Key Laboratory for Organic Electronics and Information Displays and Jiangsu Key Laboratory for Biosensors, Institute of Advanced Materials, Jiangsu National Synergetic Innovation Centre for Advanced Materials, Nanjing University of Posts and Telecommunications, Nanjing 210023, P. R. China.
Key Laboratory for Experimental Teratology of the Ministry of Education and Research Center for Experimental Nuclear Medicine, School of Basic Medical Sciences, Cheeloo College of Medicine, Shandong University, Shandong 250012, P. R. China.
J Mater Chem B. 2023 Dec 6;11(47):11280-11289. doi: 10.1039/d3tb02497k.
The combination of noble metal nanoparticles with metal-organic complexes has attracted great attention for exploring new properties in biomedical application areas. So far, the preparation of noble metal nanoparticle-loaded metal-organic complexes often requires complex processes. Here, a simple coordination-crystallization approach was developed to prepare platinum nanoparticle-anchored metal-organic complexes (Pt-MOCs) by directly mixing disulfiram (DSF), chloroplatinic acid, and a reducing agent. The DSF and Pt ions first coordinate forming metal-organic complex nanospheres and then the Pt nanoparticles crystallized on the surface taking advantage of the coordination rate of the metal ions and organic ligand being greater than the reduction rate of the metal ions. The Pt-MOCs possess uniform and adjustable diameter (240-536 nm), and their surface potentials can also be modulated easily from -22 to +14 mV by adjusting the ratio of DSF and chloroplatinic acid. Phantom experiments show that the Pt-MOC nanospheres significantly improve the efficiency of singlet oxygen production after exposure to ultrasound irradiation. experiments show that the Pt-MOCs effectively produce reactive oxygen species and exhibit superior cytotoxicity for tumor cells under ultrasound irradiation compared to metal-organic complexes (MOCs) or Pt nanoparticles. Taken together, this work reports a coordination-crystallization approach to synthesize Pt-MOCs, which show excellent sonodynamic therapy for tumors.
贵金属纳米粒子与金属有机配合物的结合在探索生物医学应用领域的新性质方面引起了极大的关注。到目前为止,负载贵金属纳米粒子的金属有机配合物的制备通常需要复杂的过程。在这里,通过直接混合戒酒硫(DSF)、氯铂酸和还原剂,开发了一种简单的配位结晶方法来制备负载铂纳米粒子的金属有机配合物(Pt-MOCs)。DSF 和 Pt 离子首先配位形成金属有机配合物纳米球,然后利用金属离子和有机配体的配位速率大于金属离子的还原速率,Pt 纳米晶在表面结晶。Pt-MOCs 具有均匀且可调的直径(240-536nm),其表面电位也可以通过调节 DSF 和氯铂酸的比例很容易地从-22mV 调节到+14mV。幻影实验表明,Pt-MOC 纳米球在超声辐射下显著提高了单线态氧的产率。实验表明,与金属有机配合物(MOCs)或 Pt 纳米粒子相比,Pt-MOCs 在超声辐射下能有效产生活性氧物种,并对肿瘤细胞表现出优异的细胞毒性。总之,这项工作报道了一种配位结晶方法来合成 Pt-MOCs,它对肿瘤具有优异的声动力学治疗效果。