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将辐射诱导的心脏毒性的基因修饰因子定位到大鼠3号染色体上。

Mapping genetic modifiers of radiation-induced cardiotoxicity to rat chromosome 3.

作者信息

Schlaak Rachel A, Frei Anne, Schottstaedt Aronne M, Tsaih Shirng-Wern, Fish Brian L, Harmann Leanne, Liu Qian, Gasperetti Tracy, Medhora Meetha, North Paula E, Strande Jennifer L, Sun Yunguang, Rui Hallgeir, Flister Michael J, Bergom Carmen

机构信息

Department of Pharmacology and Toxicology, Medical College of Wisconsin , Milwaukee, Wisconsin.

Department of Radiation Oncology, Medical College of Wisconsin , Milwaukee, Wisconsin.

出版信息

Am J Physiol Heart Circ Physiol. 2019 Jun 1;316(6):H1267-H1280. doi: 10.1152/ajpheart.00482.2018. Epub 2019 Mar 8.

Abstract

Radiation therapy is used in ~50% of cancer patients to reduce the risk of recurrence and in some cases improve survival. Despite these benefits, doses can be limited by toxicity in multiple organs, including the heart. The underlying causes and biomarkers of radiation-induced cardiotoxicity are currently unknown, prompting the need for experimental models with inherent differences in sensitivity and resistance to the development of radiation-induced cardiotoxicity. We have identified the parental SS (Dahl salt-sensitive/Mcwi) rat strain to be a highly-sensitized model of radiation-induced cardiotoxicity. In comparison, substitution of rat chromosome 3 from the resistant BN (Brown Norway) rat strain onto the SS background (SS-3 consomic) significantly attenuated radiation-induced cardiotoxicity. SS-3 rats had less radiation-induced cardiotoxicity than SS rats, as measured by survival, pleural and pericardial effusions, echocardiogram parameters, and histological damage. Mast cells, previously shown to have predominantly protective roles in radiation-induced cardiotoxicity, were increased in the more resistant SS-3 hearts postradiation. RNA sequencing from SS and SS-3 hearts at 1 wk postradiation revealed 5,098 differentially expressed candidate genes across the transcriptome and 350 differentially expressed genes on rat chromosome 3, which coincided with enrichment of multiple pathways, including mitochondrial dysfunction, sirtuin signaling, and ubiquitination. Upstream regulators of enriched pathways included the oxidative stress modulating transcription factor, , which is located on rat chromosome 3. target genes were also differentially expressed in the SS vs. SS-3 consomic hearts postradiation. Collectively, these data confirm the existence of heritable modifiers in radiation-induced cardiotoxicity and provide multiple biomarkers, pathways, and candidate genes for future analyses. This novel study reveals that heritable genetic factors have the potential to modify normal tissue sensitivity to radiation. Gene variant(s) on rat chromosome 3 can contribute to enhanced cardiotoxicity displayed in the SS rats vs. the BN and SS-3 consomic rats. Identifying genes that lead to understanding the mechanisms of radiation-induced cardiotoxicity represents a novel method to personalize radiation treatment, as well as predict the development of radiation-induced cardiotoxicity.

摘要

约50%的癌症患者会接受放射治疗,以降低复发风险,在某些情况下还可提高生存率。尽管有这些益处,但剂量可能会受到包括心脏在内的多个器官毒性的限制。目前尚不清楚辐射诱发心脏毒性的潜在原因和生物标志物,这促使人们需要建立对辐射诱发心脏毒性的敏感性和抗性存在固有差异的实验模型。我们已确定亲本SS(达尔盐敏感/Mcwi)大鼠品系是辐射诱发心脏毒性的高度敏感模型。相比之下,将抗性BN(棕色挪威)大鼠品系的大鼠3号染色体替换到SS背景(SS-3代换系)上,可显著减轻辐射诱发的心脏毒性。通过生存率、胸腔和心包积液、超声心动图参数以及组织学损伤来衡量,SS-3大鼠的辐射诱发心脏毒性低于SS大鼠。肥大细胞先前被证明在辐射诱发心脏毒性中主要起保护作用,在辐射后抗性更强的SS-3心脏中肥大细胞数量增加。辐射后1周对SS和SS-3心脏进行RNA测序,结果显示转录组中有5098个差异表达的候选基因,大鼠3号染色体上有350个差异表达基因,这与包括线粒体功能障碍、沉默调节蛋白信号传导和泛素化在内的多种通路的富集情况一致。富集通路的上游调节因子包括氧化应激调节转录因子,该因子位于大鼠3号染色体上。辐射后,靶基因在SS与SS-3代换系心脏中也存在差异表达。总体而言,这些数据证实了辐射诱发心脏毒性中存在可遗传的修饰因子,并为未来分析提供了多种生物标志物、通路和候选基因。这项新研究表明,可遗传的遗传因素有可能改变正常组织对辐射的敏感性。大鼠3号染色体上的基因变异可能导致SS大鼠比BN和SS-3代换系大鼠表现出更强的心脏毒性。识别导致理解辐射诱发心脏毒性机制的基因,代表了一种使放射治疗个性化以及预测辐射诱发心脏毒性发展的新方法。

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