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Anatomic Line Cryogel Muscle & Joint Pain Relief Gel for Back, Neck & Shoulders Ache 100ml

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He, Y.; Wang, C.; Wang, C.; Xiao, Y.; Lin, W. An overview on collagen and gelatin-based cryogels: Fabrication, classification, properties and biomedical applications. Polymers 2021, 13, 2299. [ Google Scholar] [ CrossRef]

Zhao, W.G.; Cao, S.Y.; Cai, H.X.; Wu, Y.; Pan, Q.; Lin, H.; Fang, J.; He, Y.Y.; Deng, H.B.; Liu, Z.H. Chitosan/silk fibroin biomimic scaffolds reinforced by cellulose acetate nanofibers for smooth muscle tissue engineering. Carbohydr. Polym. 2022, 298, 120056. [ Google Scholar] [ CrossRef] [ PubMed] Yetiskin, B.; Akinci, C.; Okay, O. Cryogelation within cryogels: Silk fibroin scaffolds with single-, double- and triple-network structures. Polymer 2017, 128, 47–56. [ Google Scholar] [ CrossRef] R. Gellert, Inorganic mineral materials for insulation in buildings, in Materials for Energy Efficiency and Thermal Comfort in Buildings, Elsevier, 2010, pp. 193–228 Search PubMed.While cryogels have been investigated by researchers for decades, they are now finding applications in a broad range of biomedical settings due to their interconnected porosity and advantageous properties. A major advantage of cryogels is their low-cost manufacturing due to the medium of porogens commonly used being water, and relatively low amounts of reagent required. However, there are issues when considering scaling up cryogel syntheses.

The scientific community is especially interested in using these properties in specific drug-delivery systems; the potential of using polysaccharide-based specific drug-delivery systems in the colon has been explored [43], as within the colon are many polysaccharides and a large number of bacteria which secrete enzymes [41]. Within this work, varying the concentration of various pH-sensitive polymers was considered in terms of swelling, and it was shown that abrupt changes in swelling could be obtained at a specific pH while using materials compatible with the colon. Also, assessing swelling as a function of NaCl concentration began to explore osmotic interactions of hydrogels, adding to the consideration of environmental conditions and providing data in a region often overlooked in these types of studies.Kundu, B.; Kundu, S.C. Bio-inspired fabrication of fibroin cryogels from the muga silkworm Antheraea assamensis for liver tissue engineering. Biomed. Mater. 2013, 8, 055003. [ Google Scholar] [ CrossRef] [ PubMed] M. V. Khedkar, S. B. Somvanshi, A. V. Humbe and K. Jadhav, Surface modified sodium silicate based superhydrophobic silica aerogels prepared via ambient pressure drying process, J. Non-Cryst. Solids, 2019, 511, 140–146 CrossRef CAS. Here, we discuss emerging areas for cryogel application, including recent advancements in the use of cryogels in 3D printing, injectable cryogels, drug delivery and wound healing applications. It should be noted that whilst this section contains reference to tissue engineering, expansive detail on the subject matter is beyond the scope of this review. 5.1. 3D-Bioprinting of cryogels Stimuli-responsive properties are often desirable for biomaterials used in drug-delivery applications. Here, we focus on temperature and solution pH response of cryogels as detailed below. 3.1. Temperature-responsive cryogels Yetiskin, B.; Okay, O. High-strength silk fibroin scaffolds with anisotropic mechanical properties. Polymer 2017, 112, 61–70. [ Google Scholar] [ CrossRef]

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