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The choice of sterilization method for hydrogels used for cell culture influences the ease of preparing the gel. We prepared interpenetrating gelatin/calcium alginate hydrogels containing 1% (w/v) alginate and 1-16% (w/v) gelatin by molding with the mixture of gelatin/sodium alginate solution, followed by the addition of calcium ions by incubation in calcium chloride solution. It is the simplest method to prepare autoclavable gelatin/sodium hydrogel. We measured various properties of the hydrogels including volume, Young's modulus in the compression test, storage modulus, and loss modulus in the dynamic viscoelasticity measurement. The gelatin/alginate hydrogel can be easily fabricated into any shape by this method. After autoclave treatment, the hydrogel was shrunk to smaller than the original shape in similar figures. The shape of the gelatin/alginate hydrogel can be designed into any shape with the reduction ratio of the volume. Human osteosarcoma (HOS) cells adhered to the gelatin/alginate hydrogel and then proliferated. Gelatin/calcium alginate hydrogels with a high concentration are considered to be autoclavable culture substrates because of their low deformation and gelatin elution rate after autoclaving and the high amount of cells attached to the hydrogels.
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http://dx.doi.org/10.1016/j.jbiosc.2024.01.015 | DOI Listing |
Macromol Biosci
September 2025
Department of Chemical Engineering, Indian Institute of Technology, Hyderabad, India.
Glaucoma, a major global health issue, is the second leading cause of blindness. Topical eye drops are commonly used due to their simplicity, but the eye's protective barriers hinder optimal drug concentration at the target site. This study addresses these challenges by developing a novel dual-drug delivery system, integrating polycaprolactone microparticles loaded with latanoprost(hydrophobic) and timolol maleate(hydrophilic) antiglaucoma drugs into a gelatin-alginate hydrogel matrix.
View Article and Find Full Text PDFJACS Au
August 2025
Institute of Polymer Science and Engineering, National Taiwan University, Taipei 10617, Taiwan.
Lanthanide-containing hydrogels have emerged as a promising category of luminescent materials for sensing applications. However, a systematic investigation of lanthanide ions with varying ionic radii to reveal the structure-property-function relationships within the hydrogel network remains unexplored. This study integrates different lanthanide (Ln ) ions (i.
View Article and Find Full Text PDFJ Funct Biomater
August 2025
Department of Preclinical Sciences, Institute of Veterinary Medicine, Warsaw University of Life Sciences-SGGW, 02-786 Warsaw, Poland.
Composite scaffolds based on a hydrogel matrix modified with hydroxyapatite, magnesium, or zinc compounds are promising for filling and regenerating osteochondral defects due to the specific biological properties of these modifiers. The aim of this work was to evaluate the influence of hydroxyapatite, nano-hydroxyapatite, magnesium chloride, and zinc oxide on mechanical properties, swelling ability, behavior in a simulated biological environment (ion release, stability, bioactivity), and antibacterial effects. Furthermore, the influence of the hydrogel matrix (alginate, gelatin, alginate/gelatin) on the selected properties was also assessed.
View Article and Find Full Text PDFMater Today Bio
October 2025
Dermatology Department, Nanfang Hospital, Southern Medical University, Guangzhou, Guangdong, 510515, PR China.
There have been various interventions for photoaging skin, such as retinoic acid treatment and laser therapy. However, more precise, secure, and effective technologies and materials were still need to be explored. Cathepsin D (CTSD) repairs the epidermal barrier in chronic photodamaged skin through increasing TGase-1 expression and activity.
View Article and Find Full Text PDFPharmaceutics
June 2025
Institute for Information Technologies, University of Kragujevac, Jovana Cvijica bb, 34000 Kragujevac, Serbia.
In this study, we aimed to develop and optimize unique eco-friendly gelatin-alginate hydrogels enriched with sustainable grape skin extract for advanced wound healing applications. Following confirmation of the extract's antioxidant activity, hydrogels were synthesized by varying gelatin content and CaCl concentration to achieve desirable crosslinking density, mechanical properties, and extract release behavior. Physicochemical characterization of hydrogels included equilibrium swelling analysis, mechanical testing, FTIR analysis, and in vitro release of extract from hydrogel.
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