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Self-assembled nano-multiple warheads: A precise targeting platform for combinatorial chemotherapy, PTT and PDT
Zhihao Chen1, Mengru Wu1, Qianwen Ren1
1School of Pharmaceutical Sciences & Institute of Materia Medica, Shandong First Medical University & Shandong Academy of Medical Sciences, National Key Laboratory of Advanced Drug Delivery System, Key Laboratory for Biotechnology Drugs of National Health Commission (Shandong Academy of Medical Sciences), Key Lab for Rare & Uncommon Diseases of Shandong Province, Jinan, 250117, Shandong, China.
Abstract:
Combination therapy tactics that incorporate numerous therapies via innovative multi-drug co-loaded nanomedicine delivery systems have shown considerable benefits in crossing the blood-brain barrier (BBB) and slowing glioma growth. However, efficiently developing multi-drug co-loaded delivery systems with high drug loading capacity, the ability to alleviate drug resistance, and minimal in vivo toxicity remains a significant problem. In this study, we created a self-assembling nanomedicine delivery system using a DIPF composite encapsulated with polydopamine and folate. The nanoparticles have an internally coated self-assembled structure that is assembled via electrostatic interactions, π-π stacking, and hydrophobic interactions between doxorubicin (DOX) and indocyanine green (ICG). This achieves high encapsulation efficiency and loading content for the co-delivery of multiple drugs. In this delivery system, the encapsulation efficiencies of DOX and ICG reached 94.08% and 94.01%, respectively, while the inherent cardiotoxicity of DOX was reduced by 64.33%. H&E staining results and anti-tumor experimental outcomes-including expression of TNF-α, Ki67, Caspase-3, and GFAP cytokines-clearly demonstrated that combined DIPF+NIR therapy significantly inhibited tumor growth and substantially extended survival. The highly efficient multi-drug co-loaded delivery system developed here demonstrates significant application potential for active targeting, controlled drug release, treatment visualization, and combined chemotherapy, photothermal (PTT), and photodynamic (PDT) therapy for brain tumors.

