Cargando…
Cistanche deserticola polysaccharide induces melanogenesis in melanocytes and reduces oxidative stress via activating NRF2/HO‐1 pathway
As a main part of pigmentation disorders, skin depigmentation diseases such as vitiligo and achromic naevus are very common and get more attention now. The pathogenesis of depigmentation includes melanocyte dysfunction and loss, which are possibly caused by heredity, autoimmunity and oxidative stres...
Autores principales: | , , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
John Wiley and Sons Inc.
2020
|
Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7171403/ https://www.ncbi.nlm.nih.gov/pubmed/32096914 http://dx.doi.org/10.1111/jcmm.15038 |
_version_ | 1783524063588646912 |
---|---|
author | Hu, Yibo Huang, Jinhua Li, Yixiao Jiang, Ling Ouyang, Yujie Li, Yumeng Yang, Lun Zhao, Xiaojiao Huang, Lihua Xiang, Hong Chen, Jing Zeng, Qinghai |
author_facet | Hu, Yibo Huang, Jinhua Li, Yixiao Jiang, Ling Ouyang, Yujie Li, Yumeng Yang, Lun Zhao, Xiaojiao Huang, Lihua Xiang, Hong Chen, Jing Zeng, Qinghai |
author_sort | Hu, Yibo |
collection | PubMed |
description | As a main part of pigmentation disorders, skin depigmentation diseases such as vitiligo and achromic naevus are very common and get more attention now. The pathogenesis of depigmentation includes melanocyte dysfunction and loss, which are possibly caused by heredity, autoimmunity and oxidative stress. Among them, oxidative stress plays a key role; however, few clinical treatments can deal with oxidative stress. As reported, Cistanche deserticola polysaccharide (CDP) is an effective antioxidant; based on that, we evaluated its role in melanocyte and further revealed the mechanisms. In this study, we found that CDP could promote melanogenesis in human epidermal melanocytes (HEMs) and mouse melanoma B16F10 cells, it also induced pigmentation in zebrafish. Furthermore, CDP could activate mitogen‐activated protein kinase (MAPK) signal pathway, then up‐regulated the expression of microphthalmia‐associated transcription factor (MITF) and downstream genes TYR, TRP1, TRP2 and RAB27A. Otherwise, we found that CDP could attenuate H(2)O(2)‐induced cytotoxicity and apoptosis in melanocytes. Further evidence revealed that CDP could enhance NRF2/HO‐1 antioxidant pathway and scavenge intracellular ROS. In summary, CDP can promote melanogenesis and prevent melanocytes from oxidative stress injury, suggesting that CDP helps maintain the normal status of melanocytes. Thus, CDP may be a novel drug for the treatment of depigmentation diseases. |
format | Online Article Text |
id | pubmed-7171403 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2020 |
publisher | John Wiley and Sons Inc. |
record_format | MEDLINE/PubMed |
spelling | pubmed-71714032020-04-21 Cistanche deserticola polysaccharide induces melanogenesis in melanocytes and reduces oxidative stress via activating NRF2/HO‐1 pathway Hu, Yibo Huang, Jinhua Li, Yixiao Jiang, Ling Ouyang, Yujie Li, Yumeng Yang, Lun Zhao, Xiaojiao Huang, Lihua Xiang, Hong Chen, Jing Zeng, Qinghai J Cell Mol Med Original Articles As a main part of pigmentation disorders, skin depigmentation diseases such as vitiligo and achromic naevus are very common and get more attention now. The pathogenesis of depigmentation includes melanocyte dysfunction and loss, which are possibly caused by heredity, autoimmunity and oxidative stress. Among them, oxidative stress plays a key role; however, few clinical treatments can deal with oxidative stress. As reported, Cistanche deserticola polysaccharide (CDP) is an effective antioxidant; based on that, we evaluated its role in melanocyte and further revealed the mechanisms. In this study, we found that CDP could promote melanogenesis in human epidermal melanocytes (HEMs) and mouse melanoma B16F10 cells, it also induced pigmentation in zebrafish. Furthermore, CDP could activate mitogen‐activated protein kinase (MAPK) signal pathway, then