A multifunctional nutrient transfer nanoCRISPR scaffold induces metabolic remodeling to fuel cancer immunotherapy

IF 13.2 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY Nano Today Pub Date : 2024-08-17 DOI:10.1016/j.nantod.2024.102451
Shiyao Zhou, Yingjie Li, Rui Wu, Tao Chen, Yangsong Xu, Hao Le, Yuting Tang, Qinjie Wu, Changyang Gong
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Abstract

Tumor cells are major consumers of glutamine and glucose in the tumor microenvironment (TME), causing nutrient deficiency of immune cells, leading to immune escape and resistance to immunotherapy. However, pharmacological modulation would cause metabolic inhibition in both immune cells and tumor cells. Herein, a multifunctional nutrient transfer nanoCRISPR scaffold (FUEL) is fabricated to realize “nutrient transfer” from tumor cells to immune cells and remodel the metabolism in the TME, thus fueling cancer immunotherapy. FUEL is endowed with characteristics of enhanced blood circulation, specific tumor cell targeting, effective lysosomal escape, cascaded reactive-oxygen-species (ROS)-responsiveness, and ASCT2/GLUT1 dual gene knockout. Consequently, FUEL can restrict nutrient uptake of tumor cells thoroughly, increase glucose and glutamine in the TME remarkably to satisfy metabolic demands of immune cells, and reduce immunosuppressive metabolites concurrently. Metabolomics data shows that energy metabolism and biosynthesis are reduced in tumor cells but enhanced in immune cells. FUEL remarkably impedes the growth, metastasis, and recurrence of solid tumors in mice, further shows stronger anti-tumor immune responses and enhanced tumor inhibition in combination with anti-PD-L1 antibody. Overall, this nutrient transfer strategy enables a “one arrow aiming at three eagles” effect that induces a cascade amplification of antitumor immune responses for the maximized tumor therapy efficacy.

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多功能营养物质转移纳米CRISPR支架诱导新陈代谢重塑,为癌症免疫疗法提供动力
肿瘤细胞是肿瘤微环境(TME)中谷氨酰胺和葡萄糖的主要消耗者,造成免疫细胞营养缺乏,导致免疫逃逸和对免疫疗法的抵抗。然而,药物调节会导致免疫细胞和肿瘤细胞的代谢抑制。在此,我们制作了一种多功能营养转移纳米CRISPR支架(FUEL),以实现肿瘤细胞向免疫细胞的 "营养转移",重塑TME中的新陈代谢,从而为癌症免疫疗法提供助力。FUEL具有增强血液循环、特异性肿瘤细胞靶向、有效溶酶体逃逸、级联反应性氧物种(ROS)反应性和ASCT2/GLUT1双基因敲除等特点。因此,FUEL 能彻底限制肿瘤细胞对营养物质的摄取,显著增加 TME 中的葡萄糖和谷氨酰胺以满足免疫细胞的代谢需求,同时减少免疫抑制代谢物。代谢组学数据显示,肿瘤细胞的能量代谢和生物合成减少,而免疫细胞的能量代谢和生物合成增强。FUEL 显著抑制了实体瘤在小鼠体内的生长、转移和复发,与抗 PD-L1 抗体联用后,进一步显示出更强的抗肿瘤免疫反应和更强的肿瘤抑制能力。总之,这种营养物质转移策略能产生 "一箭三雕 "的效果,诱导抗肿瘤免疫反应的级联放大,从而实现肿瘤治疗效果的最大化。
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来源期刊
Nano Today
Nano Today 工程技术-材料科学:综合
CiteScore
21.50
自引率
3.40%
发文量
305
审稿时长
40 days
期刊介绍: Nano Today is a journal dedicated to publishing influential and innovative work in the field of nanoscience and technology. It covers a wide range of subject areas including biomaterials, materials chemistry, materials science, chemistry, bioengineering, biochemistry, genetics and molecular biology, engineering, and nanotechnology. The journal considers articles that inform readers about the latest research, breakthroughs, and topical issues in these fields. It provides comprehensive coverage through a mixture of peer-reviewed articles, research news, and information on key developments. Nano Today is abstracted and indexed in Science Citation Index, Ei Compendex, Embase, Scopus, and INSPEC.
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