Activatable Nanovesicle Rewires Immunometabolic Barriers for NIR-II Photoacoustic-Guided Sono-immunotherapy of Glioblastoma

Abstract Glioblastoma (GBM) remains largely refractory to immunotherapy owing to a restrictive brain tumor niche that limits therapeutic access and fosters persistent immune evasion. Here, we present a programmed nanovesicle to sequentially overcome biological barriers and rewire the immune landscape of GBM. The system integrates genetically engineered cytomembrane vesicles displaying a matrix metalloproteinase-responsive Ang2-CD47 nanobody fusion with sono-activatable albumin nanocages coencapsulating a CD73 inhibitor (APCP) and an organic sonosensitizer. Ang2-mediated engagement of low-density lipoprotein receptor-related protein 1 enables blood–brain barrier translocation, whereas proteolytic shedding of the Ang2 corona within the tumor milieu promotes intratumoral retention and unmasks the CD47 nanobody to block the CD47-SIRPα phagocytosis checkpoint. Upon sono-irradiation, the nanovesicle induces sonodynamic cytotoxicity and immunogenic cell death, while triggering self-dissociation for on-demand APCP release. The released APCP further suppresses the CD73-adenosine axis, rescuing effector immune cells from adenosine-mediated dysfunction. These coordinated processes establish a self-reinforcing immune cascade that reprograms GBM into an immunologically permissive niche. Notably, the sonosensitizer possesses NIR-II photoacoustic activity, enabling high-resolution imaging of deep-seated tumors. This nanovesicle elicits durable antitumor efficacy and robust immune remodeling in aggressive and recurrent orthotopic GBM models, offering a promising paradigm for dismantling immunotherapeutic resistance in malignant brain tumors.

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Publication Details

Journal
Journal of the American Chemical Society
Published
2026-10-05
DOI
https://doi.org/10.1021/jacs.6c13917
Primary Topic
Nanoplatforms for cancer theranostics
Type
article
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article

Activatable Nanovesicle Rewires Immunometabolic Barriers for NIR-II Photoacoustic-Guided Sono-immunotherapy of Glioblastoma

Mengjie Ye, Ji Qi, Mengyun Liang, Jianwen Song et al.
Journal of the American Chemical Society
Nanoplatforms for cancer theranostics
article

Activatable Nanovesicle Rewires Immunometabolic Barriers for NIR-II Photoacoustic-Guided Sono-immunotherapy of Glioblastoma

Mengjie Ye, Ji Qi, Mengyun Liang, Jianwen Song, Wen Li, Yongyou Tao, Xueping Li, Hanwen Liu, Yuan Zhang, Ershuang Li, Lu Zhang
article en

Abstract

Abstract Glioblastoma (GBM) remains largely refractory to immunotherapy owing to a restrictive brain tumor niche that limits therapeutic access and fosters persistent immune evasion. Here, we present a programmed nanovesicle to sequentially overcome biological barriers and rewire the immune landscape of GBM. The system integrates genetically engineered cytomembrane vesicles displaying a matrix metalloproteinase-responsive Ang2-CD47 nanobody fusion with sono-activatable albumin nanocages coencapsulating a CD73 inhibitor (APCP) and an organic sonosensitizer. Ang2-mediated engagement of low-density lipoprotein receptor-related protein 1 enables blood–brain barrier translocation, whereas proteolytic shedding of the Ang2 corona within the tumor milieu promotes intratumoral retention and unmasks the CD47 nanobody to block the CD47-SIRPα phagocytosis checkpoint. Upon sono-irradiation, the nanovesicle induces sonodynamic cytotoxicity and immunogenic cell death, while triggering self-dissociation for on-demand APCP release. The released APCP further suppresses the CD73-adenosine axis, rescuing effector immune cells from adenosine-mediated dysfunction. These coordinated processes establish a self-reinforcing immune cascade that reprograms GBM into an immunologically permissive niche. Notably, the sonosensitizer possesses NIR-II photoacoustic activity, enabling high-resolution imaging of deep-seated tumors. This nanovesicle elicits durable antitumor efficacy and robust immune remodeling in aggressive and recurrent orthotopic GBM models, offering a promising paradigm for dismantling immunotherapeutic resistance in malignant brain tumors.

Journal of the American Chemical Society
Chinese Academy of Medical Sciences & Peking Union Medical College (CN), Nankai University (CN)
Openalex Percentile: Top 23%
Nanoplatforms for cancer theranostics
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