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Molecular and genetic analyses of Fgf signaling during cardiac outflow tract development.

机译:心脏流出道发育过程中Fgf信号的分子和遗传分析。

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摘要

Epithelial-mesenchymal tissue interactions regulate the development of derivatives of the caudal pharyngeal arches (PAs) to govern the ultimate morphogenesis of the aortic arch and outflow tract (OFT) of the heart. Disruption of these signaling pathways is thought to contribute to the pathology of a significant proportion of congenital cardiovascular defects in humans. In this study, I tested whether Fibroblast Growth Factor 15 (Fgf15), a secreted signaling molecule expressed within the PAs, is an extracellular mediator of tissue interactions during PA and OFT development. Analyses of Fgf15-/- mouse embryonic hearts revealed abnormalities primarily localized to the OFT, correlating with aberrant cardiac neural crest cell behavior. The T-box-containing transcription factor Tbx1 has been implicated in the cardiovascular defects associated with the human 22q11 Deletion Syndromes, and regulates the expression of other Fgf family members within the mouse PAs. However, expression and genetic interaction studies incorporating mice deficient for Tbx1, its upstream regulator, Sonic Hedgehog (Shh), or its putative downstream effector, Fgf8, indicated that Fgf15 functions during OFT development in a manner independent of these factors. Rather, analyses of compound mutant mice indicated that Fgf15 and Fgf9, an additional Fgf family member expressed within the PAs, genetically interact, providing insight into the factors acting in conjunction with Fgf15 during OFT development. Finally, in an effort to further characterize this Fgf15-mediated developmental pathway, promoter deletion analyses were employed to isolate a 415bp sequence 7.1Kb 5' to the Fgf15 transcription start site both necessary and sufficient to drive reporter gene expression within the epithelium of the PAs. Sequence comparisons among multiple mammalian species facilitated the identification of evolutionarily conserved potential trans-acting factor binding sites within this fragment. Subsequent studies will investigate the molecular pathway(s) through which Fgf15 functions via identification of factors that bind to this element to govern Fgf15 gene expression. Furthermore, targeted deletion of this element will establish the developmental requirement for pharyngeal epithelium-derived Fgf15 signaling function. Taken as a whole, these data demonstrate that Fgf15 is a component of a novel, Tbx1-independent molecular pathway, functioning within the PAs in a manner cooperative with Fgf9, required for proper development of the cardiac OFT.
机译:上皮-间充质组织相互作用调节了尾咽咽弓(PAs)的衍生物的发育,从而控制了心脏的主动脉弓和流出道(OFT)的最终形态。这些信号传导途径的破坏被认为促成人类中很大比例的先天性心血管缺陷的病理。在这项研究中,我测试了成纤维细胞生长因子15(Fgf15)(一种在PA中表达的分泌信号分子)是否是PA和OFT发育过程中组织相互作用的细胞外介质。对Fgf15-/-小鼠胚胎心脏的分析显示异常主要位于OFT,与异常的心脏神经c细胞行为相关。含有T-box的转录因子Tbx1与人类22q11缺失综合征相关的心血管缺陷有关,并调节小鼠PA中其他Fgf家族成员的表达。但是,表达和遗传相互作用研究纳入了缺乏Tbx1的小鼠,其上游调节子Sonic Hedgehog(Shh)或其推定的下游效应子Fgf8,表明Fgf15在OFT发育过程中的功能与这些因素无关。相反,对复合突变小鼠的分析表明,Fgf15和Fgf9(在PA中表达的另一个Fgf家族成员)发生了遗传相互作用,从而提供了对在OFT发展过程中与Fgf15共同起作用的因素的见解。最后,为了进一步表征该Fgf15介导的发育途径,采用了启动子缺失分析来分离一个415bp序列,该序列与Fgf15转录起始位点的7.1Kb 5'既必要也足以驱动PAs上皮内的报告基因表达。 。多个哺乳动物物种之间的序列比较有助于鉴定该片段内进化上保守的潜在反式作用因子结合位点。随后的研究将通过鉴定与Fgf15基因结合的因素来研究Fgf15的分子途径,从而控制Fgf15基因的表达。此外,有针对性地删除此元素将建立对咽上皮衍生的Fgf15信号功能的发展要求。总的来说,这些数据表明,Fgf15是一种新颖的,Tbx1独立分子途径的组成部分,在心脏内以与Fgf9协同作用的方式在PA中起作用,这是心脏OFT正常发育所必需的。

著录项

  • 作者

    Vincentz, Joshua Wayne.;

  • 作者单位

    The University of Texas Health Science Center at Houston Graduate School of Biomedical Sciences.;

  • 授予单位 The University of Texas Health Science Center at Houston Graduate School of Biomedical Sciences.;
  • 学科 Biology Genetics.; Biology Molecular.; Biology Animal Physiology.; Health Sciences Pathology.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 131 p.
  • 总页数 131
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 遗传学;分子遗传学;生理学;病理学;
  • 关键词

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