School of Dentistry, Oral Health Centre, The University of Queensland, Brisbane, Australia.
J Biophotonics. 2021 Jan;14(1):e202000295. doi: 10.1002/jbio.202000295. Epub 2020 Sep 28.
Gene therapy has become an effective treatment modality for some conditions. Laser light may augment or enhance gene therapy through photomechanical, photothermal, and photochemical. This review examined the evidence base for laser therapy to enhance nucleic acid transfection in mammalian cells. An electronic search of MEDLINE, Scopus, EMBASE, Web of Science, and Google Scholar was performed, covering all available years. The preferred reporting items for systematic reviews and meta-analyses guideline for systematic reviews was used for designing the study and analyzing the results. In total, 49 studies of laser irradiation for nucleic acid delivery were included. Key approaches were optoporation, photomechanical gene transfection, and photochemical internalization. Optoporation is better suited to cells in culture, photomechanical and photochemical approaches appear well suited to in vivo use. Additional studies explored the impact of photothermal for enhancing gene transfection. Each approach has merits and limitations. Augmenting nucleic acid delivery using laser irradiation is a promising method for improving gene therapy. Laser protocols can be non-invasive because of the penetration of desirable wavelengths of light, but it depends on various parameters such as power density, treatment duration, irradiation mode, etc. The current protocols show low efficiency, and there is a need for further work to optimize irradiation parameters.
基因治疗已成为某些疾病的有效治疗方式。激光光可能通过光机械、光热和光化学来增强或促进基因治疗。本综述检查了激光治疗增强哺乳动物细胞中核酸转染的证据基础。对 MEDLINE、Scopus、EMBASE、Web of Science 和 Google Scholar 进行了电子检索,涵盖了所有可用的年份。系统评价和荟萃分析的首选报告项目指南用于设计研究和分析结果。总共纳入了 49 项关于激光照射核酸递送的研究。关键方法是光穿孔、光机械基因转染和光化学内化。光穿孔更适合于培养中的细胞,光机械和光化学方法似乎非常适合体内使用。其他研究探讨了光热对增强基因转染的影响。每种方法都有其优点和局限性。使用激光照射增强核酸传递是提高基因治疗的有前途的方法。由于所需波长的光的穿透,激光方案可以是非侵入性的,但这取决于各种参数,如功率密度、治疗持续时间、照射模式等。目前的方案显示效率低下,需要进一步工作来优化照射参数。