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A New Technique for Quantitative Analysis of Hair Loss in Mice Using Grayscale Analysis
Published on: March 9, 2015
Absence of vitamin D receptor (VDR)-mediated PPARγ suppression causes alopecia in VDR-null mice
Vaibhav Saini1, Hengguang Zhao1, Elizabeth T Petit1
1Endocrine Unit, Massachusetts General Hospital, Harvard Medical School, Boston, Massachusetts, USA.
Abstract:
Vitamin D receptor (VDR) mutations in humans and mice cause alopecia. VDR-null (VDR-/-) mice exhibit lack of postmorphogenic hair cycles as a result of impaired keratinocyte stem cell (KSC) function. To identify the molecular basis for abnormal KSC function, RNA sequencing of wild-type (WT) and VDR-/- KSCs was performed. These studies demonstrated that >80% of differentially expressed genes are up-regulated in VDR-/- KSCs; thus, the VDR is a transcriptional suppressor in WT KSCs. Peroxisome proliferator-activated receptor γ (PPARγ), PPARγ coactivator 1β (PGC1β), and lipoprotein lipase (LPL) were among the up-regulated genes identified. Chromatin immunoprecipitation analyses demonstrated that these genes are direct VDR targets in WT keratinocytes. Notably, VDR occupancy of the PPARγ regulatory region precludes PPARγ occupancy of this site, based on the observation that PPARγ interacts with these sequences in VDR-/- but not WT keratinocytes. This contrasts with the VDR and PPARγ co-occupancy observed on PGC1β and LPL gene regulatory regions identified. Studies in mice with keratinocyte-specific PPARγ haploinsufficiency were performed to identify the functional consequences of enhanced PPARγ expression. PPARγ haploinsufficiency normalized PPARγ mRNA levels in VDR-/- keratinocytes and restored anagen responsiveness in vivo in VDR-/- mice, resulting in hair regrowth. Thus, absence of VDR-mediated PPARγ suppression underlies alopecia in VDR-/- mice.-Saini, V., Zhao, H., Petit, E. T., Gori, F., Demay, M. B. Absence of vitamin D receptor (VDR)-mediated PPARγ suppression causes alopecia in VDR-null mice.
Insights
Vitamin D receptor (VDR) mutations cause hair loss by impairing keratinocyte stem cell function. Lack of VDR leads to increased PPARγ, causing alopecia, which can be reversed by normalizing PPARγ levels.
Area of Science:
- Dermatology
- Molecular Biology
- Genetics
Background:
- Vitamin D receptor (VDR) mutations are linked to alopecia in humans and mice.
- VDR-null mice show impaired hair cycling due to defective keratinocyte stem cell (KSC) function.
Purpose of the Study:
- To elucidate the molecular mechanisms underlying impaired KSC function in VDR-null mice.
- To identify VDR target genes and their role in hair follicle cycling.
Main Methods:
- RNA sequencing of wild-type (WT) and VDR-null KSCs.
- Chromatin immunoprecipitation (ChIP) to identify direct VDR targets.
- Analysis of mice with keratinocyte-specific PPARγ haploinsufficiency.
Main Results:
- VDR acts as a transcriptional suppressor in WT KSCs, with >80% of differentially expressed genes upregulated in VDR-null KSCs.
- PPARγ, PGC1β, and LPL were identified as direct VDR targets, upregulated in VDR-null keratinocytes.
- Keratinocyte-specific PPARγ haploinsufficiency in VDR-null mice restored hair regrowth.
Conclusions:
- Absence of VDR-mediated suppression of PPARγ is a key driver of alopecia in VDR-null mice.
- VDR regulates hair follicle cycling through the control of keratinocyte gene expression, including PPARγ.

