. Conclusion Our study unravels a novel mechanism by which ADK promotes VSMC proliferation via inducing aberrant DNA hypermethylation, thereby down-regulating KLF4 expression and promoting neointima formation. These findings advance the possibility of targeting ADK as an epigenetic modulator to combat vascular injury. [GRAPHICS] .

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