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γ-谷氨酰转肽酶激活型纳米探针经血脑屏障用于脑胶质瘤免疫声动力学治疗。

γ-Glutamyl transpeptidase-activable nanoprobe crosses the blood-brain barrier for immuno-sonodynamic therapy of glioma.

机构信息

Nanomedicine Research Center, The Third Affiliated Hospital of Sun Yat-sen University, Guangzhou, 510630, China.

Department of Radiology, The Sixth Affiliated Hospital of Sun Yat-sen University, Guangzhou, 510655, China.

出版信息

Nat Commun. 2024 Nov 29;15(1):10418. doi: 10.1038/s41467-024-54382-z.

Abstract

Effective treatment against glioma remains challenging nowadays because the protective blood-brain barrier (BBB) impedes drug penetration into brain and the limited efficacy of conventional chemotherapy. While strong positively charged nanoparticles have good permeability through the BBB, they often come with the caveat of cationic toxicity to healthy tissues and organs during blood circulation. Here we show a neutrally charged nanoprobe with a surface decorated with γ-glutamyl moieties that can be cleaved by γ-glutamyl transpeptidase, an enzyme overexpressed on brain capillaries. Upon the cleavage, positively charged primary amines are generated, facilitating the effective crossing of the nanoprobe through BBB via the adsorption-mediated transcytosis pathway, while avoiding the caveat of cationic toxicity. In addition, when reaching the acidic tumor microenvironment, the nanoprobe co-encapsulating sonosensitizer and immune agonist swells, which results in an accelerated drug release under ultrasound irradiation to induce a combined immune response, ultimately leading to a robust anticancer effect. Overall, we report an effective drug delivery nanoplatform across the BBB for an enhanced therapy of glioma.

摘要

目前,针对神经胶质瘤的有效治疗仍然具有挑战性,因为保护性的血脑屏障 (BBB) 阻碍了药物渗透到大脑中,并且传统化疗的效果有限。虽然带正电荷的纳米颗粒具有良好的 BBB 通透性,但它们在血液循环过程中往往伴随着阳离子毒性对健康组织和器官的风险。在这里,我们展示了一种带负电荷的纳米探针,其表面装饰有 γ-谷氨酰基部分,可被 γ-谷氨酰转肽酶切割,该酶在脑毛细血管中过度表达。在切割后,会产生带正电荷的伯胺,从而通过吸附介导的胞吞作用途径促进纳米探针有效地穿过 BBB,同时避免阳离子毒性的风险。此外,当到达酸性肿瘤微环境时,共包封声敏剂和免疫激动剂的纳米探针会膨胀,从而在超声照射下加速药物释放,以诱导联合免疫反应,最终实现强大的抗癌效果。总的来说,我们报告了一种有效的跨 BBB 药物递送纳米平台,用于增强神经胶质瘤的治疗。

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