离子通道Anoctamin 10/TMEM16K可协调泌尿脊索动物脊索上不同尺度的器官形态发生。

IF 9.8 1区 生物学 Q1 Agricultural and Biological Sciences PLoS Biology Pub Date : 2024-08-22 eCollection Date: 2024-08-01 DOI:10.1371/journal.pbio.3002762
Zonglai Liang, Daniel Christiaan Dondorp, Marios Chatzigeorgiou
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引用次数: 0

摘要

在胚胎发育过程中,组织和器官通过一系列时空紧密配合的细胞行为逐渐形成其功能形态。上皮管是后生动物高度保守的器官形态。管的形态发生是一个复杂的多步骤过程,包括精心编排的细胞行为,如会聚延伸、细胞伸长和管腔形成。协调这些错综复杂的形态发生步骤的信号分子的身份仍然难以确定。脊索是一种重要的管状器官,存在于脊索动物门所有成员的胚胎中线区域。在这里,我们利用基因组编辑、药理学和定量成像技术对早期脊索动物脊索动物肠(Ciona intestinalis)进行了研究,结果表明 Ano10/Tmem16k(一种进化古老的跨膜蛋白家族成员,被称为 Anoctamin/TMEM16 )对于脊索形态发生过程中的会聚延伸、管腔扩张和连接至关重要。我们发现 Ano10/Tmem16k 与质膜(PM)定位的 Na+/Ca2+ 交换器(NCX)和内质网(ER)驻留的 SERCA、RyR 和 IP3R 蛋白协同作用,建立了发育阶段特异性 Ca2+ 信号分子模块,从而调控脊索形态发生和 Ca2+ 动态。此外,我们发现高度保守的钙离子传感器钙调蛋白(CaM)和钙离子/钙调蛋白依赖性蛋白激酶(CaMK)显示出依赖于 Ano10/Tmem16k 的亚细胞定位。对它们的药理抑制会导致会聚延伸、肾小管生成缺陷和 Ca2+ 动态失常,这表明 Ano10/Tmem16k 参与了发育 Ca2+ 信号的 "编码 "和 "解码"。此外,在脊索形态发生过程中,Ano10/Tmem16k 可能通过改变两种重要的细胞骨架调节因子--小 GTPase Ras 同源家族成员 A(RhoA)和肌动蛋白结合蛋白 Cofilin 的定位,介导细胞骨架重组。最后,我们利用组织培养中的电生理记录和扰乱酶试验证明,Ano10/Tmem16k 很可能充当离子通道,而不是磷脂扰乱酶。我们的研究结果确立了 Ano10/Tmem16k 在前脊椎动物分子工具包中的新角色地位,该工具包控制着不同尺度的器官形态发生。
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The ion channel Anoctamin 10/TMEM16K coordinates organ morphogenesis across scales in the urochordate notochord.

During embryonic development, tissues and organs are gradually shaped into their functional morphologies through a series of spatiotemporally tightly orchestrated cell behaviors. A highly conserved organ shape across metazoans is the epithelial tube. Tube morphogenesis is a complex multistep process of carefully choreographed cell behaviors such as convergent extension, cell elongation, and lumen formation. The identity of the signaling molecules that coordinate these intricate morphogenetic steps remains elusive. The notochord is an essential tubular organ present in the embryonic midline region of all members of the chordate phylum. Here, using genome editing, pharmacology and quantitative imaging in the early chordate Ciona intestinalis we show that Ano10/Tmem16k, a member of the evolutionarily ancient family of transmembrane proteins called Anoctamin/TMEM16 is essential for convergent extension, lumen expansion, and connection during notochord morphogenesis. We find that Ano10/Tmem16k works in concert with the plasma membrane (PM) localized Na+/Ca2+ exchanger (NCX) and the endoplasmic reticulum (ER) residing SERCA, RyR, and IP3R proteins to establish developmental stage specific Ca2+ signaling molecular modules that regulate notochord morphogenesis and Ca2+ dynamics. In addition, we find that the highly conserved Ca2+ sensors calmodulin (CaM) and Ca2+/calmodulin-dependent protein kinase (CaMK) show an Ano10/Tmem16k-dependent subcellular localization. Their pharmacological inhibition leads to convergent extension, tubulogenesis defects, and deranged Ca2+ dynamics, suggesting that Ano10/Tmem16k is involved in both the "encoding" and "decoding" of developmental Ca2+ signals. Furthermore, Ano10/Tmem16k mediates cytoskeletal reorganization during notochord morphogenesis, likely by altering the localization of 2 important cytoskeletal regulators, the small GTPase Ras homolog family member A (RhoA) and the actin binding protein Cofilin. Finally, we use electrophysiological recordings and a scramblase assay in tissue culture to demonstrate that Ano10/Tmem16k likely acts as an ion channel but not as a phospholipid scramblase. Our results establish Ano10/Tmem16k as a novel player in the prevertebrate molecular toolkit that controls organ morphogenesis across scales.

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来源期刊
PLoS Biology
PLoS Biology BIOCHEMISTRY & MOLECULAR BIOLOGY-BIOLOGY
CiteScore
15.40
自引率
2.00%
发文量
359
审稿时长
3-8 weeks
期刊介绍: PLOS Biology is the flagship journal of the Public Library of Science (PLOS) and focuses on publishing groundbreaking and relevant research in all areas of biological science. The journal features works at various scales, ranging from molecules to ecosystems, and also encourages interdisciplinary studies. PLOS Biology publishes articles that demonstrate exceptional significance, originality, and relevance, with a high standard of scientific rigor in methodology, reporting, and conclusions. The journal aims to advance science and serve the research community by transforming research communication to align with the research process. It offers evolving article types and policies that empower authors to share the complete story behind their scientific findings with a diverse global audience of researchers, educators, policymakers, patient advocacy groups, and the general public. PLOS Biology, along with other PLOS journals, is widely indexed by major services such as Crossref, Dimensions, DOAJ, Google Scholar, PubMed, PubMed Central, Scopus, and Web of Science. Additionally, PLOS Biology is indexed by various other services including AGRICOLA, Biological Abstracts, BIOSYS Previews, CABI CAB Abstracts, CABI Global Health, CAPES, CAS, CNKI, Embase, Journal Guide, MEDLINE, and Zoological Record, ensuring that the research content is easily accessible and discoverable by a wide range of audiences.
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