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电压门控钠离子通道活性通过空间调节 Wnt5 表达来介导海胆幼虫骨骼模式形成。

Voltage-gated sodium channel activity mediates sea urchin larval skeletal patterning through spatial regulation of Wnt5 expression.

机构信息

Department of Biology, Boston University, Boston, MA 02215, USA.

Program in Cell and Molecular Biology, Boston University, Boston, MA 02215, USA.

出版信息

Development. 2023 May 15;150(10). doi: 10.1242/dev.201460. Epub 2023 May 25.

DOI:10.1242/dev.201460
PMID:37139779
Abstract

Defining pattern formation mechanisms during embryonic development is important for understanding the etiology of birth defects and to inform tissue engineering approaches. In this study, we used tricaine, a voltage-gated sodium channel (VGSC) inhibitor, to show that VGSC activity is required for normal skeletal patterning in Lytechinus variegatus sea urchin larvae. We demonstrate that tricaine-mediated patterning defects are rescued by an anesthetic-insensitive version of the VGSC LvScn5a. Expression of this channel is enriched in the ventrolateral ectoderm, where it spatially overlaps with posterolaterally expressed Wnt5. We show that VGSC activity is required to spatially restrict Wnt5 expression to this ectodermal region that is adjacent and instructive to clusters of primary mesenchymal cells that initiate secretion of the larval skeleton as triradiates. Tricaine-mediated Wnt5 spatial expansion correlates with the formation of ectopic PMC clusters and triradiates. These defects are rescued by Wnt5 knockdown, indicating that the spatial expansion of Wnt5 is responsible for the patterning defects induced by VGSC inhibition. These results demonstrate a previously unreported connection between bioelectrical status and the spatial control of patterning cue expression during embryonic pattern formation.

摘要

在胚胎发育过程中定义形态发生机制对于理解出生缺陷的病因学以及为组织工程方法提供信息非常重要。在这项研究中,我们使用了三卡因(一种电压门控钠离子通道(VGSC)抑制剂),以证明 VGSC 活性是 Lytechinus variegatus 海胆幼虫正常骨骼模式形成所必需的。我们证明,三卡因介导的模式缺陷可以通过 VGSC LvScn5a 的麻醉不敏感版本来挽救。该通道的表达在腹外侧外胚层中富集,在那里它与 posterolaterally 表达的 Wnt5 空间重叠。我们表明,VGSC 活性是将 Wnt5 表达空间限制在该外胚层区域所必需的,该区域与起始分泌幼虫骨骼作为三叶状的初级间充质细胞簇相邻且具有指导作用。三卡因介导的 Wnt5 空间扩展与异位 PMC 簇和三叶状的形成相关。Wnt5 的下调挽救了这些缺陷,表明 Wnt5 的空间扩展是由 VGSC 抑制引起的模式缺陷的原因。这些结果表明,在胚胎形态发生过程中,生物电状态与形态发生线索表达的空间控制之间存在以前未报道的联系。

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