Tumor-Selective Autophagy Blockade of Renal-Clearable BiS Nanoflowers for Precise Photothermal Therapy.
OpenAlex 토픽 ·
Nanoplatforms for cancer theranostics
Nanoparticle-Based Drug Delivery
Gold and Silver Nanoparticles Synthesis and Applications
Conventional strategies rely on complex surface modifications rather than leveraging the intrinsic biological behavior of nanomaterials to achieve tumor selectivity.
APA
Fene Gao, Xin Li, et al. (2026). Tumor-Selective Autophagy Blockade of Renal-Clearable BiS Nanoflowers for Precise Photothermal Therapy.. ACS nano, 20(15), 11822-11834. https://doi.org/10.1021/acsnano.6c00474
MLA
Fene Gao, et al.. "Tumor-Selective Autophagy Blockade of Renal-Clearable BiS Nanoflowers for Precise Photothermal Therapy.." ACS nano, vol. 20, no. 15, 2026, pp. 11822-11834.
PMID
41943257
Abstract
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, BiS@3-MA, in which BiS nanoflowers are engineered by simple surface conjugation with an MMP2-responsive 3-methyladenine peptide (3-MA) to achieve selective tumor cell death. Midsized BiS@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 BiS 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. BiS@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 BiS 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.
MeSH Terms
Autophagy; Animals; Mice; Humans; Photothermal Therapy; Bismuth; Sulfides; Cell Line, Tumor; Female; Adenine; Tumor Microenvironment; Antineoplastic Agents; Nanostructures; Kidney
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