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Selenium-Enriched Hydrogels Show Striking Cell Growth in Burn Wound Care Study

Bioengineer by Bioengineer
September 25, 2026
in Technology
Reading Time: 5 mins read
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Selenium-Enriched Hydrogels Show Striking Cell Growth in Burn Wound Care Study
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Burn injuries affect more than 11 million people every year, and the search for dressings that do more than simply cover the wound has become one of the most active frontiers in biomedical materials science. A team at Wichita State University, working with a colleague at the University of Kansas School of Medicine-Wichita, has now reported the design and testing of a family of multifunctional hydrogels built from acetic acid and gelatin, enriched with chitosan, selenium, silver or copper nanopowders, and natural bioactive compounds including almond oil, neem oil, propolis, and vitamins A and C. Writing in the Journal of Materials Science: Polymers, the researchers describe how these formulations were synthesized, characterized, and screened for the properties that matter most in burn care: moisture retention, swelling behavior, controlled release of healing agents, and compatibility with living cells.

The clinical problem the team set out to address is formidable. Deep burns destroy the skin’s role in thermal insulation, fluid balance, and microbial defense, leaving patients vulnerable to dehydration, infection, and inflammatory cascades that can progress to sepsis or multi-organ failure. Impaired vascularization in burn tissue reduces the effectiveness of systemic antibiotics, and prolonged antibiotic use has fueled resistant strains such as methicillin-resistant Staphylococcus aureus and Pseudomonas aeruginosa. Conventional dressings like gauze and petroleum-based products act as passive barriers, and their tendency to adhere to wound beds can tear away healing tissue during dressing changes. The researchers argue that next-generation dressings must actively stabilize the wound microenvironment, modulate inflammation, counter biofilm-associated infection, and support tissue regeneration simultaneously.

Hydrogels, three-dimensional networks of hydrophilic polymers, are well suited to this challenge. Their high water content maintains the moist environment that promotes epithelialization and fibroblast proliferation, while their non-adhesive character minimizes damage during dressing changes. They also provide an intrinsic cooling effect that helps relieve pain and local inflammation. Crucially, hydrogels can be functionalized with bioactive compounds and nanomaterials, enabling localized, controlled delivery of therapeutic agents directly to the wound site. Previous studies have shown collagen-based hydrogels promoting angiogenesis, chitosan hydrogels loaded with gentamicin fighting S. aureus and E. coli while supporting collagen synthesis, and curcumin-loaded chitosan hydrogels reducing oxidative stress in rat burn models. The Wichita team extended this concept by combining multiple active agents in a single matrix.

Each ingredient in the new formulations was chosen for a complementary biological role. Selenium, supplied as sodium selenite, is a critical micronutrient with antioxidant and anti-inflammatory properties that enhance vascularization and reduce oxidative stress. Silver and copper nanopowders serve as broad-spectrum antimicrobial agents that inhibit bacterial proliferation and biofilm formation. Silver sulfadiazine, a clinically established burn treatment, was incorporated as a benchmark for infection-control performance. Natural compounds rounded out the design: almond oil supports skin regeneration and hydration, neem oil shows activity against burn wound pathogens, propolis contributes antimicrobial and tissue-regenerative effects, and vitamins A and C support collagen synthesis, angiogenesis, and epithelial repair. The base matrix combined chitosan, gelatin, and acetic acid, with polyethylene glycol used in control formulations.

Preparation followed carefully controlled protocols. Chitosan was dissolved in water at 60 degrees Celsius under continuous stirring, bioactive additives were dissolved separately and dispersed into the solution, and acetic acid was added dropwise to trigger gelation into a semi-solid state. After 24 hours of homogenization, the hydrogels were cured in an oven at 45 degrees Celsius and refrigerated to stabilize their structure. Gelatin-based variants and formulations containing natural substances, silver or copper nanopowders, silver sulfadiazine, or a traditional Turkish ointment were prepared with parallel procedures, and control hydrogels using acetic acid or gelatin with polyethylene glycol provided baselines for comparison.

Structural characterization relied on three complementary techniques. Fourier-transform infrared spectroscopy revealed broad absorption bands between 3500 and 3200 reciprocal centimeters corresponding to amine and hydroxyl stretching, confirming the hydrogen bonding that underpins water retention. Peaks near 1630 to 1641 reciprocal centimeters indicated carbonyl and alkene groups associated with cross-linked polymeric networks, with the strongest signals in the selenium-acetic acid formulations, pointing to higher cross-linking density. Thermogravimetric analysis identified four distinct phases of weight loss, from evaporation of loosely bound water below 70 degrees Celsius to complete degradation above 400 degrees, and showed that selenium-enriched and oil-containing hydrogels released moisture more slowly and left greater residual mass, indicating enhanced thermal stability. X-ray diffraction confirmed semi-crystalline gelatin peaks near 20 degrees and the face-centered cubic signatures of silver and copper, verifying uniform nanoparticle integration.

