1.Characterization of Ets-1 deficiency-induced depigmentation in a mouse model: insights into vitiligo pathogenesis
Wen-Yu CHANG ; Tzong-Shyuan TAI ; Yu-Chun LIN ; Po-Han CHEN ; Chih-Yang CHANG ; Yue-Chiu SU ; Ying-Hsien KAO
Laboratory Animal Research 2025;41(4):339-351
Background:
Vitiligo is a skin disorder characterized by the loss of melanocytes (MCs), leading to depigmentation.While the exact mechanisms are unclear, the transcription factor Ets-1, known for its role in regulating matrix metalloproteinase expression and MC migration, is suspected to play a part. Ets-1 gene-deficient mice exhibit a vitiligo-like phenotype with spontaneous skin depigmentation, suggesting a direct link between Ets-1 deficiency and MC dysfunction. This study aimed to characterize the molecular and histological features of Ets-1 gene knockout (KO) mice to understand the underlying mechanisms of this depigmentation.
Results:
Transcriptomic analysis of depigmented and normal skin from Ets-1 KO and wild-type mice revealed significant differentially expressed genes (DEGs). KEGG pathway enrichment analysis demonstrated alterations in metabolic and signal transduction pathways, notably the downregulation of melanogenesis-related genes. RT-qPCR and immunohistochemistry confirmed reduced tyrosinase expression at both transcript and protein levels in the depigmented skin of KO mice. Protein-protein interaction network analysis of the DEGs highlighted a central network involving keratin proteins and discrete interactions regulating melanogenesis, stress response, and cellular signaling pathways.
Conclusions
These findings demonstrate that Ets-1 deficiency in mice leads to significant molecular and histological changes consistent with MC dysfunction and depigmentation. The observed downregulation of melanogenesisrelated genes and alterations in key signaling pathways provide valuable insights into the molecular basis of Ets-1’s role in MC maintenance and suggest potential therapeutic targets for skin pigmentation disorders, including vitiligo.
2.Infusion of Human Mesenchymal Stem Cells Improves Regenerative Niche in Thioacetamide-Injured Mouse Liver
Ying-Hsien KAO ; Yu-Chun LIN ; Po-Huang LEE ; Chia-Wei LIN ; Po-Han CHEN ; Tzong-Shyuan TAI ; Yo-Chen CHANG ; Ming-Huei CHOU ; Chih-Yang CHANG ; Cheuk-Kwan SUN
Tissue Engineering and Regenerative Medicine 2020;17(5):671-682
BACKGROUND:
This study investigated whether xenotransplantation of human Wharton’s jelly-derived mesenchymal stem cells (WJ-MSCs) reduces thioacetamide (TAA)-induced mouse liver fibrosis and the underlying molecular mechanism.
METHODS:
Recipient NOD/SCID mice were injected intraperitoneally with TAA twice weekly for 6 weeks before initial administration of WJ-MSCs. Expression of regenerative and pro-fibrogenic markers in mouse fibrotic livers were monitored post cytotherapy. A hepatic stallate cell line HSC-T6 and isolated WJ-MSCs were used for in vitro adhesion, migration and mechanistic studies.
RESULTS:
WJ-MSCs were isolated from human umbilical cords by an explant method and characterized by flow cytometry. A single infusion of WJ-MSCs to TAA-treated mice significantly reduced collagen deposition and ameliorated liver fibrosis after 2-week therapy. In addition to enhanced expression of hepatic regenerative factor, hepatocyte growth factor, and PCNA proliferative marker, WJ-MSC therapy significantly blunted pro-fibrogenic signals, including Smad2, RhoA, ERK. Intriguingly, reduction of plasma fibronectin (pFN) in fibrotic livers was noted in MSC-treated mice. In vitro studies further demonstrated that suspending MSCs triggered pFN degradation, soluble pFN conversely retarded adhesion of suspending MSCs onto type I collagen-coated surface, whereas pFN coating enhanced WJ-MSC migration across mimicked wound bed. Moreover, pretreatment with soluble pFN and conditioned medium from MSCs with pFN strikingly attenuated the response of HSC-T6 cells to TGF-b1-stimulation in Smad2 phosphorylation and RhoA upregulation.
CONCLUSION
These findings suggest that cytotherapy using WJ-MSCs may modulate hepatic pFN deposition for a better regenerative niche in the fibrotic livers and may constitute a useful anti-fibrogenic intervention in chronic liver diseases.
3.Infusion of Human Mesenchymal Stem Cells Improves Regenerative Niche in Thioacetamide-Injured Mouse Liver
Ying-Hsien KAO ; Yu-Chun LIN ; Po-Huang LEE ; Chia-Wei LIN ; Po-Han CHEN ; Tzong-Shyuan TAI ; Yo-Chen CHANG ; Ming-Huei CHOU ; Chih-Yang CHANG ; Cheuk-Kwan SUN
Tissue Engineering and Regenerative Medicine 2020;17(5):671-682
BACKGROUND:
This study investigated whether xenotransplantation of human Wharton’s jelly-derived mesenchymal stem cells (WJ-MSCs) reduces thioacetamide (TAA)-induced mouse liver fibrosis and the underlying molecular mechanism.
METHODS:
Recipient NOD/SCID mice were injected intraperitoneally with TAA twice weekly for 6 weeks before initial administration of WJ-MSCs. Expression of regenerative and pro-fibrogenic markers in mouse fibrotic livers were monitored post cytotherapy. A hepatic stallate cell line HSC-T6 and isolated WJ-MSCs were used for in vitro adhesion, migration and mechanistic studies.
RESULTS:
WJ-MSCs were isolated from human umbilical cords by an explant method and characterized by flow cytometry. A single infusion of WJ-MSCs to TAA-treated mice significantly reduced collagen deposition and ameliorated liver fibrosis after 2-week therapy. In addition to enhanced expression of hepatic regenerative factor, hepatocyte growth factor, and PCNA proliferative marker, WJ-MSC therapy significantly blunted pro-fibrogenic signals, including Smad2, RhoA, ERK. Intriguingly, reduction of plasma fibronectin (pFN) in fibrotic livers was noted in MSC-treated mice. In vitro studies further demonstrated that suspending MSCs triggered pFN degradation, soluble pFN conversely retarded adhesion of suspending MSCs onto type I collagen-coated surface, whereas pFN coating enhanced WJ-MSC migration across mimicked wound bed. Moreover, pretreatment with soluble pFN and conditioned medium from MSCs with pFN strikingly attenuated the response of HSC-T6 cells to TGF-b1-stimulation in Smad2 phosphorylation and RhoA upregulation.
CONCLUSION
These findings suggest that cytotherapy using WJ-MSCs may modulate hepatic pFN deposition for a better regenerative niche in the fibrotic livers and may constitute a useful anti-fibrogenic intervention in chronic liver diseases.

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