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Updated: Feb 27, 2026

Human Ex vivo Wound Model and Whole-Mount Staining Approach to Accurately Evaluate Skin Repair
Published on: February 17, 2021
Age-associated intracellular superoxide dismutase deficiency potentiates dermal fibroblast dysfunction during wound
Toshihiro Fujiwara1, Teruyuki Dohi1, Zeshaan N Maan1
1Department of Surgery, Stanford University School of Medicine, Stanford, CA, USA.
Abstract:
Reactive oxygen species (ROS) impair wound healing through destructive oxidation of intracellular proteins, lipids and nucleic acids. Intracellular superoxide dismutase (SOD1) regulates ROS levels and plays a critical role in tissue homoeostasis. Recent evidence suggests that age-associated wound healing impairments may partially result from decreased SOD1 expression. We investigated the mechanistic basis by which increased oxidative stress links to age-associated impaired wound healing. Fibroblasts were isolated from unwounded skin of young and aged mice, and myofibroblast differentiation was assessed by measuring α-smooth muscle actin and collagen gel contraction. Excisional wounds were created on young and aged mice to study the healing rate, ROS levels and SOD1 expression. A mechanistic link between oxidative stress and fibroblast function was explored by assessing the TGF-β1 signalling pathway components in young and aged mice. Age-related wounds displayed reduced myofibroblast differentiation and delayed wound healing, consistent with a decrease in the in vitro capacity for fibroblast-myofibroblast transition following oxidative stress. Young fibroblasts with normal SOD1 expression exhibited increased phosphorylation of ERK in response to elevated ROS. In contrast, aged fibroblasts with reduced SOD1 expression displayed a reduced capacity to modulate intracellular ROS. Collectively, age-associated wound healing impairments are associated with fibroblast dysfunction that is likely the result of decreased SOD1 expression and subsequent dysregulation of intracellular ROS. Strategies targeting these mechanisms may suggest a new therapeutic approach in the treatment of chronic non-healing wounds in the aged population.
Insights
Aging impairs wound healing by decreasing superoxide dismutase 1 (SOD1) expression, leading to increased oxidative stress and fibroblast dysfunction. This age-related decline hinders tissue repair and may offer therapeutic targets for chronic wounds.
Area of Science:
- Biomedical Science
- Aging Research
- Wound Healing Biology
Background:
- Reactive oxygen species (ROS) damage cells and impair wound healing.
- Superoxide dismutase 1 (SOD1) regulates ROS and is crucial for tissue homeostasis.
- Decreased SOD1 expression is linked to age-related wound healing deficits.
Purpose of the Study:
- Investigate the link between oxidative stress and impaired wound healing in aged individuals.
- Elucidate the role of SOD1 in fibroblast function and wound repair.
- Explore therapeutic strategies for age-associated wound healing impairments.
Main Methods:
- Isolated fibroblasts from young and aged mice for in vitro analysis.
- Assessed myofibroblast differentiation markers (α-smooth muscle actin, collagen gel contraction).
- Created excisional wounds in mice to evaluate healing rate, ROS levels, and SOD1 expression.
Main Results:
- Aged mice exhibited delayed wound healing and reduced myofibroblast differentiation.
- Fibroblasts from aged mice showed decreased SOD1 expression and impaired ROS regulation.
- Oxidative stress negatively impacted fibroblast-myofibroblast transition and ERK phosphorylation in aged cells.
Conclusions:
- Age-associated wound healing impairment is linked to fibroblast dysfunction caused by reduced SOD1 and dysregulated ROS.
- Decreased SOD1 expression compromises the cellular response to oxidative stress in aging.
- Targeting SOD1 and ROS pathways may offer new treatments for chronic non-healing wounds in the elderly.
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