NAD+激酶
氧化应激
衰老
化学
干细胞
平衡
细胞生物学
氧化磷酸化
氧化还原
生物化学
缺血
癌症研究
线粒体
药理学
氧化酶试验
细胞
下调和上调
心肌梗塞
限制
NADPH氧化酶
活性氧
细胞损伤
心肌细胞
糖尿病性心肌病
再生(生物学)
心肌保护
医学
烟酰胺腺嘌呤二核苷酸磷酸
发病机制
心肌病
作者
Yu Chen,Yunsong Liang,Jie Shen,Yueyan Wang,Bo Qiu,Honghao Hou,Xiaozhong Qiu
出处
期刊:Research
[American Association for the Advancement of Science]
日期:2025-01-01
卷期号:8: 0973-0973
被引量:3
标识
DOI:10.34133/research.0973
摘要
Redox imbalance resulting from NAD + [nicotinamide adenine dinucleotide (oxidized form)] depletion and NADH (reduced form of NAD + ) accumulation is a conserved hallmark of both aging and myocardial infarction (MI), promoting cellular senescence and limiting the efficacy of regenerative therapies. Despite several NADH oxidase (NOX)-mimetic nanozymes having been reported, their therapeutic utility in aging and cardiovascular repair remains largely unexplored. Here, we present a vanadium-based nanozyme (MXene-TA) that mimics bacterial NOX activity, catalytically oxidizing NADH to restore NAD + and directly fixing redox imbalance. In aged (24-month-old) mice, systemic MXene-TA administration restored NAD + /NADH homeostasis and reduced senescence markers (p16, p21, γH2AX, and SASP) in the heart, liver, and spleen, yet this effect was not observed in the lungs or kidneys, indicating organ-specific redox susceptibility. In a rat MI model, local injection of MXene-TA into the infarcted myocardium reprogrammed metabolism, activated NAD + -dependent pathways, attenuated oxidative damage in cardiomyocytes, decreased infarct area, and enhanced myocardial function. To further enhance stem cell retention and function, we embedded MXene-TA and adipose-derived stem cells (ADSCs) into a pH-responsive, conductive hydrogel that mimics cardiac mechanical and electrical properties. This platform extended ADSC survival beyond 4 weeks (versus 1 week in controls) and further improved cardiac repair. Together, these findings uncover the therapeutic potential of NOX-mimetic nanozymes in aging and ischemic heart disease and introduce a redox-regulating hydrogel system that addresses both oxidative stress and stem cell integration for effective myocardial repair.
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