up‐regulated the expression of microphthalmia‐associated transcription factor (MITF) and downstream genes TYR, TRP1, TRP2 and RAB27A. Otherwise, we found that CDP could attenuate H(2)O(2)‐induced cytotoxicity and apoptosis in melanocytes. Further evidence revealed that CDP could enhance NRF2/HO‐1 antioxidant pathway and scavenge intracellular ROS. In summary, CDP can promote melanogenesis and prevent melanocytes from oxidative stress injury, suggesting that CDP helps maintain the normal status of melanocytes. Thus, CDP may be a novel drug for the treatment of depigmentation diseases. John Wiley and Sons Inc. 2020-02-25 2020-04 /pmc/articles/PMC7171403/ /pubmed/32096914 http://dx.doi.org/10.1111/jcmm.15038 Text en © 2020 The Authors. Journal of Cellular and Molecular Medicine published by John Wiley & Sons Ltd and Foundation for Cellular and Molecular Medicine. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited. |
spellingShingle | Original Articles Hu, Yibo Huang, Jinhua Li, Yixiao Jiang, Ling Ouyang, Yujie Li, Yumeng Yang, Lun Zhao, Xiaojiao Huang, Lihua Xiang, Hong Chen, Jing Zeng, Qinghai Cistanche deserticola polysaccharide induces melanogenesis in melanocytes and reduces oxidative stress via activating NRF2/HO‐1 pathway |
title | Cistanche deserticola polysaccharide induces melanogenesis in melanocytes and reduces oxidative stress via activating NRF2/HO‐1 pathway |
title_full | Cistanche deserticola polysaccharide induces melanogenesis in melanocytes and reduces oxidative stress via activating NRF2/HO‐1 pathway |
title_fullStr | Cistanche deserticola polysaccharide induces melanogenesis in melanocytes and reduces oxidative stress via activating NRF2/HO‐1 pathway |
title_full_unstemmed | Cistanche deserticola polysaccharide induces melanogenesis in melanocytes and reduces oxidative stress via activating NRF2/HO‐1 pathway |
title_short | Cistanche deserticola polysaccharide induces melanogenesis in melanocytes and reduces oxidative stress via activating NRF2/HO‐1 pathway |
title_sort | cistanche deserticola polysaccharide induces melanogenesis in melanocytes and reduces oxidative stress via activating nrf2/ho‐1 pathway |
topic | Original Articles |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7171403/ https://www.ncbi.nlm.nih.gov/pubmed/32096914 http://dx.doi.org/10.1111/jcmm.15038 |
work_keys_str_mv | AT huyibo cistanchedeserticolapolysaccharideinducesmelanogenesisinmelanocytesandreducesoxidativestressviaactivatingnrf2ho1pathway AT huangjinhua cistanchedeserticolapolysaccharideinducesmelanogenesisinmelanocytesandreducesoxidativestressviaactivatingnrf2ho1pathway AT liyixiao cistanchedeserticolapolysaccharideinducesmelanogenesisinmelanocytesandreducesoxidativestressviaactivatingnrf2ho1pathway AT jiangling cistanchedeserticolapolysaccharideinducesmelanogenesisinmelanocytesandreducesoxidativestressviaactivatingnrf2ho1pathway AT ouyangyujie cistanchedeserticolapolysaccharideinducesmelanogenesisinmelanocytesandreducesoxidativestressviaactivatingnrf2ho1pathway AT liyumeng cistanchedeserticolapolysaccharideinducesmelanogenesisinmelanocytesandreducesoxidativestressviaactivatingnrf2ho1pathway AT yanglun cistanchedeserticolapolysaccharideinducesmelanogenesisinmelanocytesandreducesoxidativestressviaactivatingnrf2ho1pathway AT zhaoxiaojiao cistanchedeserticolapolysaccharideinducesmelanogenesisinmelanocytesandreducesoxidativestressviaactivatingnrf2ho1pathway AT huanglihua cistanchedeserticolapolysaccharideinducesmelanogenesisinmelanocytesandreducesoxidativestressviaactivatingnrf2ho1pathway AT xianghong cistanchedeserticolapolysaccharideinducesmelanogenesisinmelanocytesandreducesoxidativestressviaactivatingnrf2ho1pathway AT chenjing cistanchedeserticolapolysaccharideinducesmelanogenesisinmelanocytesandreducesoxidativestressviaactivatingnrf2ho1pathway AT zengqinghai cistanchedeserticolapolysaccharideinducesmelanogenesisinmelanocytesandreducesoxidativestressviaactivatingnrf2ho1pathway |