ROCK inhibitor enhances mitochondrial transfer via tunneling nanotubes in retinal pigment epithelium.

IF 12.4 1区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL
Theranostics Pub Date : 2024-09-09 eCollection Date: 2024-01-01 DOI:10.7150/thno.96508
Jing Yuan, Fangxuan Chen, Dan Jiang, Zehua Xu, Hang Zhang, Zi-Bing Jin
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引用次数: 0

Abstract

Rationale: Tunnel nanotube (TNT)-mediated mitochondrial transport is crucial for the development and maintenance of multicellular organisms. Despite numerous studies highlighting the significance of this process in both physiological and pathological contexts, knowledge of the underlying mechanisms is still limited. This research focused on the role of the ROCK inhibitor Y-27632 in modulating TNT formation and mitochondrial transport in retinal pigment epithelial (RPE) cells. Methods: Two types of ARPE19 cells (a retinal pigment epithelial cell line) with distinct mitochondrial fluorescently labeled, were co-cultured and treated with ROCK inhibitor Y-27632. The formation of nanotubes and transport of mitochondria were assessed through cytoskeletal staining and live cell imaging. Mitochondrial dysfunction was induced by light damage to establish a model, while mitochondrial function was evaluated through measurement of oxygen consumption rate. The effects of Y-27632 on cytoskeletal and mitochondrial dynamics were further elucidated through detailed analysis. Results: Y-27632 treatment led to an increase in nanotube formation and enhanced mitochondrial transfer among ARPE19 cells, even following exposure to light-induced damage. Our analysis of cytoskeletal and mitochondrial distribution changes suggests that Y-27632 promotes nanotube-mediated mitochondrial transport by influencing cytoskeletal remodeling and mitochondrial movement. Conclusions: These results suggest that Y-27632 has the ability to enhance mitochondrial transfer via tunneling nanotubes in retinal pigment epithelium, and similarly predict that ROCK inhibitor can fulfill its therapeutic potential through promoting mitochondrial transport in the retinal pigment epithelium in the future.

ROCK 抑制剂通过隧道纳米管增强视网膜色素上皮细胞中线粒体的转移。
理由:隧道纳米管(TNT)介导的线粒体转运对多细胞生物体的发育和维持至关重要。尽管大量研究强调了这一过程在生理和病理环境中的重要性,但对其潜在机制的了解仍然有限。本研究的重点是 ROCK 抑制剂 Y-27632 在调节视网膜色素上皮细胞(RPE)中 TNT 的形成和线粒体转运中的作用。研究方法将两种具有不同线粒体荧光标记的 ARPE19 细胞(视网膜色素上皮细胞系)共培养并用 ROCK 抑制剂 Y-27632 处理。通过细胞骨架染色和活细胞成像评估了纳米管的形成和线粒体的运输。通过光损伤诱导线粒体功能障碍以建立模型,同时通过测量耗氧率评估线粒体功能。通过详细分析,进一步阐明了 Y-27632 对细胞骨架和线粒体动力学的影响。结果Y-27632处理导致纳米管形成增加,线粒体在ARPE19细胞中的转移增强,甚至在暴露于光诱导的损伤后也是如此。我们对细胞骨架和线粒体分布变化的分析表明,Y-27632 通过影响细胞骨架重塑和线粒体移动促进了纳米管介导的线粒体转运。结论:这些结果表明,Y-27632 有能力通过隧道纳米管在视网膜色素上皮细胞中增强线粒体转运,并同样预测 ROCK 抑制剂未来可通过促进视网膜色素上皮细胞中的线粒体转运发挥其治疗潜力。
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来源期刊
Theranostics
Theranostics MEDICINE, RESEARCH & EXPERIMENTAL-
CiteScore
25.40
自引率
1.60%
发文量
433
审稿时长
1 months
期刊介绍: Theranostics serves as a pivotal platform for the exchange of clinical and scientific insights within the diagnostic and therapeutic molecular and nanomedicine community, along with allied professions engaged in integrating molecular imaging and therapy. As a multidisciplinary journal, Theranostics showcases innovative research articles spanning fields such as in vitro diagnostics and prognostics, in vivo molecular imaging, molecular therapeutics, image-guided therapy, biosensor technology, nanobiosensors, bioelectronics, system biology, translational medicine, point-of-care applications, and personalized medicine. Encouraging a broad spectrum of biomedical research with potential theranostic applications, the journal rigorously peer-reviews primary research, alongside publishing reviews, news, and commentary that aim to bridge the gap between the laboratory, clinic, and biotechnology industries.
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