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光生物调节会改变线粒体动力学吗?

Does photobiomodulation alter mitochondrial dynamics?

作者信息

Trajano Larissa Alexsandra da Silva Neto, Siqueira Priscyanne Barreto, Rodrigues Mariana Moreno de Sousa, Pires Bruno Ricardo Barreto, da Fonseca Adenilson de Souza, Mencalha Andre Luiz

机构信息

Departamento de Biofísica e Biometria, Instituto de Biologia Roberto Alcântara Gomes, Universidade do Estado do Rio de Janeiro, Rio de Janeiro, Brazil.

Pró-Reitoria de Pesquisa e pós-graduação, Mestrado Profissional em Ciências Aplicadas em Saúde, Universidade de Vassouras, Rio de Janeiro, Brazil.

出版信息

Photochem Photobiol. 2025 Jan-Feb;101(1):21-37. doi: 10.1111/php.13963. Epub 2024 May 22.

Abstract

Mitochondrial dysfunction is one of the leading causes of disease development. Dysfunctional mitochondria limit energy production, increase reactive oxygen species generation, and trigger apoptotic signals. Photobiomodulation is a noninvasive, nonthermal technique involving the application of monochromatic light with low energy density, inducing non-thermal photochemical effects at the cellular level, and it has been used due to its therapeutic potential. This review focuses on the mitochondrial dynamic's role in various diseases, evaluating the possible therapeutic role of low-power lasers (LPL) and light-emitting diodes (LED). Studies increasingly support that mitochondrial dysfunction is correlated with severe neurodegenerative diseases such as Parkinson's, Huntington's, Alzheimer's, and Charcot-Marie-Tooth diseases. Furthermore, a disturbance in mitofusin activity is also associated with metabolic disorders, including obesity and type 2 diabetes. The effects of PBM on mitochondrial dynamics have been observed in cells using a human fibroblast cell line and in vivo models of brain injury, diabetes, spinal cord injury, Alzheimer's disease, and skin injury. Thus, new therapies aiming to improve mitochondrial dynamics are clinically relevant. Several studies have demonstrated that LPL and LED can be important therapies to improve health conditions when there is dysfunction in mitochondrial dynamics.

摘要

线粒体功能障碍是疾病发展的主要原因之一。功能失调的线粒体限制能量产生,增加活性氧的生成,并触发凋亡信号。光生物调节是一种非侵入性、非热技术,涉及应用低能量密度的单色光,在细胞水平上诱导非热光化学效应,因其治疗潜力而被应用。本综述重点关注线粒体动力学在各种疾病中的作用,评估低功率激光(LPL)和发光二极管(LED)可能的治疗作用。越来越多的研究支持线粒体功能障碍与严重的神经退行性疾病如帕金森病、亨廷顿舞蹈症、阿尔茨海默病和夏科-马里-图斯病相关。此外,线粒体融合蛋白活性的紊乱也与包括肥胖和2型糖尿病在内的代谢紊乱有关。在使用人类成纤维细胞系的细胞以及脑损伤、糖尿病、脊髓损伤、阿尔茨海默病和皮肤损伤的体内模型中,已观察到光生物调节对线粒体动力学的影响。因此,旨在改善线粒体动力学的新疗法具有临床相关性。几项研究表明,当线粒体动力学出现功能障碍时,LPL和LED可能成为改善健康状况的重要疗法。

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