The biological results were the study’s headline finding. Using the methyl thiazolyl tetrazolium assay on 3T3 fibroblast cells, with live/dead staining as confirmation, the team found that all hydrogels were non-toxic and supported cell adhesion and proliferation over five days of culture. The selenium-acetic acid hydrogels stood out dramatically: the formulation containing 1 gram of selenium reached approximately 160 percent cell viability relative to the control, with the 0.6 gram variant close behind. The researchers attribute this to the mildly acidic microenvironment created by acetic acid, which fosters fibroblast proliferation and migration, enhances nutrient diffusion, and increases cross-linking density to produce a mechanically stable, hydrated scaffold for cellular attachment. By contrast, the silver-gelatin and copper-gelatin hydrogels maintained viabilities of roughly 80 and 70 percent respectively, an acceptable trade-off given their antimicrobial function.

Functional testing reinforced the picture of a well-balanced material system. Every formulation retained moisture content of roughly 90 percent, the level needed to keep a wound bed hydrated without desiccation. Swelling tests at physiological 37 degrees Celsius showed large but stable water uptake of approximately 870 to 1005 percent, within the range considered optimal for high-quality hydrogels, with copper-infused samples swelling the most due to additional ionic and hydrogen-bonding sites. Emulsion-based drug release tests over 14 days demonstrated sustained, cumulative release consistent with Fickian diffusion through the hydrated matrix, with the selenium-acetic acid formulations exceeding 60 percent release in later cycles and silver-containing gels surpassing 80 percent. The copper-gelatin hydrogel released more slowly, below 40 percent in the second cycle, but the authors note that even low concentrations of copper ions deliver significant antibacterial effects. pH testing showed the formulations span roughly 4 to 9, with the acidic selenium-acetic acid gels favoring fibroblast activity and microbial inhibition, the alkaline selenium-gelatin gels suppressing bacterial colonization, and the near-neutral metal-infused gels offering versatile biocompatibility.

The authors are candid about the study’s limits. Burn-specific performance criteria, including antimicrobial testing against burn-relevant pathogens such as Pseudomonas aeruginosa and Staphylococcus aureus, and in vivo evaluation, were not included, and future work will validate the formulations in realistic burn models. Nonetheless, the comparative analysis clearly identifies the selenium-acetic acid hydrogels, particularly the 0.6 and 1.0 gram selenium variants, as lead candidates that combine biocompatibility, moisture management, and controlled swelling, while the silver and copper gelatin systems appear suited to infection-prone contexts. The team also points toward scalable manufacturing routes, including 3D printing and bioprinting, and toward tailoring ionic content and bioinspired additives to lift the viability of the metal-containing formulations. If subsequent animal and clinical studies confirm these in vitro results, selenium-enriched multifunctional hydrogels could move burn wound care a significant step beyond passive protection toward dressings that actively participate in regeneration.

Subject of Research: Multifunctional biocompatible hydrogels for burn wound healing

Article Title: Design and development of advanced biocompatible hydrogels for burn wound healing applications

Article References: Design and development of advanced biocompatible hydrogels for burn wound healing applications. (n.d.). https://doi.org/10.1007/s44493-025-00003-0

Image Credits: AI Generated

DOI: 10.1007/s44493-025-00003-0

Keywords: hydrogels, burn wound healing, selenium, gelatin, chitosan, silver nanoparticles, copper nanoparticles, biocompatibility, drug release, wound dressing, cytotoxicity, biomaterials

Cite Scienmag News
APA MLA Chicago

Denise Maddox. (September 25, 2026). Selenium-Enriched Hydrogels Show Striking Cell Growth in Burn Wound Care Study. Scienmag. https://scienmag.com/selenium-enriched-hydrogels-show-striking-cell-growth-in-burn-wound-care-study/

Denise Maddox. “Selenium-Enriched Hydrogels Show Striking Cell Growth in Burn Wound Care Study.” Scienmag, 25 September 2026, https://scienmag.com/selenium-enriched-hydrogels-show-striking-cell-growth-in-burn-wound-care-study/. Accessed 25 September 2026.

Denise Maddox. “Selenium-Enriched Hydrogels Show Striking Cell Growth in Burn Wound Care Study.” Scienmag. September 25, 2026. https://scienmag.com/selenium-enriched-hydrogels-show-striking-cell-growth-in-burn-wound-care-study/

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Tags: advanced biomedical materials for burn injuriesantimicrobial properties of selenium and silver in wound dressingsbioactive compound-infused wound dressingsbiocompatibilitybiomaterialsburn wound dressingsburn wound healingcell-compatible burn treatment materialschitosancontrolled release burn healing agentscopper nanoparticlescytotoxicitydrug releasegelatinhydrogelsmoisture-retentive hydrogels for burnsmultifunctional hydrogels for burn carenanomaterial-enhanced hydrogels for tissue regenerationnatural oils in burn wound hydrogelsseleniumselenium-enriched hydrogelssilver nanoparticlesskin repair and regeneration in burn treatmentwound dressing

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