Life sciences · Journal article
Langmuir · September 28, 2026
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Abstract Multifunctional nonviral gene carriers face the challenge of reconciling efficient DNA condensation, fluorescence traceability, controlled intracellular release, and phototherapeutic activity within a single platform. To address this, we constructed a surface-functionalized porphyrinic metal–organic framework nanocarrier, PCN–PFN, by covalently grafting polyethylenimine-derived fluorescent carbon dots (PFN) onto PCN-224. This design creates spatially distributed cationic domains on a rigid porphyrinic scaffold, combining accessible amine groups and intrinsic fluorescence with the structural integrity and light-responsive functions of the MOF framework. PCN–PFN achieved approximately 90% DNA binding efficiency at a carrier/DNA mass ratio of 2:1, protected DNA from DNase I degradation, reduced nonspecific protein adsorption, and exhibited favorable cytocompatibility. The complexes showed acid-accelerated DNA release and enabled label-free visualization of cellular uptake. In 293T cells, PCN–PFN/DNA mediated a transfection efficiency of 81.88%, surpassing that of PFN/DNA. Under 808 nm irradiation, PCN–PFN exhibited a quantifiable photothermal effect with a conversion efficiency of 35.37%; short-term irradiation selectively enhanced transfection in HeLa cells (from 50.03% to 63.56%) but not in 293T cells. Combined 660 and 808 nm irradiation generated both reactive oxygen species and photothermal heating, achieving superior cancer cell elimination over either single-wavelength treatment. Collectively, these findings establish covalent carbon-dot functionalization as a versatile strategy to integrate traceable gene delivery, light-assisted transfection, and combined photodynamic/photothermal therapy within a porphyrinic MOF nanocarrier.