Ptbp1不是视网膜神经发生和细胞命运规范所必需的。

Haley Appel, Rogger P Carmen-Orozco, Clayton P Santiago, Thanh Hoang, Seth Blackshaw
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引用次数: 0

摘要

rna结合蛋白Ptbp1被认为是神经元命运的主要调节因子,通过其对选择性剪接和miRNA成熟的影响来抑制神经发生。虽然先前使用RNA干扰的研究表明Ptbp1的缺失促进神经发生,但最近的遗传学研究未能复制Ptbp1功能缺失后胶质细胞到神经元的转化。为了评估Ptbp1在体内发育性神经发生中的作用,我们有条件地破坏了视网膜祖细胞中的Ptbp1。Ptbp1在视网膜祖细胞和神经胶质细胞中均有强烈表达,但在有丝分裂后神经元中不表达,并且通过Ptbp1的免疫染色证实突变动物的有效功能丧失。此外,在E16处的大量rna测序显示,Ptbp1突变体的晚期祖基因和光受体特异性基因的表达加速,剪接模式改变,包括杆光受体特异性外显子的增加。然而,我们在成熟视网膜中没有观察到视网膜层压、祖细胞增殖或细胞命运规范的缺陷。成熟突变视网膜的ScRNA-Seq显示,只有适度的转录变化,部分再现了成熟胶质细胞中选择性删除Ptbp1后所见的变化。我们的研究结果表明,pptp1在视网膜发育中是必不可少的,并建议重新评估其作为神经发生中枢抑制因子的作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ptbp1 is not required for retinal neurogenesis and cell fate specification.

The RNA-binding protein Ptbp1 has been proposed as a master regulator of neuronal fate, repressing neurogenesis through its effects on alternative splicing and miRNA maturation. While prior studies using RNA interference suggested that Ptbp1 loss promotes neurogenesis, recent genetic studies have failed to replicate glia-to-neuron conversion following Ptbp1 loss of function. To evaluate the role of Ptbp1 in developmental neurogenesis in vivo, we conditionally disrupted Ptbp1 in retinal progenitors. Ptbp1 was robustly expressed in both retinal progenitors and Müller glia but absent from postmitotic neurons, and efficient loss of function in mutant animals was confirmed using immunostaining for Ptbp1. Furthermore, bulk RNA-Seq at E16 revealed accelerated expression of late-stage progenitor and photoreceptor-specific genes and altered splicing patterns in Ptbp1 mutants, including increased inclusion of rod photoreceptor-specific exons. However, we observed no defects in retinal lamination, progenitor proliferation, or cell fate specification in mature retina. ScRNA-Seq of mature mutant retinas revealed only modest transcriptional changes which partially recapitulate alterations seen following selective deletion of Ptbp1 in mature glia. Our findings demonstrate that Ptbp1 is dispensable for retinal cell fate specification and suggest that its proposed role as a central repressor of neurogenesis should be reevaluated.

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