Department of Neurosurgery, The Second Affiliated Hospital of Anhui Medical University, Hefei, 230601, P. R. China.
Department of Neurosurgery, Changzheng Hospital, Naval Medical University, Shanghai, 200003, P. R. China.
Adv Sci (Weinh). 2024 Aug;11(30):e2309542. doi: 10.1002/advs.202309542. Epub 2024 Jun 13.
Glioblastoma multiforme (GBM) is the most aggressive and lethal subtype of gliomas of the central nervous system. The efficacy of sonodynamic therapy (SDT) against GBM is significantly reduced by the expression of apoptosis-inhibitory proteins in GBM cells. In this study, an intelligent nanoplatform (denoted as Aza-BD@PC NPs) based on the aza-boron-dipyrromethene dye and phenyl chlorothionocarbonate-modified DSPE-PEG molecules is developed for synergistic ferroptosis-enabled gas therapy (GT) and SDT of GBM. Once internalized by GBM cells, Aza-BD@PC NPs showed effective cysteine (Cys) consumption and Cys-triggered hydrogen sulfide (HS) release for ferroptosis-enabled GT, thereby disrupting homeostasis in the intracellular environment, affecting GBM cell metabolism, and inhibiting GBM cell proliferation. Additionally, the released Aza-BD generated abundant singlet oxygen (O) under ultrasound irradiation for favorable SDT. In vivo and in vitro evaluations demonstrated that the combined functions of Cys consumption, HS production, and O production induced significant death of GBM cells and markedly inhibited tumor growth, with an impressive inhibition rate of up to 97.5%. Collectively, this study constructed a cascade nanoreactor with satisfactory Cys depletion performance, excellent HS release capability, and prominent reactive oxygen species production ability under ultrasound irradiation for the synergistic ferroptosis-enabled GT and SDT of gliomas.
多形性胶质母细胞瘤(GBM)是中枢神经系统中最具侵袭性和致命性的神经胶质瘤亚型。GBM 细胞中凋亡抑制蛋白的表达显著降低了声动力学疗法(SDT)对 GBM 的疗效。在本研究中,开发了一种基于氮杂硼二吡咯甲川染料和苯氯硫羰基修饰的 DSPE-PEG 分子的智能纳米平台(表示为 Aza-BD@PC NPs),用于协同铁死亡激活的气体治疗(GT)和 GBM 的 SDT。一旦被 GBM 细胞内化,Aza-BD@PC NPs 表现出有效的半胱氨酸(Cys)消耗和 Cys 触发的硫化氢(HS)释放,以实现铁死亡激活的 GT,从而破坏细胞内环境的平衡,影响 GBM 细胞的代谢,并抑制 GBM 细胞的增殖。此外,释放的 Aza-BD 在超声辐射下产生丰富的单线态氧(O),有利于 SDT。体内和体外评估表明,Cys 消耗、HS 产生和 O 产生的联合作用导致 GBM 细胞显著死亡,并显著抑制肿瘤生长,抑制率高达 97.5%。总之,本研究构建了一种级联纳米反应器,在超声辐射下具有令人满意的 Cys 耗竭性能、优异的 HS 释放能力和突出的活性氧生成能力,用于协同铁死亡激活的 GT 和 SDT 治疗神经胶质瘤。