Institute for Organic Chemistry, Julius-Maximilians University Würzburg, Würzburg, 97074, Germany.
Wilhelm Conrad Röntgen Center for Complex Materials Research (RCCM), Julius-Maximilians University Würzburg, Würzburg, 97074, Germany.
Small. 2019 Nov;15(48):e1901551. doi: 10.1002/smll.201901551. Epub 2019 Jun 17.
Nanodiamond (ND) is a versatile and promising material for bioapplications. Despite many efforts, agglomeration of nanodiamond and the nonspecific adsorption of proteins on the ND surface when exposed to biofluids remains a major obstacle for biomedical applications. Here, the functionalization of detonation nanodiamond with zwitterionic moieties in combination with tetraethylene glycol (TEG) moieties immobilized by click chemistry to improve the colloidal dispersion in physiological media with strong ion background and for the simultaneous prevention of nonspecific interactions with proteins is reported. Based on five building blocks, a series of ND conjugates is synthesized and their performance is compared in biofluids, such as fetal bovine serum (FBS) and Dulbecco's modified Eagle medium (DMEM). The adsorption of proteins is investigated via dynamic light scattering (DLS) and thermogravimetric analysis. The colloidal stability is tested with DLS monitoring over prolonged periods of time in various ratios of water/FBS/DMEM and at different pH values. The results show that zwitterions efficiently promote the anti-fouling properties, whereas the TEG linker is essential for the enhanced colloidal stability of the particles.
纳米金刚石(ND)是一种在生物应用中用途广泛且有前途的材料。尽管已经做出了许多努力,但在暴露于生物流体时,纳米金刚石的团聚和蛋白质在 ND 表面的非特异性吸附仍然是生物医学应用的主要障碍。在这里,通过点击化学将两性离子部分与四乙二醇(TEG)部分固定在爆炸纳米金刚石上,以改善在具有强离子背景的生理介质中的胶体分散性,并同时防止与蛋白质的非特异性相互作用,从而对其进行了功能化。基于五个构建块,合成了一系列 ND 缀合物,并在生物流体(如胎牛血清(FBS)和 Dulbecco 改良 Eagle 培养基(DMEM))中对它们的性能进行了比较。通过动态光散射(DLS)和热重分析研究了蛋白质的吸附。通过 DLS 监测,在不同的水/FBS/DMEM 比例和不同的 pH 值下,对胶体稳定性进行了长时间的测试。结果表明,两性离子可有效提高抗污染性能,而 TEG 接头对于提高颗粒的胶体稳定性是必不可少的。