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Published on: January 4, 2016
Nuclear Entry of CRTC1 as Druggable Target of Acquired Pigmentary Disorder
Cheong-Yong Yun1, Seung Deok Hong1, Young Hee Lee2
1College of Pharmacy, Chungbuk National University, Cheongju 28160, Korea.
Abstract:
Rationale: SOX10 (SRY-related HMG-box 10) and MITF-M (microphthalmia-associated transcription factor M) restrict the expression of melanogenic genes, such as TYR (tyrosinase), in melanocytes. DACE (diacetylcaffeic acid cyclohexyl ester) inhibits melanin production in α-MSH (α-melanocyte stimulating hormone)-activated B16-F0 melanoma cells. In this study, we evaluated the antimelanogenic activity of DACE in vivo and elucidated the molecular basis of its action. Methods: We employed melanocyte cultures and hyperpigmented skin samples for pigmentation assays, and applied chromatin immunoprecipitation, immunoblotting, RT-PCR or siRNA-based knockdown for mechanistic analyses. Results: Topical treatment with DACE mitigated UV-B-induced hyperpigmentation in the skin with attenuated expression of MITF-M and TYR. DACE also inhibited melanin production in α-MSH- or ET-1 (endothelin 1)-activated melanocyte cultures. As a mechanism, DACE blocked the nuclear import of CRTC1 (CREB-regulated co-activator 1) in melanocytes. DACE resultantly inhibited SOX10 induction, and suppressed the transcriptional abilities of CREB/CRTC1 heterodimer and SOX10 at MITF-M promoter, thereby ameliorating facultative melanogenesis. Furthermore, this study unveiled new issues in melanocyte biology that i) KPNA1 (Impα5) escorted CRTC1 as a cargo across the nuclear envelope, ii) SOX10 was inducible in the melanogenic process, and iii) CRTC1 could direct SOX10 induction at the transcription level. Conclusion: We propose the targeting of CRTC1 as a unique strategy in the treatment of acquired pigmentary disorders.
Insights
Diacetylcaffeic acid cyclohexyl ester (DACE) reduces hyperpigmentation by blocking CRTC1 nuclear import, inhibiting SOX10, and suppressing melanogenic gene expression. This offers a novel strategy for treating pigmentary disorders.
Area of Science:
- Melanocyte biology and pigmentary disorders.
Background:
- SOX10 and MITF-M regulate melanogenic genes in melanocytes.
- Diacetylcaffeic acid cyclohexyl ester (DACE) inhibits melanin production in melanoma cells.
Purpose of the Study:
- Evaluate the in vivo antimelanogenic activity of DACE.
- Elucidate the molecular mechanisms underlying DACE's action on melanogenesis.
Main Methods:
- Utilized melanocyte cultures and hyperpigmented skin samples for pigmentation assays.
- Employed chromatin immunoprecipitation, immunoblotting, RT-PCR, and siRNA knockdown for mechanistic analysis.
Main Results:
- Topical DACE mitigated UV-B-induced hyperpigmentation by reducing MITF-M and TYR expression.
- DACE inhibited melanin production in activated melanocyte cultures by blocking CRTC1 nuclear import.
- DACE suppressed SOX10 induction and the transcriptional activity of CREB/CRTC1 and SOX10 at the MITF-M promoter.
Conclusions:
- DACE ameliorates facultative melanogenesis by targeting CRTC1 nuclear import and subsequent transcriptional regulation.
- Identified KPNA1 as the transporter for CRTC1 nuclear import and demonstrated CRTC1's role in SOX10 induction.
- Targeting CRTC1 presents a unique therapeutic strategy for acquired pigmentary disorders.
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