双特异性磷酸酶13和27是肌肉干细胞从增殖向分化转变的关键开关。

IF 4 2区 医学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY STEM CELLS Pub Date : 2024-07-08 DOI:10.1093/stmcls/sxae045
Takuto Hayashi, Shunya Sadaki, Ryosuke Tsuji, Risa Okada, Sayaka Fuseya, Maho Kanai, Ayano Nakamura, Yui Okamura, Masafumi Muratani, Gu Wenchao, Takehito Sugasawa, Seiya Mizuno, Eiji Warabi, Takashi Kudo, Satoru Takahashi, Ryo Fujita
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引用次数: 0

摘要

肌肉再生取决于肌肉干细胞(MuSC)的活性。包括肌母细胞决定蛋白1(MyoD)在内的肌肉生成调节因子可调节肌肉干细胞的命运转变。然而,MYOD在这一过程中的直接靶点尚不完全清楚。利用之前建立的 MyoD 基因敲入(MyoD-KI)小鼠,我们发现 MyoD 的靶标是双特异性磷酸酶(Dusp)13 和 Dusp27。在Dusp13:Dusp27双基因敲除(DKO)小鼠中,损伤后肌肉再生能力降低。此外,对MyoD-KI小鼠的MyoD高表达MuSCs进行单细胞RNA测序发现,Dusp13和Dusp27仅在MyoD高表达MuSCs的特定群体中表达,而这些群体也表达肌原蛋白。在MuSCs中过表达Dusp13会导致肌肉过早分化。因此,我们提出了一个模型,在该模型中,DUSP13和DUSP27有助于MuSCs在肌肉生成过程中从增殖到分化的命运转变。
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Dual-specificity phosphatases 13 and 27 as key switches in muscle stem cell transition from proliferation to differentiation.

Muscle regeneration depends on muscle stem cell (MuSC) activity. Myogenic regulatory factors, including myoblast determination protein 1 (MyoD), regulate the fate transition of MuSCs. However, the direct target of MYOD in the process is not completely clear. Using previously established MyoD knock-in (MyoD-KI) mice, we revealed that MyoD targets dual-specificity phosphatase (Dusp) 13 and Dusp27. In Dusp13:Dusp27 double knock-out (DKO) mice, the ability for muscle regeneration after injury was reduced. Moreover, single-cell RNA sequencing of MyoD-high expressing MuSCs from MyoD-KI mice revealed that Dusp13 and Dusp27 are expressed only in specific populations within MyoD-high MuSCs, which also express Myogenin. Overexpressing Dusp13 in MuSCs causes premature muscle differentiation. Thus, we propose a model where DUSP13 and DUSP27 contribute to the fate transition of MuSCs from proliferation to differentiation during myogenesis.

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来源期刊
STEM CELLS
STEM CELLS 医学-生物工程与应用微生物
CiteScore
10.30
自引率
1.90%
发文量
104
审稿时长
3 months
期刊介绍: STEM CELLS, a peer reviewed journal published monthly, provides a forum for prompt publication of original investigative papers and concise reviews. STEM CELLS is read and written by clinical and basic scientists whose expertise encompasses the rapidly expanding fields of stem and progenitor cell biology. STEM CELLS covers: Cancer Stem Cells, Embryonic Stem Cells/Induced Pluripotent Stem (iPS) Cells, Regenerative Medicine, Stem Cell Technology: Epigenetics, Genomics, Proteomics, and Metabonomics, Tissue-Specific Stem Cells, Translational and Clinical Research.
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