State Key Laboratory of Fine Chemicals, Dalian University of Technology, Dalian, People's Republic of China.
Leiden Institute of Chemistry, Universiteit Leiden, Leiden, the Netherlands.
Nat Chem. 2023 Jul;15(7):980-987. doi: 10.1038/s41557-023-01199-w. Epub 2023 May 11.
Self-assembling molecular drugs combine the easy preparation typical of small-molecule chemotherapy and the tumour-targeting properties of drug-nanoparticle conjugates. However, they require a supramolecular interaction that survives the complex environment of a living animal. Here we report that the metallophilic interaction between cyclometalated palladium complexes generates supramolecular nanostructures in living mice that have a long circulation time (over 12 h) and efficient tumour accumulation rate (up to 10.2% of the injected dose per gram) in a skin melanoma tumour model. Green light activation leads to efficient tumour destruction due to the type I photodynamic effect generated by the self-assembled palladium complexes, as demonstrated in vitro by an up to 96-fold cytotoxicity increase upon irradiation. This work demonstrates that metallophilic interactions are well suited to generating stable supramolecular nanotherapeutics in vivo with exceptional tumour-targeting properties.
自组装分子药物结合了小分子化疗的制备简便性和药物-纳米粒子缀合物的肿瘤靶向特性。然而,它们需要一种超分子相互作用,使其能够在活体动物的复杂环境中存活。在这里,我们报告说,金属配位钯配合物之间的金属亲合相互作用在活体小鼠中生成超分子纳米结构,这些结构具有长循环时间(超过 12 小时)和在皮肤黑色素瘤肿瘤模型中的高效肿瘤积累率(高达每克注射剂量的 10.2%)。绿光激活由于自组装钯配合物产生的 I 型光动力效应而导致有效的肿瘤破坏,在体外通过照射时高达 96 倍的细胞毒性增加得到证明。这项工作表明,金属亲合相互作用非常适合在体内生成具有优异肿瘤靶向特性的稳定超分子纳米疗法。