Key Laboratory of Environment and Health, Ministry of Education & Ministry of Environmental Protection, State Key Laboratory of Environmental Health (Incubation), School of Public Health, Tongji Medical College, Huazhong University of Science and Technology , Hangkong Road #13, Wuhan, Hubei 430030, China.
Department of Biomedical Sciences, Faculty of Health and Society, Malmö University , SE20506 Malmö, Sweden.
ACS Appl Mater Interfaces. 2016 Nov 9;8(44):30484-30491. doi: 10.1021/acsami.6b10131. Epub 2016 Oct 26.
This work describes the preparation and investigation of molecularly imprinted polymer (MIP) microgel (MG) stabilized Pickering emulsions (PEs) for their ability to catalyze the formation of disulfide bonds in peptides at the O/W interface. The MIP MGs were synthesized via precipitation polymerization and a programmed initiator change strategy. The MIP MGs were characterized using DLS analysis, SEM measurement, and optical microscopy analysis. The dry and wet MIP MGs showed a hydrodynamic diameter of 100 and 280 nm, respectively. A template rebinding experiment showed that the MIP MGs bound over two times more template (24 mg g) compared to the uptake displayed by a nonimprinted reference polymer (NIP) MG (10 mg g) at saturation. Using the MIP MGs as stabilizers, catalytic oxidation systems were prepared by emulsifying the oil phase and water phase in the presence of different oxidizing agents. During the cyclization, the isolation of the thiol precursors and the oxidizing reagents nonselectively decreased the formation of the byproducts, while the imprinted cavities on the MIP MGs selectively promoted the intramolecular cyclization of peptides. When I was used as the oxidizing agent, the MIP-PE-I system showed a product yield of 50%, corresponding to a nearly 2-fold increase compared to that of the nonimprinted polymer NIP-PE-I system (26%). We believe the interfacial catalysis system presented in this work may offer significant benefits in synthetic peptide chemistry by raising productivity while suppressing the formation of byproducts.
本工作描述了分子印迹聚合物(MIP)微凝胶(MG)稳定的Pickering 乳液(PE)的制备和研究,以考察其在 O/W 界面处催化二硫键形成的能力。MIP MG 通过沉淀聚合和程序引发剂变化策略合成。通过 DLS 分析、SEM 测量和光学显微镜分析对 MIP MG 进行了表征。干态和湿态 MIP MG 的水动力学直径分别为 100nm 和 280nm。模板再结合实验表明,MIP MG 结合的模板(24mg g)比非印迹参考聚合物(NIP)MG(10mg g)在饱和时的吸附量多两倍以上。使用 MIP MG 作为稳定剂,在存在不同氧化剂的情况下,将油相和水相乳化制备催化氧化体系。在环化过程中,巯基前体和氧化试剂的非选择性隔离降低了副产物的形成,而 MIP MG 上的印迹空穴选择性地促进了肽的分子内环化。当 I 用作氧化剂时,MIP-PE-I 体系的产物收率为 50%,与非印迹聚合物 NIP-PE-I 体系(26%)相比,几乎增加了一倍。我们相信,本工作中提出的界面催化体系在提高生产率的同时抑制副产物的形成,可能会在合成肽化学中带来显著的益处。