College of Bioresources Chemical and Materials Engineering, Shaanxi University of Science and Technology, Xi'an 710021, China.
College of Bioresources Chemical and Materials Engineering, Shaanxi University of Science and Technology, Xi'an 710021, China.
Carbohydr Polym. 2022 Oct 15;294:119835. doi: 10.1016/j.carbpol.2022.119835. Epub 2022 Jul 8.
The acquisition of efficient protein isolation substances is vital for proteomic research, whereas it's still challenging nowadays. Herein, an elaborately designed protein imprinted material based on a bacterial cellulose@ZIF-67 composite carrier (BC@ZIF-67) is proposed for the first time. In particular, due to the ultrafine fiber diameter and abundant hydroxyl functional groups of the bacterial cellulose, BC@ZIF-67 presented a compact arrangement structure similar to a pearl necklace, which greatly promoted template immobilization and mass transfer resistance in protein imprinting technology. Therefore, the protein-imprinted material (BC@ZIF-67@MIPs) fabricated by surface imprinting technology and template immobilization strategy could exhibit ultrahigh adsorption capacity (1017.0 mg g), excellent recognition (IF = 5.98) and rapid adsorption equilibrium time (50 min). In addition, based on the experiment outcomes, our team employed BC@ZIF-67@MIPs to enrich template protein in blended protein solutions and biosamples, identifying them as underlying candidates for isolating and purifying proteins.
高效蛋白质分离物质的获取对蛋白质组学研究至关重要,但目前这仍然具有挑战性。在此,我们首次提出了一种基于细菌纤维素@ZIF-67 复合载体的精心设计的蛋白质印迹材料(BC@ZIF-67)。具体而言,由于细菌纤维素具有超精细的纤维直径和丰富的羟基官能团,BC@ZIF-67 呈现出类似于珍珠项链的紧密排列结构,这极大地促进了蛋白质印迹技术中的模板固定化和传质阻力。因此,通过表面印迹技术和模板固定化策略制备的蛋白质印迹材料(BC@ZIF-67@MIPs)表现出超高的吸附容量(1017.0 mg g)、优异的识别能力(IF = 5.98)和快速的吸附平衡时间(50 min)。此外,基于实验结果,我们团队使用 BC@ZIF-67@MIPs 从混合蛋白质溶液和生物样品中富集模板蛋白,将其鉴定为分离和纯化蛋白质的潜在候选物。