FNDC5/irisin mitigates the cardiotoxic impacts of cancer chemotherapeutics by modulating ROS-dependent and -independent mechanisms

IF 11.9 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY Redox Biology Pub Date : 2025-02-04 DOI:10.1016/j.redox.2025.103527
Manish Kumar , Abhishek Singh Sengar , Anushree Lye , Pranesh Kumar , Sukhes Mukherjee , Dinesh Kumar , Priyadip Das , Suvro Chatterjee , Adele Stewart , Biswanath Maity
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Abstract

Cardiotoxicity remains a major limiting factor in the clinical implementation of anthracycline chemotherapy. Though the etiology of doxorubicin-dependent heart damage has yet to be fully elucidated, the ability of doxorubicin to damage DNA and trigger oxidative stress have been heavily implicated in the pathogenesis of chemotherapy-associated cardiomyopathy. Here, we demonstrate that fibronectin type III domain-containing protein 5 (FNDC5), the precursor protein for myokine irisin, is depleted in the hearts of human cancer patients or mice exposed to chemotherapeutics. In cardiomyocytes, restoration of FNDC5 expression was sufficient to mitigate reactive oxygen species (ROS) accumulation and apoptosis following doxorubicin exposure, effects dependent on the irisin encoding domain of FNDC5 as well as signaling via the putative irisin integrin receptor. Intriguingly, we identified two parallel signaling cascades impacted by FNDC5 in cardiomyocytes: the ROS-driven intrinsic mitochondrial apoptosis pathway and the ROS-independent Ataxia Telangiectasia and Rad3-Related Protein (ATR)/Checkpoint Kinase 1 (Chk1) pathway. In fact, FNDC5 forms a co-precipitable complex with Chk1 alluding to possible intracellular actions for this canonically membrane-associated protein. Whereas FNDC5 overexpression in murine heart was cardioprotective, introduction of FNDC5-targeted shRNA into the myocardium was sufficient to trigger Bax up-regulation, ATR/Chk1 activation, oxidative stress, cardiac fibrosis, loss of ventricular function, and compromised animal survival. The detrimental impact of FNDC5 depletion on heart function could be mitigated via treatment with a Chk1 inhibitor identifying Chk1 hyperactivity as a causative factor in cardiac disease. Though our data point to the potential clinical utility of FNDC5/irisin-targeted agents in the treatment of chemotherapy-induced cardiotoxicity, we also found significant down regulation in FNDC5 expression in the hearts of aged mice that attenuated the cardioprotective impacts of FNDC5 overexpression following doxorubicin exposure. Together our data underscore the importance of FNDC5/irisin in maintenance of cardiac health over the lifespan.
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FNDC5/鸢尾素通过调节ros依赖性和非依赖性机制减轻癌症化疗药物的心脏毒性影响
心脏毒性仍然是蒽环类化疗临床实施的主要限制因素。虽然阿霉素依赖性心脏损伤的病因尚未完全阐明,但阿霉素损伤DNA和触发氧化应激的能力与化疗相关心肌病的发病机制密切相关。在这里,我们证明纤维连接蛋白III型结构域蛋白5 (FNDC5),肌因子鸢尾素的前体蛋白,在暴露于化疗药物的人类癌症患者或小鼠的心脏中被耗尽。在心肌细胞中,FNDC5表达的恢复足以减轻多柔比星暴露后活性氧(ROS)的积累和凋亡,其作用依赖于FNDC5的鸢尾素编码结构域以及鸢尾素整合素受体的信号传导。有趣的是,我们在心肌细胞中发现了两个受FNDC5影响的平行信号级联:ros驱动的内在线粒体凋亡途径和ros独立的共济失调毛细血管扩张和rad3相关蛋白(ATR)/检查点激酶1 (Chk1)途径。事实上,FNDC5与Chk1形成共沉淀复合物,暗示这种典型的膜相关蛋白可能在细胞内起作用。尽管FNDC5在小鼠心脏中的过表达具有心脏保护作用,但在心肌中引入FNDC5靶向shRNA足以引发Bax上调、ATR/Chk1激活、氧化应激、心脏纤维化、心室功能丧失和动物存活率降低。FNDC5缺失对心功能的有害影响可以通过Chk1抑制剂治疗来减轻,该抑制剂确定Chk1过度活跃是心脏病的一个致病因素。虽然我们的数据表明FNDC5/鸢尾素靶向药物在治疗化疗诱导的心脏毒性方面具有潜在的临床应用价值,但我们也发现老年小鼠心脏中FNDC5的表达显著下调,这减弱了阿霉素暴露后FNDC5过表达的心脏保护作用。综上所述,我们的数据强调了FNDC5/鸢尾素在维持心脏健康方面的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Redox Biology
Redox Biology BIOCHEMISTRY & MOLECULAR BIOLOGY-
CiteScore
19.90
自引率
3.50%
发文量
318
审稿时长
25 days
期刊介绍: Redox Biology is the official journal of the Society for Redox Biology and Medicine and the Society for Free Radical Research-Europe. It is also affiliated with the International Society for Free Radical Research (SFRRI). This journal serves as a platform for publishing pioneering research, innovative methods, and comprehensive review articles in the field of redox biology, encompassing both health and disease. Redox Biology welcomes various forms of contributions, including research articles (short or full communications), methods, mini-reviews, and commentaries. Through its diverse range of published content, Redox Biology aims to foster advancements and insights in the understanding of redox biology and its implications.
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