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The Role of the Second Heart Field in Zebrafish Heart Development.

机译:第二心脏场在斑马鱼心脏发育中的作用。

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摘要

The vertebrate heart forms from two distinct progenitor populations called the First Heart Field (FHF) and Second Heart Field (SHF). FHF progenitors differentiate first to form the initial beating heart tube. SHF progenitors differentiate later than FHF progenitors and contribute to distinct parts of the developing vertebrate heart. Heart structures derived from the SHF are perturbed in congenital heart defects, which affect approximately 0.5% of newborns. Here I provide data pertaining to the identification, visualization, and regulation of the SHF in the vertebrate teleost zebrafish (Danio rerio). I developed a photoconversion assay to observe and quantify SHF cell addition to the developing heart. I discovered that SHF cell addition occurred continuously between 20 hours post fertilization (hpf) and 48hpf to both the atrium and the ventricle. I identified a transgenic, nppa:EGFP, as a novel marker of SHF progenitors, allowing us to visualize the SHF progenitors before differentiation and addition to the developing heart. FGF signaling was required for SHF progenitor establishment and SHF cell addition to the heart tube. mef2cb was shown to be required for zebrafish SHF development. mef2cb expression marked SHF cells fated to be added to the ventricle, with inhibition of mef2cb resulting in a strong reduction in SHF cell addition. I also identified hey2 as a novel negative regulator of the zebrafish SHF. hey2 expression was observed in candidate SHF progenitors and hey2 inhibition resulted in an increase of SHF progenitors and SHF cell addition. My studies demonstrated that the SHF is an integral part of zebrafish heart development and that zebrafish SHF development shows many similarities this process in mammals. This places the zebrafish as a new and strong model system for the study of SHF development and its role in congenital heart disease.
机译:脊椎动物的心脏来自两个不同的祖细胞群,分别称为第一心脏场(FHF)和第二心脏场(SHF)。 FHF祖细胞首先分化形成最初的跳动心脏管。 SHF祖细胞的分化比FHF祖细胞晚,并有助于发育中的脊椎动物心脏的不同部分。源自SHF的心脏结构会受到先天性心脏缺陷的干扰,这些缺陷会影响约0.5%的新生儿。在这里,我提供了与脊椎动物硬骨斑马鱼(Danio rerio)中SHF的鉴定,可视化和调控有关的数据。我开发了一种光转化测定法,以观察和定量SHF细胞向发育中心脏的添加。我发现在受精(hpf)后20小时到中庭和心室的48hpf之间连续不断地添加SHF细胞。我鉴定出一种转基因的nppa:EGFP作为SHF祖细胞的新标记,使我们能够在分化并添加到发育中的心脏之前将SHF祖细胞可视化。 SHF祖细胞的建立和向心管中添加SHF细胞都需要FGF信号传导。已证明mef2cb是斑马鱼SHF发育所必需的。 mef2cb表达标志着SHF细胞注定要添加到心室中,抑制mef2cb导致SHF细胞添加量大大降低。我还确定了hey2是斑马鱼SHF的新型负调控因子。在候选SHF祖细胞中观察到hey2表达,hey2抑制导致SHF祖细胞增加和SHF细胞添加。我的研究表明,SHF是斑马鱼心脏发育必不可少的一部分,并且斑马鱼SHF的发育在哺乳动物中显示出许多相似之处。这使斑马鱼成为研究SHF发生及其在先天性心脏病中作用的新的强大模型系统。

著录项

  • 作者

    Lazic, Savo.;

  • 作者单位

    University of Toronto (Canada).;

  • 授予单位 University of Toronto (Canada).;
  • 学科 Health Sciences Human Development.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 109 p.
  • 总页数 109
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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