Prdm13与Ptf1a形成反馈回路,是非洲爪蟾视网膜中甘氨酸能无分泌细胞发生所必需的。

IF 4 3区 生物学 Q1 DEVELOPMENTAL BIOLOGY
Nathalie Bessodes, Karine Parain, Odile Bronchain, Eric J Bellefroid, Muriel Perron
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引用次数: 17

摘要

背景:调节双极细胞和神经节细胞之间突触可塑性的无突中间神经元是视网膜中最多样化的细胞类型。大多数是抑制性神经元,使用GABA或甘氨酸作为神经递质。虽然已经确定了几个参与无毛细胞命运决定的转录因子,但无毛细胞亚型规范的机制仍有待进一步了解。Prdm13组蛋白甲基转移酶编码基因是转录因子Ptf1a的靶标,Ptf1a是视网膜中抑制性神经元细胞命运的重要调节因子。在这里,我们加深了对其与Ptf1a相互作用的了解,并研究了其在发育中的非洲爪蟾视网膜中无突细胞亚型确定中的作用。方法:采用RT-qPCR、原位杂交和免疫组化的方法对非洲爪蟾进行prdm13功能的获得和丧失,并评估其对视网膜细胞命运的影响。结果:我们发现在两栖动物爪蟾中,prdm13在少数视网膜祖细胞和约40%的成熟无突细胞中表达,主要表达在甘氨酸能细胞中。视网膜克隆分析显示,prdm13过表达有利于无分泌细胞的命运决定,并偏向于甘氨酸能细胞。相反,敲低prdm13特异性地抑制甘氨酸能无分泌细胞的发生。我们还发现,就像在神经管中一样,prdm13在视网膜中受到消极的自动调节。我们的数据表明,这可能是由于它能够抑制其诱导剂ptf1a的表达。结论:我们的研究结果表明,Ptf1a下游的Prdm13是非洲爪蟾视网膜中甘氨酸能无分泌亚型特异性的重要调节因子。我们还发现Prdm13通过负反馈回路调节ptf1a的表达。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Prdm13 forms a feedback loop with Ptf1a and is required for glycinergic amacrine cell genesis in the Xenopus Retina.

Prdm13 forms a feedback loop with Ptf1a and is required for glycinergic amacrine cell genesis in the Xenopus Retina.

Prdm13 forms a feedback loop with Ptf1a and is required for glycinergic amacrine cell genesis in the Xenopus Retina.

Prdm13 forms a feedback loop with Ptf1a and is required for glycinergic amacrine cell genesis in the Xenopus Retina.

Background: Amacrine interneurons that modulate synaptic plasticity between bipolar and ganglion cells constitute the most diverse cell type in the retina. Most are inhibitory neurons using either GABA or glycine as neurotransmitters. Although several transcription factors involved in amacrine cell fate determination have been identified, mechanisms underlying amacrine cell subtype specification remain to be further understood. The Prdm13 histone methyltransferase encoding gene is a target of the transcription factor Ptf1a, an essential regulator of inhibitory neuron cell fate in the retina. Here, we have deepened our knowledge on its interaction with Ptf1a and investigated its role in amacrine cell subtype determination in the developing Xenopus retina.

Methods: We performed prdm13 gain and loss of function in Xenopus and assessed the impact on retinal cell fate determination using RT-qPCR, in situ hybridization and immunohistochemistry.

Results: We found that prdm13 in the amphibian Xenopus is expressed in few retinal progenitors and in about 40% of mature amacrine cells, predominantly in glycinergic ones. Clonal analysis in the retina reveals that prdm13 overexpression favours amacrine cell fate determination, with a bias towards glycinergic cells. Conversely, knockdown of prdm13 specifically inhibits glycinergic amacrine cell genesis. We also showed that, as in the neural tube, prdm13 is subjected to a negative autoregulation in the retina. Our data suggest that this is likely due to its ability to repress the expression of its inducer, ptf1a.

Conclusions: Our results demonstrate that Prdm13, downstream of Ptf1a, acts as an important regulator of glycinergic amacrine subtype specification in the Xenopus retina. We also reveal that Prdm13 regulates ptf1a expression through a negative feedback loop.

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来源期刊
Neural Development
Neural Development 生物-发育生物学
CiteScore
6.60
自引率
0.00%
发文量
11
审稿时长
>12 weeks
期刊介绍: Neural Development is a peer-reviewed open access, online journal, which features studies that use molecular, cellular, physiological or behavioral methods to provide novel insights into the mechanisms that underlie the formation of the nervous system. Neural Development aims to discover how the nervous system arises and acquires the abilities to sense the world and control adaptive motor output. The field includes analysis of how progenitor cells form a nervous system during embryogenesis, and how the initially formed neural circuits are shaped by experience during early postnatal life. Some studies use well-established, genetically accessible model systems, but valuable insights are also obtained from less traditional models that provide behavioral or evolutionary insights.
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