Department of Pharmaceutics, Utrecht Institute for Pharmaceutical Sciences (UIPS), Utrecht University, Universiteitsweg 99, 3584 CG, Utrecht, the Netherlands.
Department of Nephrology and Hypertension, University Medical Centre Utrecht, 3584 CX, Utrecht, the Netherlands.
Macromol Biosci. 2020 Mar;20(3):e1900396. doi: 10.1002/mabi.201900396. Epub 2020 Feb 17.
The aim of this study is to develop polymeric chemisorbents with a high density of ninhydrin groups, able to covalently bind urea under physiological conditions and thus potentially suitable for use in a wearable artificial kidney. Macroporous beads are prepared by suspension polymerization of 5-vinyl-1-indanone (vinylindanone) using a 90:10 (v/v) mixture of toluene and nitrobenzene as a porogen. The indanone groups are subsequently oxidized in a one-step procedure into ninhydrin groups. Their urea absorption kinetics are evaluated under both static and dynamic conditions at 37 °C in simulated dialysate (urea in phosphate buffered saline). Under static conditions and at a 1:1 molar ratio of ninhydrin: urea the sorbent beads remove ≈0.6-0.7 mmol g and under dynamic conditions and at a 2:1 molar excess of ninhydrin ≈0.6 mmol urea g sorbent in 8 h at 37 °C, which is a step toward a wearable artificial kidney.
本研究旨在开发具有高密度水合茚三酮基团的聚合物化学吸附剂,使其能够在生理条件下与尿素发生共价结合,从而有望用于可穿戴人工肾。采用甲苯和硝基苯(90:10,v/v)混合物作为致孔剂,通过悬浮聚合 5-乙烯基-1-茚满酮(乙烯基茚满酮)制备大孔珠。随后,将茚满酮基团在一步法中氧化成水合茚三酮基团。在 37°C 的模拟透析液(磷酸盐缓冲盐中的尿素)中,分别在静态和动态条件下评估其尿素吸收动力学。在静态条件下,当水合茚三酮:尿素摩尔比为 1:1 时,吸附剂珠可去除约 0.6-0.7 mmol g 的尿素;在动态条件下,当水合茚三酮过量 2:1 摩尔时,在 37°C 下 8 小时内可去除约 0.6 mmol g 吸附剂的尿素,这是朝着可穿戴人工肾迈出的一步。