Regulation of skin pigmentation and thickness by Dickkopf 1 (DKK1)

Yuji Yamaguchi1, Akimichi Morita, Akira Maeda

  • 1Department of Geriatric and Environmental Dermatology, Nagoya City University Graduate School of Medical Sciences, Nagoya, Japan. yujin@med.nagoya-cu.ac.jp

Insights

Dickkopf 1 (DKK1) secreted by fibroblasts causes thicker, paler skin on palms and soles. This Wnt signaling inhibitor may treat skin pigmentation and wound healing issues.

Area of Science:

  • Dermatology and developmental biology.
  • Molecular mechanisms of skin differentiation and pigmentation.

Background:

  • Dickkopf 1 (DKK1) is a Wnt signaling inhibitor involved in development and bone remodeling.
  • Physiological DKK1 levels are higher in palmoplantar dermal fibroblasts compared to other skin regions.
  • DKK1's role in palmoplantar skin characteristics is not fully understood.

Purpose of the Study:

  • To investigate the role of DKK1 in establishing the unique phenotype of palmoplantar epidermis.
  • To elucidate the molecular mechanisms by which DKK1 affects epidermal cells.

Main Methods:

  • Analysis of DKK1 levels in different dermal fibroblast types.
  • Investigating DKK1's effect on melanocyte function and growth via MITF and beta-catenin.
  • Examining DKK1's impact on keratinocyte gene expression (keratin 9, alphaKLEIP, beta-catenin, GSK3beta, PKC, PAR-2).
  • Treatment of reconstructed skin models with DKK1.

Main Results:

  • DKK1 suppresses melanocyte function and growth by regulating MITF and beta-catenin.
  • DKK1 induces keratin 9 and alphaKLEIP expression in keratinocytes.
  • DKK1 downregulates beta-catenin, GSK3beta, PKC, and PAR-2 in keratinocytes.
  • DKK1 treatment of reconstructed skin resulted in hypopigmentation and thickening, mimicking palmoplantar skin.

Conclusions:

  • Fibroblast-derived DKK1 in the palmoplantar dermis induces epidermal thickening and hypopigmentation.
  • DKK1 influences skin phenotype through Wnt/beta-catenin signaling.
  • DKK1 shows potential therapeutic applications for reducing skin pigmentation and enhancing wound healing in photo-aged and diabetic skin.

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