DNA-PKcs通过调控线粒体分裂调节小鼠肺稳态

IF 5.2 2区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL Life sciences Pub Date : 2024-09-25 DOI:10.1016/j.lfs.2024.123078
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引用次数: 0

摘要

背景:DNA 依赖性蛋白激酶催化亚基(DNA-PKcs)的作用是多方面的,在多个器官中同时促进细胞存活和死亡。然而,它对肺稳态的影响仍然难以捉摸。在此,我们研究了DNA-PKcs在小鼠肺部的功能,旨在阐明其在DNA-PKcs缺乏症相关肺部异常中的作用。材料与方法:组织学评估和免疫组化被用于揭示DNA-PKcs缺乏症小鼠肺部的病理变化。转录组分析确定了DNA-PKcs缺陷小鼠肺部不同表达的基因和通路。此外,还通过 qPCR 和免疫印迹研究了 DNA-PKcs 缺陷诱导的线粒体功能障碍。小鼠原代肺成纤维细胞被用来评估用Mdivi-1抑制线粒体分裂的潜在治疗效果:在DNA-PKcs缺陷的小鼠肺中,我们观察到病理变化,包括肺泡间隔增厚、毛细血管充血和出血,以及肺细胞增殖。转录组分析显示,DNA-PKcs缺陷导致活性氧(ROS)生物合成过程和细胞凋亡信号通路上调。进一步的研究表明,DNA-PKcs缺乏会导致线粒体功能障碍、氧化应激增加以及小鼠肺部细胞凋亡增加。值得注意的是,我们在 DNA-PKcs 缺乏的小鼠肺中检测到线粒体裂变蛋白 DRP1 的磷酸化增强。有趣的是,使用Mdivi-1抑制线粒体裂变可抑制siRNA介导的DNA-PKcs基因敲除的原代小鼠肺成纤维细胞的细胞死亡:我们的研究深入揭示了DNA-PKcs通过维持线粒体功能在维持肺稳态中的关键作用,并提供了针对线粒体裂变的治疗策略,以防治DNA-PKcs缺乏相关的肺部疾病。
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DNA-PKcs modulates mouse lung homeostasis via the regulation of mitochondrial fission

Background

The role of DNA-dependent protein kinase catalytic subunit (DNA-PKcs) is multifaceted, paradoxically promoting both cell survival and cell death across multiple organs. However, its impact on lung homeostasis remains elusive. Here, we investigate the function of DNA-PKcs in mouse lungs, aiming to elucidate its role for lung abnormalities associated with DNA-PKcs deficiency.

Materials and methods

Histological assessment and immunohistochemistry were used to reveal the pathological changes of the lungs in DNA-PKcs-deficient mice. Transcriptomic analysis identified differentially expressed genes and pathways in DNA-PKcs-deficient lungs. Furthermore, mitochondrial dysfunction induced by DNA-PKcs deficiency was investigated by qPCR and immunoblotting. Mouse primary lung fibroblasts were used to evaluate the potential therapeutic effect of inhibiting mitochondrial fission with Mdivi-1.

Key findings

In DNA-PKcs-deficient mouse lungs, we observed pathological changes including alveolar septal thickening, capillary congestion and hemorrhage, along with lung cell proliferation. Transcriptome analysis revealed an upregulation of the reactive oxygen species (ROS) biosynthesis process and the apoptotic signaling pathway caused by DNA-PKcs deficiency. Further investigations demonstrated that DNA-PKcs deficiency led to mitochondrial dysfunction and increased oxidative stress, along with increased cell apoptosis in the mouse lungs. Notably, we detected enhanced phosphorylation of the mitochondrial fission protein DRP1 in DNA-PKcs-deficient mouse lungs. Intriguingly, inhibiting mitochondrial fission using Mdivi-1 suppressed cell death in primary mouse lung fibroblasts with siRNA-mediated DNA-PKcs knockdown.

Significance

Our study provides insights into the crucial role of DNA-PKcs in sustaining lung homeostasis via the maintenance of mitochondrial functionality and provides a therapeutic strategy targeting mitochondrial fission against DNA-PKcs deficiency-associated lung diseases.
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来源期刊
Life sciences
Life sciences 医学-药学
CiteScore
12.20
自引率
1.60%
发文量
841
审稿时长
6 months
期刊介绍: Life Sciences is an international journal publishing articles that emphasize the molecular, cellular, and functional basis of therapy. The journal emphasizes the understanding of mechanism that is relevant to all aspects of human disease and translation to patients. All articles are rigorously reviewed. The Journal favors publication of full-length papers where modern scientific technologies are used to explain molecular, cellular and physiological mechanisms. Articles that merely report observations are rarely accepted. Recommendations from the Declaration of Helsinki or NIH guidelines for care and use of laboratory animals must be adhered to. Articles should be written at a level accessible to readers who are non-specialists in the topic of the article themselves, but who are interested in the research. The Journal welcomes reviews on topics of wide interest to investigators in the life sciences. We particularly encourage submission of brief, focused reviews containing high-quality artwork and require the use of mechanistic summary diagrams.
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