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O-岩藻糖基化调控 Notch 信号控制的血液谱系分化。

O-fucose modulates Notch-controlled blood lineage commitment.

机构信息

Department of Pathology, Case Western Reserve University, Cleveland, OH 44106, USA.

出版信息

Am J Pathol. 2010 Jun;176(6):2921-34. doi: 10.2353/ajpath.2010.090702. Epub 2010 Apr 2.

Abstract

Notch receptors are cell surface molecules essential for cell fate determination. Notch signaling is subject to tight regulation at multiple levels, including the posttranslational modification of Notch receptors by O-linked fucosylation, a reaction that is catalyzed by protein O-fucosyltransferase-1 (Pofut1). Our previous studies identified a myeloproliferative phenotype in mice conditionally deficient in cellular fucosylation that is attributable to a loss of Notch-dependent suppression of myelopoiesis. Here, we report that hematopoietic stem cells deficient in cellular fucosylation display decreased frequency and defective repopulating ability as well as decreased lymphoid but increased myeloid developmental potential. This phenotype may be attributed to suppressed Notch ligand binding and reduced downstream signaling of Notch activity in hematopoietic stem cells. Consistent with this finding, we further demonstrate that mouse embryonic stem cells deficient in Notch1 (Notch1(-/-)) or Pofut1 (Pofut1(-/-)) fail to generate T lymphocytes but differentiate into myeloid cells while coculturing with Notch ligand-expressing bone marrow stromal cells in vitro. Moreover, in vivo hematopoietic reconstitution of CD34(+) progenitor cells derived from either Notch1(-/-) or Pofut1(-/-) embryonic stem cells show enhanced granulopoiesis with depressed lymphoid lineage development. Together, these results indicate that Notch signaling maintains hematopoietic lineage homeostasis by promoting lymphoid development and suppressing overt myelopoiesis, in part through processes controlled by O-linked fucosylation of Notch receptors.

摘要

Notch 受体是细胞表面分子,对细胞命运决定至关重要。Notch 信号受到多个层面的严格调控,包括 Notch 受体的 O-连接岩藻糖基化的翻译后修饰,该反应由蛋白 O-岩藻糖基转移酶-1(Pofut1)催化。我们之前的研究在条件性缺乏细胞岩藻糖基化的小鼠中鉴定出一种骨髓增生性表型,这归因于 Notch 依赖性抑制骨髓生成的丧失。在这里,我们报告造血干细胞中细胞岩藻糖基化的缺失表现出频率降低和功能缺陷的再殖能力,以及淋巴样但增加的髓样发育潜能。这种表型可能归因于 Notch 配体结合的抑制和造血干细胞中 Notch 活性的下游信号转导减少。与这一发现一致,我们进一步证明,缺乏 Notch1(Notch1(-/-))或 Pofut1(Pofut1(-/-))的小鼠胚胎干细胞无法生成 T 淋巴细胞,但在体外与表达 Notch 配体的骨髓基质细胞共培养时分化为髓系细胞。此外,来自 Notch1(-/-)或 Pofut1(-/-)胚胎干细胞的 CD34(+)祖细胞的体内造血重建显示出增强的粒细胞生成,同时淋巴谱系发育受到抑制。总之,这些结果表明,Notch 信号通过促进淋巴样发育和抑制明显的骨髓生成来维持造血谱系的内稳态,部分通过 Notch 受体的 O-连接岩藻糖基化控制的过程。

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本文引用的文献

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Notch-dependent control of myelopoiesis is regulated by fucosylation.
Blood. 2008 Jul 15;112(2):308-19. doi: 10.1182/blood-2007-11-115204. Epub 2008 Mar 21.
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Roles of Pofut1 and O-fucose in mammalian Notch signaling.
J Biol Chem. 2008 May 16;283(20):13638-51. doi: 10.1074/jbc.M802027200. Epub 2008 Mar 17.
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The threonine that carries fucose, but not fucose, is required for Cripto to facilitate Nodal signaling.
J Biol Chem. 2007 Jul 13;282(28):20133-41. doi: 10.1074/jbc.M702593200. Epub 2007 May 15.

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