Opt Express. 2022 Jun 20;30(13):23078-23089. doi: 10.1364/OE.454012.
In recent years, there has been a growing interest in the singlet form of oxygen as a regulator of the physiological functions of cells. One of the ways to generate singlet oxygen is direct optical excitation of the triplet oxygen form. Since molecular oxygen weakly absorbs light, high power is required to obtain sufficient concentrations of singlet oxygen. However, the increase in the radiation power of laser can induce a local temperature increase around the laser spot. This may be critical considering the temperature governs every biological reaction within living cells, in particular. Here, the interaction of laser radiation of infrared wavelengths, generating singlet oxygen, with biological tissues and cell culture media was simulated. Using the COMSOL Multiphysics software, the thermal field distribution in the volume of skin, brain tissue and cell culture media was obtained depending on the wavelength, power and exposure time. The results demonstrate the importance of taking temperature into account when conducting experimental studies at the cellular and organismal levels.
近年来,人们对作为细胞生理功能调节剂的单线态氧越来越感兴趣。产生单线态氧的一种方法是直接光学激发三重态氧。由于分子氧对光的弱吸收,需要高功率才能获得足够浓度的单线态氧。然而,激光辐射功率的增加会导致激光光斑周围的局部温度升高。考虑到温度控制着活细胞内的每一个生物反应,特别是在活细胞内的每一个生物反应,这可能是至关重要的。在这里,模拟了红外波长激光辐射与生物组织和细胞培养基的相互作用,这些激光辐射产生单线态氧。使用 COMSOL Multiphysics 软件,根据波长、功率和暴露时间,获得了皮肤、脑组织和细胞培养基体积内的热场分布。结果表明,在细胞和机体水平进行实验研究时,考虑温度的重要性。