Department of Chemistry, Tarbiat Modares University, P.O. Box 14115-175, Tehran, Iran.
EaStCHEM, School of Chemistry, University of St Andrews, St Andrews, Fife, KY16 9ST Scotland, UK.
Ultrason Sonochem. 2018 Apr;42:594-608. doi: 10.1016/j.ultsonch.2017.12.032. Epub 2017 Dec 16.
In this study, we have reported a biocompatible metal-organic framework (MOF) with ultra-high surface area, which we have shown to have uses as both a cancer treatment delivery system and for environmental applications. Using a sonochemical approach, highly flexible organic HBTCTB and ditopic 4,4'-BPDC ligands, along with modulators of acetic acid and pyridine were combined to prepare a Zn(II)-based metal-organic framework, DUT-32, [ZnO(BPDC)(BTCTB)(DEF)(HO)]. Powder X-ray diffraction (PXRD), field-emission scanning electron microscopy (FE-SEM), and Fourier transform infrared spectroscopy (FTIR) were used to characterize, the particle size, shape, and structure of the DUT-32. To show the effects of shape and size of DUT-32 micro/nano-structures on doxorubicin (DOX) drug release and amoxicillin (AMX) adsorption, time of sonication, initial reagent concentrations, irradiation frequency, and acetic acid to pyridine molar ratios were optimized. The drug-loaded DUT-32 was soaked in simulated body fluid (SBF) and the drug release ratio was monitored through release time to perform in vitro drug release test. A slow and sustained release was observed for DUT-32 micro/nano-structures, having a considerable drug loading capacity. At the pH values 7.4-4.5, various profiles of pH-responsive release were achieved. Also, the prepared DUT-32 micro/nano-structures are found to be biocompatible with PC3 (prostate cancer) and HeLa (cervical cancer) cell lines, when tested by MTT assay. Moreover, DUT-32 micro/nano-structures were studied to show AMX adsorption from aqueous solution. Finally, kinetic studies indicated that AMX adsorption and drug release of DOX via this MOF are of first-order kinetics.
在这项研究中,我们报道了一种具有超高比表面积的生物相容性金属有机骨架(MOF),我们已经证明它既可以作为癌症治疗的输送系统,也可以用于环境应用。我们采用超声化学方法,将高度灵活的有机 HBTCTB 和双齿 4,4'-BPDC 配体与乙酸和吡啶调节剂结合,制备了一种基于 Zn(II)的金属有机骨架 DUT-32,[ZnO(BPDC)(BTCTB)(DEF)(HO)]。粉末 X 射线衍射(PXRD)、场发射扫描电子显微镜(FE-SEM)和傅里叶变换红外光谱(FTIR)用于表征 DUT-32 的粒径、形状和结构。为了展示 DUT-32 微/纳米结构的形状和尺寸对阿霉素(DOX)药物释放和阿莫西林(AMX)吸附的影响,优化了超声时间、初始试剂浓度、辐照频率和乙酸与吡啶摩尔比。将载药的 DUT-32 浸泡在模拟体液(SBF)中,并通过释放时间监测药物释放比来进行体外药物释放试验。观察到 DUT-32 微/纳米结构的缓慢和持续释放,具有相当高的载药能力。在 pH 值 7.4-4.5 下,实现了各种 pH 响应释放的形态。此外,通过 MTT 测定,发现制备的 DUT-32 微/纳米结构与 PC3(前列腺癌)和 HeLa(宫颈癌)细胞系具有生物相容性。此外,研究了 DUT-32 微/纳米结构从水溶液中吸附 AMX 的情况。最后,动力学研究表明,通过这种 MOF 吸附 AMX 和释放 DOX 属于一级动力学。