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Axin 在早期的全球作用对于海胆胚胎前后轴的正确模式形成是必需的。

An early global role for Axin is required for correct patterning of the anterior-posterior axis in the sea urchin embryo.

机构信息

Department of Biology, University of Miami, Coral Gables, FL 33146, USA.

Department of Biology, University of Miami, Coral Gables, FL 33146, USA

出版信息

Development. 2021 Mar 31;148(7):dev191197. doi: 10.1242/dev.191197.

Abstract

Activation of Wnt/β-catenin (cWnt) signaling at the future posterior end of early bilaterian embryos is a highly conserved mechanism for establishing the anterior-posterior (AP) axis. Moreover, inhibition of cWnt at the anterior end is required for development of anterior structures in many deuterostome taxa. This phenomenon, which occurs around the time of gastrulation, has been fairly well characterized, but the significance of intracellular inhibition of cWnt signaling in cleavage-stage deuterostome embryos for normal AP patterning is less well understood. To investigate this process in an invertebrate deuterostome, we defined Axin function in early sea urchin embryos. is ubiquitously expressed at relatively high levels in early embryos and functional analysis revealed that Axin suppresses posterior cell fates in anterior blastomeres by blocking ectopic cWnt activation in these cells. Structure-function analysis of sea urchin Axin demonstrated that only its GSK-3β-binding domain is required for cWnt inhibition. These observations and results in other deuterostomes suggest that Axin plays a crucial conserved role in embryonic AP patterning by preventing cWnt activation in multipotent early blastomeres, thus protecting them from assuming ectopic cell fates.

摘要

Wnt/β-catenin(经典 Wnt)信号在早期两侧对称胚胎未来的后极处的激活是建立前后(AP)轴的高度保守机制。此外,在许多后口动物类群中,cWnt 在前端的抑制对于前体结构的发育是必需的。这种发生在原肠胚形成期左右的现象已经得到了相当充分的描述,但 cWnt 信号在原肠胚形成期后口动物胚胎中的细胞内抑制对于正常的 AP 模式形成的意义还不太清楚。为了在无脊椎后生动物中研究这个过程,我们定义了早期海胆胚胎中 Axin 的功能。 在早期胚胎中广泛表达,并且功能分析表明 Axin 通过阻断这些细胞中异位 cWnt 的激活来抑制前极胚裂球的后极命运。海胆 Axin 的结构-功能分析表明,只有其 GSK-3β 结合域对于 cWnt 抑制是必需的。这些观察结果和其他后口动物的结果表明,Axin 通过防止多能早期胚裂球中 cWnt 的激活,从而保护它们免受异位细胞命运的影响,在胚胎 AP 模式形成中发挥着至关重要的保守作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f5e9/8034878/6504d58e8f9b/develop-148-191197-g1.jpg

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