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The dark art of light measurement: accurate radiometry for low-level light therapy

机译:光测量的黑暗技术:用于低水平光疗法的精确辐射测量

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摘要

Lasers and light-emitting diodes are used for a range of biomedical applications with many studies reporting their beneficial effects. However, three main concerns exist regarding much of the low-level light therapy (LLLT) or photobiomodulation literature; (1) incomplete, inaccurate and unverified irradiation parameters, (2) miscalculation of ‘dose,’ and (3) the misuse of appropriate light property terminology. The aim of this systematic review was to assess where, and to what extent, these inadequacies exist and to provide an overview of ‘best practice’ in light measurement methods and importance of correct light measurement. A review of recent relevant literature was performed in PubMed using the terms LLLT and photobiomodulation (March 2014–March 2015) to investigate the contemporary information available in LLLT and photobiomodulation literature in terms of reporting light properties and irradiation parameters. A total of 74 articles formed the basis of this systematic review. Although most articles reported beneficial effects following LLLT, the majority contained no information in terms of how light was measured (73 %) and relied on manufacturer-stated values. For all papers reviewed, missing information for specific light parameters included wavelength (3 %), light source type (8 %), power (41 %), pulse frequency (52 %), beam area (40 %), irradiance (43 %), exposure time (16 %), radiant energy (74 %) and fluence (16 %). Frequent use of incorrect terminology was also observed within the reviewed literature. A poor understanding of photophysics is evident as a significant number of papers neglected to report or misreported important radiometric data. These errors affect repeatability and reliability of studies shared between scientists, manufacturers and clinicians and could degrade efficacy of patient treatments. Researchers need a physicist or appropriately skilled engineer on the team, and manuscript reviewers should reject papers that do not report beam measurement methods and all ten key parameters: wavelength, power, irradiation time, beam area (at the skin or culture surface; this is not necessarily the same size as the aperture), radiant energy, radiant exposure, pulse parameters, number of treatments, interval between treatments and anatomical location. Inclusion of these parameters will improve the information available to compare and contrast study outcomes and improve repeatability, reliability of studies.
机译:激光和发光二极管用于一系列生物医学应用,许多研究报告了它们的有益作用。然而,关于许多低水平光疗法(LLLT)或光生物调节文献,存在三个主要问题。 (1)辐照参数不完整,不准确和未经验证,(2)“剂量”的计算错误,以及(3)滥用适当的光属性术语。这项系统回顾的目的是评估这些不足之处在何处以及在多大程度上存在,并概述测光方法的“最佳实践”以及正确测光的重要性。在PubMed中使用术语LLLT和光生物调节(2014年3月至2015年3月)对最近的相关文献进行了综述,以研究LLLT和光生物调节文献中报告光特性和辐照参数方面的当代信息。共有74篇文章构成了该系统综述的基础。尽管大多数文章都报告了LLLT后的有益效果,但大多数文章都没有关于光的测量方式的信息(73%),并没有依赖制造商规定的值。对于所有审阅的论文,缺少特定光参数的信息,包括波长(3%),光源类型(8%),功率(41%),脉冲频率(52%),光束面积(40%),辐照度(43%) ),暴露时间(16%),辐射能(74%)和通量(16%)。在回顾的文献中还观察到经常使用不正确的术语。由于大量论文被忽略以报告或错误报告重要的辐射数据,因此对光物理的理解很明显。这些错误影响科学家,制造商和临床医生之间共享的研究的可重复性和可靠性,并可能降低患者治疗的功效。研究人员需要团队中的物理学家或具有适当技能的工程师,而稿件审稿人应拒绝那些没有报告光束测量方法和所有十个关键参数的论文:波长,功率,照射时间,光束面积(在皮肤或培养表面;这是(不一定与孔径相同),辐射能量,辐射暴露,脉冲参数,治疗次数,治疗间隔和解剖位置。包含这些参数将改善可用于比较和对比研究结果的信息,并改善研究的可重复性和可靠性。

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