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A promising platform of hypoxia sensitive magnetosomes in hepatocellular carcinoma therapy.

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Scientific reports 📖 저널 OA 97.3% 2021: 24/24 OA 2022: 32/32 OA 2023: 45/45 OA 2024: 140/140 OA 2025: 938/938 OA 2026: 715/767 OA 2021~2026 2025 Vol.15(1) p. 25031
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Deng K, Wang J, Zhou X, Geng Y, Liu W, Zhang Y

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Here, we engineered hypoxia-responsive nanoparticles (NI-HA-BMs-DOX) comprising 2-nitroimidazole (NI), hyaluronic acid (HA), bacterial magnetosomes (BMs), and doxorubicin (DOX) for targeted drug deliv

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APA Deng K, Wang J, et al. (2025). A promising platform of hypoxia sensitive magnetosomes in hepatocellular carcinoma therapy.. Scientific reports, 15(1), 25031. https://doi.org/10.1038/s41598-025-10353-y
MLA Deng K, et al.. "A promising platform of hypoxia sensitive magnetosomes in hepatocellular carcinoma therapy.." Scientific reports, vol. 15, no. 1, 2025, pp. 25031.
PMID 40646119 ↗

Abstract

Here, we engineered hypoxia-responsive nanoparticles (NI-HA-BMs-DOX) comprising 2-nitroimidazole (NI), hyaluronic acid (HA), bacterial magnetosomes (BMs), and doxorubicin (DOX) for targeted drug delivery. Under tumor hypoxia, the hypoxia-sensitive NI moiety undergoes reduction to 2-aminoimidazole, inducing a transition of the nanoparticles from a hydrophobic to a hydrophilic state, thereby facilitating controlled DOX release. Cellular assays demonstrated selective DOX delivery to HepG2 hepatocellular carcinoma cells under hypoxic conditions, while exhibiting minimal cytotoxicity toward normal hepatocytes (HL-7702). NI-HA-BMs-DOX significantly enhanced tumor cytotoxicity and apoptosis by upregulating caspase-3, caspase-8, and Tp53, demonstrating superior efficacy compared to free DOX and HA-BMs-DOX. In vivo studies further confirmed the therapeutic potential of NI-HA-BMs-DOX (4 mg/kg DOX equivalent), achieving a tumor inhibition rate of 55.38%, which exceeded that of HA-BMs-DOX (43.88%) and free DOX (34.90%). These findings validate NI-HA-BMs-DOX as a promising hypoxia-targeted therapeutic platform for HCC and highlight the potential of bacterial magnetosomes in improving drug delivery strategies for cancer treatment.

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