Department of Pharmacy, School of Medical and Allied Sciences, Galgotias University, Greater Noida, Uttar Pradesh, India.
Department of Pharmacy, School of Medical and Allied Sciences, Galgotias University, Greater Noida, Uttar Pradesh, India.
Biochim Biophys Acta Rev Cancer. 2021 Apr;1875(2):188532. doi: 10.1016/j.bbcan.2021.188532. Epub 2021 Mar 2.
The present communication summarizes the importance, understanding and advancement in the photothermal therapy of cancer using gold nanoparticles. Photothermal therapy was used earlier as a single line therapy, but using a combination of photothermal therapy with other therapies like immunotherapy, chemotherapy, photodynamic therapy; efficient therapy management can be achieved. As it was discussed in many studies that gold nanoparticles are treated as idyllic photothermal transducers due to their structural dimensions, which enables them to strongly absorb near infrared light. Gold nanoparticles which are mediated for photothermal therapy can warn cancer cells to chemotherapy, regulate genes and immunotherapy by enhancing the cell permeability and intracellular delivery. The necrosis process and apoptosis depend on the power of laser and temperature within the cancerous tissues which are reached during irradiation. Cells death mechanism is also important because the cells which died through the process of necrosis can endorse secondary tumor growth while the cells which died through apoptosis may provoke the immune response to inhibit the development of secondary tumor growth. To decrease the in vivo barriers, gold nanostructures are again modified with targeting ligand and bio-responsive linker. The manuscript summarizes that the use of gold nanoparticles is capable of inhibiting the growth of cancerous cells by using photothermal therapy which has lesser adverse effects compared to other line therapies.
本通讯总结了使用金纳米粒子进行癌症光热疗法的重要性、理解和进展。光热疗法早期曾被用作单一疗法,但将光热疗法与免疫疗法、化学疗法、光动力疗法等其他疗法结合使用,可以实现有效的治疗管理。正如许多研究中讨论的那样,由于金纳米粒子的结构尺寸,它们被视为理想的光热换能器,使它们能够强烈吸收近红外光。用于光热疗法的金纳米粒子可以通过增强细胞通透性和细胞内递送来警告癌细胞进行化学疗法、调节基因和免疫疗法。坏死过程和细胞凋亡取决于激光的强度和照射时癌组织内的温度。细胞死亡机制也很重要,因为通过坏死过程死亡的细胞可能会促进二次肿瘤生长,而通过凋亡死亡的细胞可能会引发免疫反应,抑制二次肿瘤生长。为了降低体内屏障,金纳米结构再次用靶向配体和生物响应性连接子进行修饰。本文总结了使用金纳米粒子通过光热疗法抑制癌细胞生长的能力,与其他治疗方法相比,光热疗法的副作用较小。