自噬
光热治疗
肿瘤微环境
化学
癌细胞
细胞生物学
癌症研究
生物物理学
纳米技术
体内分布
肽
细胞内
细胞
肿瘤消融
纳米颗粒
封锁
癌症
癌症治疗
癌症治疗
溶酶体
内化
细胞膜
程序性细胞死亡
细胞培养
胞饮病
材料科学
免疫系统
合理设计
肿瘤进展
效应器
纳米材料
靶向治疗
纳米笼
作者
Fene Gao,Xin Li,Ruirui Zhang,Hui Wang,Longwei Wang,Wanjun Zhang,Xiaoyu Zhang,Jiahui Mao,Yizhi Dai,Zhongwei Yang,Ping Zhang,Jinglong Tang,Chunying Chen,Jing Liu
出处
期刊:ACS Nano
[American Chemical Society]
日期:2026-04-07
卷期号:20 (15): 11822-11834
标识
DOI:10.1021/acsnano.6c00474
摘要
Conventional strategies rely on complex surface modifications rather than leveraging the intrinsic biological behavior of nanomaterials to achieve tumor selectivity. Here, we introduce a biological behavior-driven nanoplatform, Bi2S3@3-MA, in which Bi2S3 nanoflowers are engineered by simple surface conjugation with an MMP2-responsive 3-methyladenine peptide (3-MA) to achieve selective tumor cell death. Midsized Bi2S3@3-MA (370 nm) preferentially accumulates in tumor tissue. In the tumor microenvironment (TME), elevated MMP2 expression cleaves the peptide linker, triggering the TME-specific release of the autophagy inhibitor 3-MA. This tumor-selective autophagy blockade promotes the aggregation of Bi2S3 nanoflowers into micron-scale structures within the acidic lysosomal milieu, culminating in the lysosomal membrane disruption of tumor cells. Furthermore, micron-scale aggregates in tumor cells exhibit enhanced photothermal ablation, overcoming protective autophagy-induced resistance to hyperthermia. In contrast, the rapid renal clearance of pH-responsive degraded particles (pH ∼ 6.5–7.4) minimizes off-target exposure of normal tissues, and protective autophagy preserves the lysosomal integrity of normal cells. Bi2S3@3-MA mediates complete tumor eradication in murine breast cancer models through the synergistic combination of photothermal ablation and autophagy inhibition. Additionally, the inherent CT contrast of Bi2S3 permits real-time visualization of nanoparticle biodistribution and treatment response. Collectively, these results establish a paradigm in which the deliberate integration of intrinsic biological behavior affords highly selective cancer therapy while minimizing systemic toxicity.
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