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Biology subjects

Jiang, J.-G.

Publications and source records attributed to Jiang, J.-G..

2 recordsLinked to original sources

Fucoidan-Copper Nanoparticles to Potentiate Synergistic Cancer Cell Cuproptosis and Immunotherapy

Cuproptosis, a newly characterized form of regulated cell death initiated by copper binding to lipoylated components of the tricarboxylic acid cycle, presents a promising target for cancer therapy. Here, we report the development of fucoidan-copper nanoparticles (Fu-Cu) that exploit this mechanism to selectively induce cytotoxicity in HuH-7 liver cancer cells. The Fu-Cu was synthesized using fucoidan, a sulfated polysaccharide with inherent anticancer properties, as a natural nanocarrier for copper ions. Characterization confirmed successful copper incorporation and the formation of stable nanoparticles. Fu-Cu treatment enhanced intracellular copper levels and oxidative stress, triggering cuproptosis mediated by mitochondrial carrier homolog 2. Knockout of ferredoxin 1 in HuH-7 cells mitigated the cytotoxic effects, underscoring its critical role in copper-induced cell death. In vivo studies using a subcutaneous tumor model in BALB/c nude mice demonstrated that Fu-Cu effectively inhibited tumor growth and stimulated antitumor immunity, evidenced by increased infiltration of T cells, natural killer cells, and macrophages within the tumor microenvironment. These findings highlight Fu-Cu as a novel therapeutic strategy for HCC, leveraging the mechanism of cuproptosis and immune activation to suppress tumor progression.

cancer biology↗

Fe3O4 nanoparticles shell amplify charge-extraction efficiency in Dunaliella photovoltaics

Microbial biophotovoltaics (BPVs) harness photosynthetic microorganisms to convert light energy into electricity, making them highly attractive for renewable energy production. However, current BPVs typically exhibit low power densities, primarily due to inefficient electron transfer processes and the need for close contact and high interfacial area. Here, we propose a novel method of enhancing Dunaliella-based BPVs using Fe3O4 nanoparticle coatings. The Fe3O4-coated Dunaliella cells (DS@Fe3O4) establish intimate contact with the cellular electron transfer machinery and maximize the interfacial area, significantly improving electron transfer efficiency and reducing internal resistance. This approach achieved higher power outputs compared to native Dunaliella BPVs, with an optimal Fe3O4 concentration of 2 mg/mL yielding the best performance. In contrast, SiO2 coatings on Fe3O4 (Fe3O4@SiO2) reduced electron transfer efficiency. These findings demonstrate that Fe3O4 nanoparticle coatings provide a superior method for enhancing bio-electrochemical systems, advancing the application of BPVs for sustainable energy solutions and environmental applications.

microbiology↗