Nanoscale microenvironment engineering for expanding human hair follicle stem cell and revealing their plasticity
Abstract Background Periodically regenerated hair follicles provide an excellent research model for studying tissue regeneration and stem cell homeostasis. Periodic activation and differentiation of hair follicle stem cells (HFSCs) fuel cyclical bouts of hair regeneration. HFSCs represent an excelle...
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doaj-9432889d1fb14464ba774e7cdaea21352021-04-04T11:08:10ZengBMCJournal of Nanobiotechnology1477-31552021-03-0119111310.1186/s12951-021-00840-5Nanoscale microenvironment engineering for expanding human hair follicle stem cell and revealing their plasticityPeng Chen0Feifei Zhang1Zhexiang Fan2Tianding Shen3Bingcheng Liu4Ruosi Chen5Qian Qu6Jin Wang7Yong Miao8Zhiqi Hu9Department of Plastic and Aesthetic Surgery, Nanfang Hospital, Southern Medical UniversityDepartment of Plastic and Aesthetic Surgery, Nanfang Hospital, Southern Medical UniversityDepartment of Plastic and Aesthetic Surgery, Nanfang Hospital, Southern Medical UniversityDepartment of Plastic and Aesthetic Surgery, Nanfang Hospital, Southern Medical UniversityDepartment of Plastic and Aesthetic Surgery, Nanfang Hospital, Southern Medical UniversityDepartment of Plastic and Aesthetic Surgery, Nanfang Hospital, Southern Medical UniversityDepartment of Plastic and Aesthetic Surgery, Nanfang Hospital, Southern Medical UniversityDepartment of Plastic and Aesthetic Surgery, Nanfang Hospital, Southern Medical UniversityDepartment of Plastic and Aesthetic Surgery, Nanfang Hospital, Southern Medical UniversityDepartment of Plastic and Aesthetic Surgery, Nanfang Hospital, Southern Medical UniversityAbstract Background Periodically regenerated hair follicles provide an excellent research model for studying tissue regeneration and stem cell homeostasis. Periodic activation and differentiation of hair follicle stem cells (HFSCs) fuel cyclical bouts of hair regeneration. HFSCs represent an excellent paradigm for studying tissue regeneration and somatic stem cell homeostasis. However, these crucial studies are hampered by the lack of a culture system able to stably expand human HFSCs and regulate their fate. Results Here, we use layer-by-layer (LbL) self-assembly with gelatin/alginate to construct a nanoscale biomimetic extracellular matrix (ECM) for an HFSC population. The LbL coating provides ECM and mechanical support for individual cells, which helps to maintain the CD200+α6+ HFSC population to a certain extent. Addition of key signal molecules (FGF-7 and VEGF-A) simulates the minimum essential components of the stem cell microenvironment, thereby effectively and stably expanding HFSCs and maintaining the CD200+α6+ HFSC population. Subsequently, BMP2 loaded to the nanocoated layer, as a slow-release signal molecule, activates BMP signaling to regulate HFSCs’ fate in order to obtain a purified CD200+α6+ HFSC population. Conclusion This system can minimize the microenvironment of HFSCs; thus, stably amplifying HFSCs and revealing their plasticity. Our study thus provides a new tool for studies of hair follicle reconstruction and stem cell homeostasis.https://doi.org/10.1186/s12951-021-00840-5Human hair follicle stem cellsStem cell microenvironmentLayer-by-layer self-assemblyRegenerative medicineTissue engineering |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Peng Chen Feifei Zhang Zhexiang Fan Tianding Shen Bingcheng Liu Ruosi Chen Qian Qu Jin Wang Yong Miao Zhiqi Hu |
spellingShingle |
Peng Chen Feifei Zhang Zhexiang Fan Tianding Shen Bingcheng Liu Ruosi Chen Qian Qu Jin Wang Yong Miao Zhiqi Hu Nanoscale microenvironment engineering for expanding human hair follicle stem cell and revealing their plasticity Journal of Nanobiotechnology Human hair follicle stem cells Stem cell microenvironment Layer-by-layer self-assembly Regenerative medicine Tissue engineering |
author_facet |
Peng Chen Feifei Zhang Zhexiang Fan Tianding Shen Bingcheng Liu Ruosi Chen Qian Qu Jin Wang Yong Miao Zhiqi Hu |
author_sort |
Peng Chen |
title |
Nanoscale microenvironment engineering for expanding human hair follicle stem cell and revealing their plasticity |
title_short |
Nanoscale microenvironment engineering for expanding human hair follicle stem cell and revealing their plasticity |
title_full |
Nanoscale microenvironment engineering for expanding human hair follicle stem cell and revealing their plasticity |
title_fullStr |
Nanoscale microenvironment engineering for expanding human hair follicle stem cell and revealing their plasticity |
title_full_unstemmed |
Nanoscale microenvironment engineering for expanding human hair follicle stem cell and revealing their plasticity |
title_sort |
nanoscale microenvironment engineering for expanding human hair follicle stem cell and revealing their plasticity |
publisher |
BMC |
series |
Journal of Nanobiotechnology |
issn |
1477-3155 |
publishDate |
2021-03-01 |
description |
Abstract Background Periodically regenerated hair follicles provide an excellent research model for studying tissue regeneration and stem cell homeostasis. Periodic activation and differentiation of hair follicle stem cells (HFSCs) fuel cyclical bouts of hair regeneration. HFSCs represent an excellent paradigm for studying tissue regeneration and somatic stem cell homeostasis. However, these crucial studies are hampered by the lack of a culture system able to stably expand human HFSCs and regulate their fate. Results Here, we use layer-by-layer (LbL) self-assembly with gelatin/alginate to construct a nanoscale biomimetic extracellular matrix (ECM) for an HFSC population. The LbL coating provides ECM and mechanical support for individual cells, which helps to maintain the CD200+α6+ HFSC population to a certain extent. Addition of key signal molecules (FGF-7 and VEGF-A) simulates the minimum essential components of the stem cell microenvironment, thereby effectively and stably expanding HFSCs and maintaining the CD200+α6+ HFSC population. Subsequently, BMP2 loaded to the nanocoated layer, as a slow-release signal molecule, activates BMP signaling to regulate HFSCs’ fate in order to obtain a purified CD200+α6+ HFSC population. Conclusion This system can minimize the microenvironment of HFSCs; thus, stably amplifying HFSCs and revealing their plasticity. Our study thus provides a new tool for studies of hair follicle reconstruction and stem cell homeostasis. |
topic |
Human hair follicle stem cells Stem cell microenvironment Layer-by-layer self-assembly Regenerative medicine Tissue engineering |
url |
https://doi.org/10.1186/s12951-021-00840-5 |
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