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Updated: May 15, 2026

Generation and Culturing of Primary Human Keratinocytes from Adult Skin
Published on: December 22, 2017
Deciphering the calcitriol-induced transcriptomic response in keratinocytes: presentation of novel target genes
Raphaela Rid1, Martin Wagner, Christina J Maier
1Division of Molecular Dermatology, Department of Dermatology, Paracelsus Private Medical University Salzburg, Salzburg, Austria.
Abstract:
Numerous studies to date have been aimed at unraveling the large suite of calcitriol (1α,25-dihydroxyvitamin D(3)) response genes in diverse tissues including skin, where this hormone is involved in regulating keratinocyte proliferation, differentiation, permeability barrier formation, innate immunity promotion, antimicrobial peptide production, and wound healing. However, the various approaches differ considerably in probed cell types, scale, throughput, and statistical reliability and do, of note, not reveal much overlap. To further expand our knowledge on presently elusive targets and characterize the extent of fragmentation of existing datasets, we have performed whole-transcriptome microarray examinations of calcitriol-treated human primary keratinocytes. Out of 28,869 genes investigated, we uncovered 86 differentially expressed (67 upregulated and 19 downregulated) candidates that were functionally clustered into five annotation categories: response to wounding, protease inhibition, secondary metabolite biosynthesis, cellular migration, and amine biosynthetic processes. A complementary RTq-PCR study of 78 nominees selected thereof demonstrated significant differential expression of 55 genes (48 upregulated and seven downregulated) within biological replicates. Our hit list contains nine previously authenticated targets (16.36%, proof of concept) and 46 novel genes (83.6%) that have not yet been explicitly described as being differentially regulated within human primary keratinocytes. Direct vitamin D receptor response element predictions within the regulatory promoter regions of 50 of the RTq-PCR-validated targets agreed with known biological functionality and corroborated our stringent data validation pipeline. Altogether, our results indicate the value of continuing these kinds of gene expression studies, which contribute to an enhanced comprehension of calcitriol-mediated processes that may be dysregulated in human skin pathophysiology.
Insights
Researchers identified 86 calcitriol (1α,25-dihydroxyvitamin D(3)) response genes in human skin cells, including 46 novel targets. This study enhances understanding of vitamin D
Area of Science:
- Dermatology
- Molecular Biology
- Genomics
Background:
- Calcitriol (1α,25-dihydroxyvitamin D(3)) regulates critical skin functions like keratinocyte proliferation, differentiation, and wound healing.
- Existing studies on calcitriol response genes in skin show limited overlap due to varied methodologies.
- A comprehensive understanding of calcitriol's genetic targets in skin remains incomplete.
Purpose of the Study:
- To identify novel calcitriol-regulated genes in human primary keratinocytes.
- To characterize the full spectrum of calcitriol's gene expression effects in skin.
- To provide a validated dataset for further research into skin pathophysiology.
Main Methods:
- Whole-transcriptome microarray analysis of calcitriol-treated human primary keratinocytes.
- Quantitative reverse transcription PCR (RTq-PCR) for validation of selected gene candidates.
- Bioinformatic analysis including functional clustering and promoter region analysis for vitamin D receptor response elements.
Main Results:
- Identified 86 differentially expressed genes (67 upregulated, 19 downregulated) in response to calcitriol.
- Validated 55 genes (48 upregulated, 7 downregulated) via RTq-PCR, confirming 16.36% known targets and 83.6% novel genes.
- Functional clustering revealed roles in wound response, protease inhibition, and cellular migration; promoter analysis supported direct regulation.
Conclusions:
- This study presents a comprehensive list of calcitriol-responsive genes in human keratinocytes, including numerous novel targets.
- The findings contribute to a deeper understanding of calcitriol's role in skin biology and potential therapeutic applications.
- Gene expression studies are crucial for elucidating calcitriol-mediated processes relevant to skin health and disease.
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