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Updated: Feb 8, 2026

Isolation of Papillary and Reticular Fibroblasts from Human Skin by Fluorescence-activated Cell Sorting
Published on: May 7, 2019
Metabolic and Phenotypic Characterization of Human Skin Fibroblasts After Forcing Oxidative Capacity
Susana P Pereira1, Cláudia M Deus1,2, Teresa L Serafim1
1CNC-Center for Neuroscience and Cell Biology, University of Coimbra, UC Biotech Building, Biocant Park, 3060-197 Cantanhede, Portugal.
Abstract:
Human skin fibroblasts present technical advantages for the study of mitochondrial-induced toxicity, because those cells can be isolated from patients by lowly invasive methods and present specific cumulative cellular damage and mutations of particular conditions. Several drugs lead to organ toxicity, with some of these drugs having been already withdrawn from the market. Frequently, drug-induced toxicity is attributed to mitochondrial liabilities. One of the approaches to identify drug-induced mitochondrial toxicity is using glucose-free/galactose/glutamine/pyruvate-containing cell culture media that force cells to be more dependent on oxidative phosphorylation for energy production. However, the effects of this modified culture medium itself on the mitochondrial phenotype of human skin fibroblasts have not been explored in detail. Our objective was to assess the mitochondrial biology of human skin fibroblasts under standard or modified culture conditions so that system can be validated and used in a more reliable way to disclose mitochondrial liabilities of drug candidates or intrinsic metabolic differences in fibroblasts. Our results showed that forcing mitochondrial remodeling in human skin fibroblasts increased oxygen consumption rate, ATP levels, and mitochondria-related transcripts and proteins. Moreover, the metabolic remodeling increased cytotoxicity of mitochondrial poisons. In general, no alterations in gene expression related with differentiation status were observed in human skin fibroblasts, with exception of increased paxilin gene expression. Not only the current work highlights the importance of using human skin primary cells to study drug-induced mitochondrial toxicity, it also reinforces the use of this tool to detect specific mitochondrial defects in skin fibroblasts from patients.
Insights
Investigating human skin fibroblasts reveals that altering cell culture media to boost mitochondrial function enhances their sensitivity to toxic drugs. This validates their use for studying drug-induced mitochondrial toxicity.
Area of Science:
- Biochemistry
- Cell Biology
- Toxicology
Background:
- Drug-induced organ toxicity is a significant concern, often linked to mitochondrial dysfunction.
- Human skin fibroblasts are valuable models due to accessibility and patient-specific mutations.
- Modified cell culture media can enhance reliance on oxidative phosphorylation for studying mitochondrial toxicity.
Purpose of the Study:
- To assess the impact of modified culture media on human skin fibroblast mitochondrial phenotype.
- To validate the use of these cells and conditions for reliable drug-induced mitochondrial toxicity screening.
- To explore intrinsic metabolic differences in fibroblasts.
Main Methods:
- Culturing human skin fibroblasts in standard versus modified (glucose-free, galactose/glutamine/pyruvate-containing) media.
- Measuring oxygen consumption rate and ATP levels.
- Analyzing gene and protein expression related to mitochondrial function and differentiation.
Main Results:
- Modified media significantly increased oxygen consumption, ATP levels, and mitochondrial gene/protein expression.
- Metabolic remodeling enhanced fibroblast cytotoxicity upon exposure to mitochondrial poisons.
- Most gene expression related to differentiation remained unchanged, except for paxilin.
Conclusions:
- Forcing mitochondrial remodeling in human skin fibroblasts validates their utility for studying drug-induced mitochondrial toxicity.
- This approach enhances the detection of mitochondrial liabilities in drug candidates.
- It also supports the use of fibroblasts for identifying specific mitochondrial defects in patient-derived cells.
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