Utilize este identificador para referenciar este registo: http://hdl.handle.net/10362/184701
Título: Sustainable development of dual–templating molecularly imprinted polymers for biopurification
Autor: Furtado, Ana I.
Lobato, Diogo
Bonifácio, Vasco D. B.
Viveiros, Raquel
Casimiro, Teresa
Palavras-chave: Biorecognition
Bioseparation
Dual–templating
Molecularly imprinted polymers
Solid–phase extraction
Supercritical carbon dioxide
Synthetic affinity materials
Catalysis
Electronic, Optical and Magnetic Materials
Biomaterials
Polymers and Plastics
Colloid and Surface Chemistry
Materials Chemistry
Data: Mar-2025
Resumo: The demand for bio–based products is increasing, but the development of efficient purification processes is lagging. However, typically these processes are expensive, non–specific and/or lack of efficiency. Molecularly imprinted polymers (MIPs) are synthetic affinity materials able to mimic the molecular recognition ability of natural molecules, offering a cost–effective alternative to replace the commercial affinity–driven materials based on proteins and antibodies. In this work, MIPs were developed using supercritical carbon dioxide (scCO2) technology using two approaches: i) one–templating (O–MIPs), using L–leucine (LEU) as template, and ii) a dual–templating (D–MIPs), using LEU and L–lysine (LYS) as templates, to evaluate their potential in the molecular recognition of amino acids in simple and complex aqueous solutions. MIPs produced in scCO2 have already shown good performances in organic and aqueous solutions, for small and non–polar template molecules. Herein, their applicability is extended to amino acids but also proteins. MIPs were produced using 2–vinylpyridine (VP) as functional monomer and ethylene glycol dimethacrylate (EGDMA) as crosslinker under scCO2 conditions. Polymers were obtained as white, ready–to–use dry powders. Their affinity performance was assessed by Static Binding Tests (SBTs) and Solid Phase Extraction (SPE) assays using different amino acids and proteins. The best SBT results was obtained by D–MIP with Qmax = 216 mg LEU + LYS/g D–MIP, and IFmax = 8.3. D–MIP also presented higher binding capacities to adsorb their templated–molecules by a dynamic process (SPE) (Qmax = 79 mg LEU + LYS/g D–MIP), and selectively bind their templates in a solution containing a protein (IFmax = 6.8). The green D–MIP provides a robust, tailor–made and sustainable alternative for biopurification processes.
Descrição: Funding Information: The authors would like to thank financial support from Fundação para a Ciência e a Tecnologia, Ministério da Ciência, Tecnologia e Ensino Superior (FCT/MCTES, Portugal), through projects PTDC/EQU–EQU/32473/2017, and PTDC/MEC–ONC/29327/2017. A.I.F. acknowledges her PhD grant (SFRH/BD/150696/2020) in the aim of the International Year of the Periodic Table – a Protocol established between the Portuguese Chemical Society (SPQ) and FCT/MCTES. R.V. would like to acknowledge for her Individual Support from Scientific Employment Stimulus (CEEC–IND, 2020.00377.CEECIND) from FCT/MCTES. The Associate Laboratory Research Unit for Green Chemistry – Clean Technologies and Processes – LAQV–REQUIMTE is financed by national funds from FCT/MCTES (10.54499/LA/P/0008/2020, 10.54499/UIDP/50006/2020, and 10.54499/UIDB/50006/2020). Publisher Copyright: © 2025 The Author(s)
Peer review: yes
URI: http://hdl.handle.net/10362/184701
DOI: https://doi.org/10.1016/j.mtchem.2025.102586
ISSN: 2468-5194
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