Department of Pharmaceutics, Faculty of Pharmacy, DIT University, Dehradun, India.
Department of Pharmaceutics, School of Pharmaceutical Education and Research, Jamia Hamdard, New Delhi, India.
Drug Res (Stuttg). 2021 Mar;71(3):122-137. doi: 10.1055/a-1296-7870. Epub 2020 Nov 9.
Glioblastoma multiforme (GBM) is the most aggressive and fatal CNS related tumors, which is responsible for about 4% of cancer-related deaths. Current GBM therapy includes surgery, radiation, and chemotherapy. The effective chemotherapy of GBM is compromised by two barriers, i. e., the blood-brain barrier (BBB) and the blood tumor barrier (BTB). Therefore, novel therapeutic approaches are needed. Nanoparticles are one of the highly efficient drug delivery systems for a variety of chemotherapeutics that have gained massive attention from the last three decades. Perfectly designed nanoparticles have the ability to cross BBB and BTB and precisely deliver the chemotherapeutics to GBM tissue/cells. Nanoparticles can encapsulate both hydrophilic and lipophilic drugs, genes, proteins, and peptides, increase the stability of drugs by protecting them from degradation, improve plasma half-life, reduce adverse effects and control the release of drugs/genes at the desired site. This review focussed on the different signaling pathways altered in GBM cells to understand the rationale behind selecting new therapeutic targets, challenges in the drug delivery to the GBM, various transport routes in brain delivery, and recent advances in targeted delivery of different drug and gene loaded various lipidic, polymeric and inorganic nanoparticles in the effective management of GBM.
多形性胶质母细胞瘤(GBM)是最具侵袭性和致命性的中枢神经系统相关肿瘤,约占癌症相关死亡人数的 4%。目前的 GBM 治疗包括手术、放疗和化疗。GBM 的有效化疗受到两个障碍的影响,即血脑屏障(BBB)和血肿瘤屏障(BTB)。因此,需要新的治疗方法。纳米颗粒是多种化疗药物的高效药物递送系统之一,在过去三十年中引起了广泛关注。设计完美的纳米颗粒具有穿过 BBB 和 BTB 的能力,并将化疗药物精确递送到 GBM 组织/细胞。纳米颗粒可以包裹亲水性和疏水性药物、基因、蛋白质和肽,通过保护它们免受降解来提高药物的稳定性,延长血浆半衰期,减少不良反应,并控制药物/基因在所需部位的释放。这篇综述集中讨论了 GBM 细胞中改变的不同信号通路,以了解选择新治疗靶点的基本原理、药物向 GBM 输送的挑战、脑内输送的各种途径,以及最近在有效管理 GBM 中不同载药和基因的脂质、聚合物和无机纳米颗粒的靶向递送方面的进展。