Interdisciplinary Center of High Magnetic Field Physics of Shenzhen University, College of Physics and Optoelectronic Engineering; Institute of Microscale Optoelectronics, Shenzhen University, Shenzhen 518060, China.
Interdisciplinary Center of High Magnetic Field Physics of Shenzhen University, College of Physics and Optoelectronic Engineering; Institute of Microscale Optoelectronics, Shenzhen University, Shenzhen 518060, China; Shenzhen International Institute for Biomedical Research, 3/F, Building 1-B, Silver Star Hi-tech Industrial Park, Longhua District, Shenzhen 518110, China.
J Control Release. 2022 Dec;352:338-370. doi: 10.1016/j.jconrel.2022.09.065. Epub 2022 Oct 27.
Glioma is often referred to as one of the most dreadful central nervous system (CNS)-specific tumors with rapidly-proliferating cancerous glial cells, accounting for nearly half of the brain tumors at an annual incidence rate of 30-80 per a million population. Although glioma treatment remains a significant challenge for researchers and clinicians, the rapid development of nanomedicine provides tremendous opportunities for long-term glioma therapy. However, several obstacles impede the development of novel therapeutics, such as the very tight blood-brain barrier (BBB), undesirable hypoxia, and complex tumor microenvironment (TME). Several efforts have been dedicated to exploring various nanoformulations for improving BBB permeation and precise tumor ablation to address these challenges. Initially, this article briefly introduces glioma classification and various pathogenic factors. Further, currently available therapeutic approaches are illustrated in detail, including traditional chemotherapy, radiotherapy, and surgical practices. Then, different innovative treatment strategies, such as tumor-treating fields, gene therapy, immunotherapy, and phototherapy, are emphasized. In conclusion, we summarize the article with interesting perspectives, providing suggestions for future glioma diagnosis and therapy improvement.
神经胶质瘤通常被称为最可怕的中枢神经系统(CNS)特异性肿瘤之一,其具有快速增殖的癌变神经胶质细胞,占每年每百万人口发病率的近一半。尽管神经胶质瘤的治疗仍然是研究人员和临床医生面临的重大挑战,但纳米医学的快速发展为长期神经胶质瘤治疗提供了巨大的机会。然而,一些障碍阻碍了新型治疗方法的发展,例如非常紧密的血脑屏障(BBB)、不理想的缺氧和复杂的肿瘤微环境(TME)。人们已经做出了一些努力来探索各种纳米制剂,以改善 BBB 渗透和精确肿瘤消融,以应对这些挑战。本文首先简要介绍了神经胶质瘤的分类和各种发病因素。然后,详细介绍了目前可用的治疗方法,包括传统的化疗、放疗和手术。然后,强调了不同的创新治疗策略,如肿瘤治疗场、基因治疗、免疫治疗和光疗。最后,我们对文章进行了总结,并提出了有趣的观点,为未来神经胶质瘤的诊断和治疗提供了建议。