Nkx2.2a促进斑马鱼少突胶质谱系细胞的髓鞘亚群的特化和分化。

Sarah Kucenas, Heather Snell, Bruce Appel
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引用次数: 71

摘要

在发育过程中,多能神经前体产生少突胶质细胞祖细胞(OPCs),其迁移和分裂产生额外的OPCs。在胚胎发生末期和出生后阶段,许多OPCs停止分裂并分化为有髓鞘的少突胶质细胞,而其他OPCs则继续作为无髓鞘细胞存在。对小鼠少突胶质细胞发育的研究表明,Nkx2.2转录因子既限制OPCs的形成数量,又促进它们的分化,这就提出了Nkx2.2在决定髓鞘形成与非髓鞘形成的命运中起关键作用的可能性。我们利用斑马鱼体内延时成像和功能丧失实验来进一步探索少突胶质细胞谱系细胞的形成和分化。我们的数据表明,新指定的OPCs在基因表达和命运方面是异质的。虽然一些OPCs表达nkx2.2a基因并分化为少突胶质细胞,但其他不表达nkx2.2a的OPCs大多仍然是非髓鞘OPCs。与小鼠类似,nkx2.2a功能的丧失导致OPCs过量和少突胶质细胞分化延迟。值得注意的是,过量的OPC是神经前体细胞长时间产生OPC的结果。我们得出结论,Nkx2.2促进了代表不同脊椎动物分类群的物种的髓鞘少突胶质细胞谱系细胞的及时规范和分化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
nkx2.2a promotes specification and differentiation of a myelinating subset of oligodendrocyte lineage cells in zebrafish.

During development, multipotent neural precursors give rise to oligodendrocyte progenitor cells (OPCs), which migrate and divide to produce additional OPCs. Near the end of embryogenesis and during postnatal stages, many OPCs stop dividing and differentiate as myelinating oligodendrocytes, whereas others persist as nonmyelinating cells. Investigations of oligodendrocyte development in mice indicated that the Nkx2.2 transcription factor both limits the number of OPCs that are formed and subsequently promotes their differentiation, raising the possibility that Nkx2.2 plays a key role in determining myelinating versus nonmyelinating fate. We used in vivo time-lapse imaging and loss-of-function experiments in zebrafish to further explore formation and differentiation of oligodendrocyte lineage cells. Our data show that newly specified OPCs are heterogeneous with respect to gene expression and fate. Whereas some OPCs express the nkx2.2a gene and differentiate as oligodendrocytes, others that do not express nkx2.2a mostly remain as nonmyelinating OPCs. Similarly to mouse, loss of nkx2.2a function results in excess OPCs and delayed oligodendrocyte differentiation. Notably, excess OPCs are formed as a consequence of prolonged OPC production from neural precursor cells. We conclude that Nkx2.2 promotes timely specification and differentiation of myelinating oligodendrocyte lineage cells from species representing different vertebrate taxa.

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Neuron glia biology
Neuron glia biology 医学-神经科学
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