Furtado Ana I, Viveiros Raquel, Bonifácio Vasco D B, Melo André, Casimiro Teresa
Chemistry Department, NOVA School of Science & Technology, LAQV-REQUIMTE, NOVA University of Lisbon, Caparica 2829-516, Portugal.
iBB-Institute for Bioengineering and Biosciences and i4HB-Institute for Health and Bioeconomy, Instituto Superior Técnico, University of Lisbon, Lisboa 1049-001, Portugal.
ACS Omega. 2023 Mar 1;8(10):9179-9186. doi: 10.1021/acsomega.2c05714. eCollection 2023 Mar 14.
Biopurification is a challenging and growing market. Despite great efforts in the past years, current purification strategies still lack specificity, efficiency, and cost-effectiveness. The development of more sustainable functional materials and processes needs to address pressing environmental goals, efficiency, scale-up, and cost. Herein, l-leucine (LEU)-molecularly imprinted polymers (MIPs), LEU-MIPs, are presented as novel biomolecular fishing polymers for affinity sustainable biopurification. Rational design was performed using quantum mechanics calculations and molecular modeling for selecting the most appropriate monomers. LEU-MIPs were synthesized for the first time by two different green approaches, supercritical carbon dioxide (scCO) technology and mechanochemistry. A significant imprinting factor of 12 and a binding capacity of 27 mg LEU/g polymer were obtained for the LEU-MIP synthesized in scCO using 2-vinylpyridine as a functional monomer, while the LEU-MIP using acrylamide as a functional monomer synthesized by mechanochemistry showed an imprinting factor of 1.4 and a binding capacity of 18 mg LEU/g polymer, both systems operating at a low binding concentration (0.5 mg LEU/mL) under physiological conditions. As expected, at a higher concentration (1.5 mg LEU/mL), the binding capacity was considerably increased. Both green technologies show high potential in obtaining ready-to-use, stable, and low-cost polymers with a molecular recognition ability for target biomolecules, being promising materials for biopurification processes.
生物纯化是一个具有挑战性且不断发展的市场。尽管在过去几年付出了巨大努力,但目前的纯化策略仍缺乏特异性、效率和成本效益。开发更具可持续性的功能材料和工艺需要解决紧迫的环境目标、效率、放大规模和成本等问题。在此,l-亮氨酸(LEU)分子印迹聚合物(MIPs),即LEU-MIPs,被作为用于亲和可持续生物纯化的新型生物分子捕获聚合物呈现出来。通过量子力学计算和分子建模进行合理设计,以选择最合适的单体。首次通过两种不同的绿色方法,即超临界二氧化碳(scCO₂)技术和机械化学合成了LEU-MIPs。使用2-乙烯基吡啶作为功能单体制备的在scCO₂中合成的LEU-MIP,获得了12的显著印迹因子和27 mg LEU/g聚合物的结合容量,而通过机械化学合成的使用丙烯酰胺作为功能单体的LEU-MIP显示出1.4的印迹因子和18 mg LEU/g聚合物的结合容量,两个系统均在生理条件下的低结合浓度(0.5 mg LEU/mL)下运行。正如预期的那样,在较高浓度(1.5 mg LEU/mL)下,结合容量显著增加。这两种绿色技术在获得对目标生物分子具有分子识别能力的即用型、稳定且低成本的聚合物方面都具有很高的潜力,是生物纯化过程中有前景的材料。