Bioinspired miRNA-Responsive Ca<sup>2+</sup> Nanoregulator with Dual Interference Pathways and Self-Amplifying Cascade for Tumor-Targeted Mitochondrial Dysfunction.
basic_science · Level V
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- Record sourced from PubMed, PMID 41376517.
- Also identified by DOI 10.1021/acsnano.5c19706.
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Abstract
Disrupting mitochondrial calcium ion (Ca<sup>2+</sup>) homeostasis in tumor cells has emerged as a potent anticancer strategy, however, achieving precise, spatiotemporal control of mitochondrial Ca<sup>2+</sup> overload poses a significant challenge. Herein, we present a bioinspired miRNA-responsive Ca<sup>2+</sup> nanoregulator (Cu<sub>2</sub>O@Dz) that orchestrates endogenous ion flux through a multistage cascade to induce tumor-specific mitochondrial dysfunction. In this design, hairpin-structured DNAzymes (Dz) are conjugated to cuprous oxide (Cu<sub>2</sub>O) nanoparticles: within the acidic and H<sub>2</sub>O<sub>2</sub>-rich tumor microenvironment, the Cu<sub>2</sub>O core catalyzes site-specific Fenton-like reactions to generate hydroxyl radicals (•OH), which activate TRPA1 channels on the cell membrane and thereby trigger a robust influx of extracellular Ca<sup>2+</sup>. Concurrently, the Dz component functions as a dual-mode biosensor-actuator: recognition of overexpressed miRNA-21 produces a fluorescent signal for real-time diagnosis monitoring, while cleavage of miRNA-25 alleviates suppression of the mitochondrial calcium uniporter (MCU), thereby promoting mitochondrial Ca<sup>2+</sup> uptake. The synergistic coupling of a TRPA1-mediated cytosolic Ca<sup>2+</sup> surge with MCU-driven mitochondrial import establishes a unidirectional Ca<sup>2+</sup> gradient, culminating in irreversible mitochondrial Ca<sup>2+</sup> overload and potent tumor cell apoptosis. This work not only demonstrates an efficiently spatiotemporal coordination of dual ion-interference pathways for precision targeting but also establishes a versatile framework for organelle specific modulation of pathological ion fluxes in precision oncology.
Medical subject headings
- MicroRNAs
- Calcium
- Mitochondria
- Nanoparticles