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用于重编程肿瘤微环境和增强抗肿瘤免疫的 pH 敏感肿瘤趋向性杂化膜包覆的纳米颗粒。

pH-sensitive tumor-tropism hybrid membrane-coated nanoparticles for reprogramming the tumor microenvironment and boosting the antitumor immunity.

机构信息

Guangdong Key Laboratory of Chiral Molecule and Drug Discovery, School of Pharmaceutical Sciences, Sun Yat-sen University, Guangzhou 510006, P R China.

Department of Immunology, Zhongshan School of Medicine, Sun Yat-sen University, Guangzhou 510080, P R China.

出版信息

Acta Biomater. 2023 Aug;166:470-484. doi: 10.1016/j.actbio.2023.05.040. Epub 2023 May 28.


DOI:10.1016/j.actbio.2023.05.040
PMID:37253416
Abstract

Metabolic dysregulation contributes not only to cancer development but also to a tumor immune microenvironment (TIME), which poses great challenges to chemo- and immunotherapy. Targeting metabolic reprogramming has recently emerged as a promising strategy for cancer treatment, but the lethality against solid tumors appears to be fairly restricted, partially due to the poor solubility of small molecule drugs. Herein, we construct a versatile biomimetic nanoplatform (referred to as HM-BPT) employing pH-sensitive tumor-tropism hybrid membrane-coated Manganese oxide (MnO) nanoparticles for the delivery of BPTES, a glutamine metabolism inhibitor. Basically, hybrid membranes consisting of mesenchymal stem cell membranes (MSCm) and pH-sensitive liposomes (pSL) enable the biomimetic nanoplatform to target TME and escape from endo/lysosomes after endocytosis. The results reveal that HM-BPT treatment leads to remarkable tumor inhibition, cytotoxic T lymphocyte (CTL) infiltration, as well as M1 phenotype repolarization and stimulator of IFN genes (STING) pathway activation in macrophages in a 4T1 xenograft model. Furthermore, glutathione (GSH) depletion and oxygen (O) supply synergistically ameliorate the immunosuppressive status of the TME, boosting potent antitumor immune responses. Overall, our study explores an integrated therapeutic platform for TME reprogramming and immune activation, offering tremendous promise for cancer combination therapy. STATEMENT OF SIGNIFICANCE: Metabolic abnormalities and the tumor immune microenvironment (TIME) lead to hyporesponsiveness to conventional therapies, ultimately resulting in refractory malignancies. In the current work, a biomimetic nanoplatform (HM-BPT) was developed for TME metabolic reprogramming in favor of immunotherapy. Particularly, hybrid membrane camouflage endowed the nanoplatform with TME targeting, endo/lysosomal escape, and sensitive release properties. The impact of hybrid membrane fusion ratio on cellular uptake and cell viability was explored, yielding beneficial references for the future development of bioactive nanomaterials. Intravenous administration of HM-BPT substantially relieved tumor burden and restored innate and acquired immune activation in 4T1 xenograft models. In conclusion, the created HM-BPT system has the potential to be a promising nanoplatform for combining cancer therapies.

摘要

代谢失调不仅导致癌症的发生,还导致肿瘤免疫微环境(TIME),这给化疗和免疫治疗带来了巨大的挑战。靶向代谢重编程最近已成为癌症治疗的一种有前途的策略,但对实体瘤的杀伤力似乎相当有限,部分原因是小分子药物的溶解度较差。在此,我们构建了一种多功能仿生纳米平台(称为 HM-BPT),该平台采用 pH 敏感的肿瘤趋向性混合膜包覆的氧化锰(MnO)纳米颗粒来递送谷氨酰胺代谢抑制剂 BPTES。基本上,由间充质干细胞膜(MSCm)和 pH 敏感脂质体(pSL)组成的混合膜使仿生纳米平台能够靶向 TME,并在细胞内吞作用后从内体/溶酶体逃逸。结果表明,HM-BPT 治疗可导致显著的肿瘤抑制、细胞毒性 T 淋巴细胞(CTL)浸润以及 M1 表型重极化和刺激 IFN 基因(STING)途径在 4T1 异种移植模型中的巨噬细胞激活。此外,谷胱甘肽(GSH)耗竭和氧气(O)供应协同改善 TME 的免疫抑制状态,增强有效的抗肿瘤免疫反应。总的来说,我们的研究探索了一种用于 TME 重编程和免疫激活的综合治疗平台,为癌症联合治疗提供了巨大的前景。

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[2]
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Biomedicines. 2025-4-12

[3]
Recent advances in biomimetic nanodelivery systems for cancer Immunotherapy.

Mater Today Bio. 2025-4-5

[4]
Targeting cGAS-STING pathway for reprogramming tumor-associated macrophages to enhance anti-tumor immunotherapy.

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[5]
Homologous-adhering/targeting cell membrane- and cell-mediated delivery systems: a cancer-catch-cancer strategy in cancer therapy.

Regen Biomater. 2024-11-21

[6]
Global research progress of nanomedicine and colorectal cancer: a bibliometrics and visualization analysis.

Front Oncol. 2024-12-6

[7]
Biomimetic nanocarriers in cancer therapy: based on intercellular and cell-tumor microenvironment communication.

J Nanobiotechnology. 2024-10-6

[8]
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J Hematol Oncol. 2024-4-2

[9]
A glutamine tug-of-war between cancer and immune cells: recent advances in unraveling the ongoing battle.

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[10]
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