1.Dual Specificity Phosphatase 27 Regulates Pluripotency and Meso-Endodermal Differentiation by Interacting with Transcription Factor CP2 Like-1 in Embryonic Stem Cells
Sujin SONG ; Jinbeom HEO ; Siwon LEE ; Yun Ji NAM ; YongHwan KIM ; Hyein JU ; Hyungu KWON ; Hyun Jun IM ; Seok Woo HA ; Hyun Ji KIM ; Dabin LEE ; Sang Jin PARK ; Sang Hoon SONG ; Juhyun PARK ; Eui Man JEONG ; Kyunggon KIM ; Dong-Myung SHIN ; Seungun LEE
International Journal of Stem Cells 2025;18(4):412-425
Transcription factor CP2-like protein 1 (Tfcp2l1), a naïve pluripotency transcription factor, is expressed in both early embryonic and adult tissues, where it enforces pluripotency of embryonic stem cells (ESCs) and stemness features of cancer cells, respectively. However, the detailed molecular pathways by which Tfcp2l1 is regulated in early embryonic development and cancer cells remain unknown. Here, we identified the pseudophosphatase dual specificity phosphatase 27 (Dusp27), also known as serine/threonine/tyrosine-interacting like-2, as a novel Tfcp2l1-interacting protein through a sterile alpha motif-like domain in the C-terminus of Tfcp2l1 in murine ESCs. The interaction between Dusp27 and Tfcp2l1 was dependent on the cell cycle status and increased during mitosis. Expression of Dusp27 was upregulated during naïve pluripotency and repressed during spontaneous differentiation of murine ESCs. Ectopic expression of Dusp27 enhanced the transcriptional activity of Tfcp2l1 and promoted features associated with the naïve pluripotent state, while suppressing meso-endodermal lineage differentiation. The present study demonstrates that Dusp27 is a novel positive regulator of Tfcp2l1 through a physical interaction and thereby fine-tunes the pluripotency status and meso-endodermal differentiation of murine ESCs.
2.The Therapeutic Effect of Human Embryonic Stem Cell-Derived Multipotent Mesenchymal Stem Cells on Chemical-Induced Cystitis in Rats
Sang Wook LEE ; Chae Min RYU ; Jung Hyun SHIN ; Daeheon CHOI ; Aram KIM ; Hwan Yeul YU ; Ju Young HAN ; Hye Yeon LEE ; Jisun LIM ; Yong Hwan KIM ; Jinbeom HEO ; Seungun LEE ; Hyein JU ; Sujin KIM ; Ki Sung HONG ; Ji Yeon HAN ; Miho SONG ; Hyung Min CHUNG ; Jun Ki KIM ; Dong Myung SHIN ; Myung Soo CHOO
International Neurourology Journal 2018;22(Suppl 1):S34-S45
PURPOSE: To evaluate the therapeutic effect of human embryonic stem cell (hESC)-derived multipotent mesenchymal stem cells (M-MSCs) on ketamine-induced cystitis (KC) in rats. METHODS: To induce KC, 10-week-old female rats were injected with 25-mg/kg ketamine hydrochloride twice weekly for 12 weeks. In the sham group, phosphate buffered saline (PBS) was injected instead of ketamine. One week after the final injection of ketamine, the indicated doses (0.25, 0.5, and 1×106 cells) of M-MSCs (KC+M-MSC group) or PBS vehicle (KC group) were directly injected into the bladder wall. One week after M-MSC injection, the therapeutic outcomes were evaluated via cystometry, histological analyses, and measurement of gene expression. Next, we compared the efficacy of M-MSCs at a low dose (1×105 cells) to that of an identical dose of adult bone marrow (BM)-derived MSCs. RESULTS: Rats in the KC group exhibited increased voiding frequency and reduced bladder capacity compared to rats of the sham group. However, these parameters recovered after transplantation of M-MSCs at all doses tested. KC bladders exhibited markedly increased mast cell infiltration, apoptosis, and tissue fibrosis. Administration of M-MSCs significantly reversed these characteristic histological alterations. Gene expression analyses indicated that several genes associated with tissue fibrosis were markedly upregulated in KC bladders. However the expression of these genes was significantly suppressed by the administration of M-MSCs. Importantly, M-MSCs ameliorated bladder deterioration in KC rats after injection of a low dose (1×105) of cells, at which point BM-derived MSCs did not substantially improve bladder function. CONCLUSIONS: This study demonstrates for the first time the therapeutic efficacy of hESC-derived M-MSCs on KC in rats. M-MSCs restored bladder function more effectively than did BM-derived MSCs, protecting against abnormal changes including mast cell infiltration, apoptosis and fibrotic damage.
Adult
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Animals
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Apoptosis
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Bone Marrow
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Cystitis
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Female
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Fibrosis
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Gene Expression
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Human Embryonic Stem Cells
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Humans
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Ketamine
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Mast Cells
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Mesenchymal Stromal Cells
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Multipotent Stem Cells
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Pelvic Pain
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Rats
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Urinary Bladder

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