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Cryogels are a distinct class of macroporous polymeric materials formed through cryopolymerization, where precursor monomers and polymers undergo polymerization and cross-linking under freezing conditions. Unlike conventional hydrogels, which exhibit nanoscale porosity and are synthesized at ambient temperatures, cryogels feature interconnected micrometer-sized pores that confer unique mechanical, structural, and functional properties. Their high porosity, rapid hydration, and efficient mass transport make them highly desirable for tissue engineering, biosensing, drug delivery, and environmental remediation applications. However, a critical challenge remains a comprehensive understanding of the intricate relationships among synthesis parameters, microstructure, and functional performance. This review provides a systematic discussion of cryogel properties, with a focus on their mechanical resilience, biocompatibility, and shape recovery behavior. We examine recent advancements in characterization techniques, including in situ imaging, advanced rheological assessments, and machine learning-assisted porosity evaluation, which have significantly improved our ability to assess cryogel performance. Additionally, we review the biophysical characterization of cryogels composed of different polymer systems, elucidating structure-property correlations in pore architecture and cellular interactions. Expanding beyond traditional biomedical applications, we briefly describe the emerging potential of cryogels in biosensors, soft robotics, and environmental sustainability, emphasizing the importance of an integrated approach that links the structure to functional outcomes. By providing a detailed discussion of established and cutting-edge characterization methodologies, this perspective is a valuable resource for researchers striving to develop next-generation cryogels with precisely tailored properties for specialized applications.
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http://dx.doi.org/10.1021/acsomega.5c02863 | DOI Listing |
Carbohydr Polym
November 2025
Frontiers Science Center for Deep Ocean Multispheres and Earth System, Key Laboratory of Marine Chemistry Theory and Technology Ministry of Education Ocean University of China, Qingdao 266100, China; Sanya Oceanographic Institution Ocean University of China, Sanya 572024, China. Electronic address:
Developing three-dimensional composite materials with high adsorption capacity, environmentally friendliness, and facile processability is essential for removing organic dyes from wastewater and enhancing ecological protection. In this study, a Friedel-Crafts alkylation reaction was employed to introduce multiple double bonds into the benzene ring of dopamine hydrochloride monomer, resulting in dopamine triacrylamide (DAHAM) compounds. Dopamine triacrylamide crosslinked chitosan (CTS)/polyacrylic acid (PAA) cryogels (CTS/PAA@DAHAM) were prepared to achieve efficient and specific adsorption of anionic dyes.
View Article and Find Full Text PDFMater Today Bio
October 2025
School of Medicine, Health Sciences Centre, University College Dublin, Belfield, Dublin 4, Ireland.
Spinal cord injury (SCI) is a devastating condition for which no curative therapy is currently available. The pathology of SCI is underscored by an inflammatory lesion at the site of injury that exacerbates damage and impedes recovery. Immunomodulation is a promising strategy for SCI repair and thus there is enhanced focus on identifying and testing novel immunotherapeutics.
View Article and Find Full Text PDFACS Omega
August 2025
Symbiosis Centre for Stem Cell Research, Symbiosis International (Deemed University), Pune 412115, India.
Cryogels are a distinct class of macroporous polymeric materials formed through cryopolymerization, where precursor monomers and polymers undergo polymerization and cross-linking under freezing conditions. Unlike conventional hydrogels, which exhibit nanoscale porosity and are synthesized at ambient temperatures, cryogels feature interconnected micrometer-sized pores that confer unique mechanical, structural, and functional properties. Their high porosity, rapid hydration, and efficient mass transport make them highly desirable for tissue engineering, biosensing, drug delivery, and environmental remediation applications.
View Article and Find Full Text PDFInt J Biol Macromol
August 2025
Department of Food Science and Technology, School of Agriculture, Shiraz University, Shiraz, Iran. Electronic address:
Application of hydrophilic biopolymers to structure the oil through oleogelation can be accomplished using indirect methods. Accordingly, in the present study, foam-templated oleogel based on phycocyanin (PC), fucoidan, and xanthan gum (XG), co-stabilized by beeswax, was fabricated. The results showed that PC had a remarkable capacity to form foam.
View Article and Find Full Text PDFGels
August 2025
Department of Medical Services and Techniques, Vocational School of Health Services, Mardin Artuklu University, 47100 Mardin, Turkey.
Catalase is a pivotal antioxidant enzyme that decomposes hydrogen peroxide and reduces oxidative stress. However, its low thermal and operational stability limits applications in challenging environments, particularly those contaminated with emerging pollutants such as polystyrene-based microplastics (PS-MPs). In this study, cryogels composed of Poly(2-hydroxyethyl methacrylate-co-allyl glycidyl ether) [Poly(HEMA-co-AGE)] were synthesized and evaluated as immobilization matrices to enhance catalase stability.
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