Photodynamic Cancer Therapy: The Underlying Laser Characteristics

Helène Painchaud, L. Plouffe, A. Bolduc, A. Benhsaien
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Abstract

A photosensitizer (PS) is a substance composed of molecules that can occupy a higher level of excitation pursuant to a photon capture. Photofrin is the readily available and selected PS throughout this work despite its few inherent drawbacks namely, a fairly long in situ reminiscent time of up to three weeks following the injection and a low selectivity for tumor cells. Blue light can detect cancer whereas red light can treat the same. The latter unique attribute, chiefly due to the absorption spectral profile in the first NIR optical window, means that red light – around 700 nm – can penetrate deep enough into the tissue while suffering negligible attenuation. The red light promotes the PS from its ground state to a higher state of excitation (singlets and triplets). The molecules in the triplet state return to the ground state via phosphorescence, a long radiative relaxation mechanism allowing to produce singlet oxygen. Finally, the reaction of the biomolecules and singlet oxygen is conducive to the destruction of the tumor cells [1].
光动力癌症治疗:潜在的激光特性
光敏剂(PS)是一种由分子组成的物质,可以根据光子捕获占据更高的激发水平。尽管Photofrin有一些固有的缺点,即在注射后长达三周的相当长的原位记忆时间,以及对肿瘤细胞的低选择性,但在整个工作中,Photofrin是一种容易获得和选择的PS。蓝光可以检测癌症,而红光可以治疗癌症。后一种独特的属性,主要是由于第一个近红外光学窗口的吸收光谱曲线,这意味着红光-大约700纳米-可以穿透足够深的组织,而衰减可以忽略不计。红光促进PS从基态到更高的激发态(单重态和三重态)。处于三重态的分子通过磷光回到基态,磷光是一种长辐射松弛机制,允许产生单线态氧。最后,生物分子与单线态氧的反应有利于肿瘤细胞的破坏[1]。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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