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光生物调节作用促进创伤性脑损伤恢复:细胞机制、临床证据及未来潜力

Traumatic Brain Injury Recovery with Photobiomodulation: Cellular Mechanisms, Clinical Evidence, and Future Potential.

作者信息

Lim Lew

机构信息

Vielight Inc., Toronto, ON M4Y 2G8, Canada.

出版信息

Cells. 2024 Feb 23;13(5):385. doi: 10.3390/cells13050385.

Abstract

Traumatic Brain Injury (TBI) remains a significant global health challenge, lacking effective pharmacological treatments. This shortcoming is attributed to TBI's heterogeneous and complex pathophysiology, which includes axonal damage, mitochondrial dysfunction, oxidative stress, and persistent neuroinflammation. The objective of this study is to analyze transcranial photobiomodulation (PBM), which employs specific red to near-infrared light wavelengths to modulate brain functions, as a promising therapy to address TBI's complex pathophysiology in a single intervention. This study reviews the feasibility of this therapy, firstly by synthesizing PBM's cellular mechanisms with each identified TBI's pathophysiological aspect. The outcomes in human clinical studies are then reviewed. The findings support PBM's potential for treating TBI, notwithstanding variations in parameters such as wavelength, power density, dose, light source positioning, and pulse frequencies. Emerging data indicate that each of these parameters plays a role in the outcomes. Additionally, new research into PBM's effects on the electrical properties and polymerization dynamics of neuronal microstructures, like microtubules and tubulins, provides insights for future parameter optimization. In summary, transcranial PBM represents a multifaceted therapeutic intervention for TBI with vast potential which may be fulfilled by optimizing the parameters. Future research should investigate optimizing these parameters, which is possible by incorporating artificial intelligence.

摘要

创伤性脑损伤(TBI)仍然是一项重大的全球健康挑战,缺乏有效的药物治疗方法。这一缺陷归因于TBI异质性和复杂的病理生理学,其中包括轴突损伤、线粒体功能障碍、氧化应激和持续性神经炎症。本研究的目的是分析经颅光生物调节(PBM),即采用特定的红光至近红外光波长来调节脑功能,作为一种有望在单一干预中解决TBI复杂病理生理学问题的治疗方法。本研究首先通过将PBM的细胞机制与每个已确定的TBI病理生理学方面进行综合,来评估这种治疗方法的可行性。然后对人体临床研究的结果进行了综述。研究结果支持PBM治疗TBI的潜力,尽管在波长、功率密度、剂量、光源定位和脉冲频率等参数上存在差异。新出现的数据表明,这些参数中的每一个都对结果有影响。此外,关于PBM对神经元微结构(如微管和微管蛋白)的电学性质和聚合动力学影响的新研究,为未来的参数优化提供了见解。总之,经颅PBM代表了一种对TBI具有多方面治疗潜力的干预措施,通过优化参数可能实现其潜力。未来的研究应调查如何优化这些参数,这可以通过纳入人工智能来实现。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d75e/10931349/842384beee7e/cells-13-00385-g001.jpg

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