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基于二氧化锰的纳米载体递送紫杉醇以通过缓解缺氧增强原位脑胶质瘤的化疗。

Manganese Dioxide-Based Nanocarrier Delivers Paclitaxel to Enhance Chemotherapy against Orthotopic Glioma through Hypoxia Relief.

机构信息

Department of Radiology, Sun Yat-Sen Memorial Hospital, Sun Yat-Sen University, Guangzhou, 510120, China.

Department of Radiology, the First Affiliated Hospital of Guangzhou University of Chinese Medicine, Guangzhou, 510405, China.

出版信息

Small Methods. 2022 Jul;6(7):e2101531. doi: 10.1002/smtd.202101531. Epub 2022 May 19.

Abstract

Chemotherapy plays an important role in treating cancers in clinic. Hypoxia-mediated chemoresistance remains a major hurdle for effective tumor chemotherapy. Herein, a new class of tLyP-1-modified dopamine (DOPA)-β-cyclodextrin (CD)-coated paclitaxel (PTX)- and manganese dioxide (MnO )-loaded nanoparticles (tLyP-1-CD-DOPA-MnO @PTX) is developed to enhance glioma chemotherapy. The nanomedicine delivered to the tumor site decomposes in response to the weak acidity and high hydrogen peroxide in the tumor microenvironment (TME), resulting in collapse of the system to release PTX and generates Mn and O . In a rat model of intracranial glioma, tLyP-1-CD-DOPA-MnO @PTX can efficiently pass through the blood-brain-barrier to accumulate in tumor sites. The hypoxia in TME can be relieved via O generated by MnO and the reactive oxygen species produced by Mn can kill tumor cells. The tLyP-1-CD-DOPA-MnO @PTX nanoparticles exert a remarkable antitumor effect by promoting apoptosis and inhibiting proliferation of tumor cells in addition to enabling real-time tumor monitoring with magnetic resonance imaging. This MnO -based theranostic medicine will offer a novel strategy to simultaneously enhance chemotherapy and achieve real-time imaging of therapeutic process in glioma treatment.

摘要

化疗在临床治疗癌症中起着重要作用。缺氧介导的化疗耐药性仍然是有效肿瘤化疗的主要障碍。在此,开发了一类新型的 tLyP-1 修饰的多巴胺(DOPA)-β-环糊精(CD)包裹的紫杉醇(PTX)和二氧化锰(MnO )负载的纳米粒子(tLyP-1-CD-DOPA-MnO @PTX),以增强脑胶质瘤的化疗效果。该纳米药物递送至肿瘤部位后,会在肿瘤微环境(TME)的弱酸性和高过氧化氢的作用下分解,导致系统崩溃,释放 PTX,并产生 Mn 和 O 。在颅内脑胶质瘤大鼠模型中,tLyP-1-CD-DOPA-MnO @PTX 可以有效地穿透血脑屏障并在肿瘤部位积聚。TME 中的缺氧可以通过 MnO 产生的 O 得到缓解,而 Mn 产生的活性氧可以杀死肿瘤细胞。tLyP-1-CD-DOPA-MnO @PTX 纳米粒子通过促进肿瘤细胞凋亡和抑制增殖来发挥显著的抗肿瘤作用,此外还可以通过磁共振成像进行实时肿瘤监测。这种基于 MnO 的治疗药物将为同时增强化疗和实现脑胶质瘤治疗过程的实时成像提供一种新策略。

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