Massachusetts General Hospital, Gordon Center for Medical Imaging, Department of Radiology, Charlest, United States.
Keio University, Graduate School of Science and Technology, Yokohama, Kanagawa, Japan.
J Biomed Opt. 2020 Mar;25(3):1-18. doi: 10.1117/1.JBO.25.3.036003.
Photobiomodulation is a well-established therapeutic modality. However, the mechanism of action is poorly understood, due to lack of research in the causal relationship between the near-infrared (NIR) light irradiation and its specific biological effects, hindering broader applications of this technology.
Since biological chromophores typically show several absorption peaks, we determined whether specific effects of photobiomodulation are induced with a combination of two wavelengths at a certain range of irradiance only, rather than a single wavelength of NIR light.
In order to analyze a wide array of combinations of multispectral NIR light at various irradiances efficiently, we developed a new optical platform equipped with two distinct wavelengths of NIR lasers by high-throughput multiple dosing for single-cell live imaging. Two wavelengths of 1064 and 1270 nm were selected based on their photobiomodulatory effects reported in the literature.
A specific combination of wavelengths at low irradiances (250 to 400 mW / cm2 for 1064 nm and 55 to 65 mW / cm2 for 1270 nm) modulates mitochondrial retrograde signaling, including intracellular calcium and reactive oxygen species in T cells. The time-dependent density functional theory computation of binding of nitric oxide (NO) to cytochrome c oxidase indicates that the illumination with NIR light could result in the NO release, which might be involved in these changes.
This optical platform is a powerful tool to study causal relationship between a specific parameter of NIR light and its biological effects. Such a platform is useful for a further mechanistic study on not only photobiomodulation but also other modalities in photomedicine.
光生物调节是一种成熟的治疗模式。然而,由于缺乏近红外(NIR)光照射与其特定生物效应之间因果关系的研究,其作用机制仍不清楚,这阻碍了这项技术的更广泛应用。
由于生物色团通常表现出多个吸收峰,我们确定是否仅在一定辐照度范围内使用两个波长的组合而不是单一波长的 NIR 光来产生光生物调节的特定效应。
为了有效地分析各种不同辐照度的多光谱 NIR 光的广泛组合,我们开发了一种新的光学平台,该平台通过高通量多次剂量为单细胞活成像配备了两个独特的 NIR 激光波长。选择波长为 1064nm 和 1270nm 的两个波长是基于文献中报道的光生物调节作用。
低辐照度(1064nm 为 250 至 400 mW/cm2,1270nm 为 55 至 65 mW/cm2)的特定波长组合调节线粒体逆行信号,包括 T 细胞中的细胞内钙和活性氧。一氧化氮(NO)与细胞色素 c 氧化酶结合的时间依赖性密度泛函理论计算表明,用 NIR 光照射可能导致 NO 释放,这可能涉及这些变化。
该光学平台是研究 NIR 光的特定参数与其生物效应之间因果关系的强大工具。该平台不仅对光生物调节,而且对光医学中的其他模式的进一步机制研究也很有用。