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Candidate Heterotaxy Gene FGFR4 Is Essential for Patterning of the Left-Right Organizer in Xenopus

机译:候选异源基因FGFR4对于非洲爪蟾左右组织者的模式形成至关重要

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摘要

Congenital heart disease (CHD) is the most common birth defect, yet its genetic causes continue to be obscure. Fibroblast growth factor receptor 4 (FGFR4) recently emerged in a large patient exome sequencing study as a candidate disease gene for CHD and specifically heterotaxy. In heterotaxy, patterning of the left-right (LR) body axis is compromised, frequently leading to defects in the heart's LR architecture and severe CHD. FGF ligands like FGF8 and FGF4 have been previously implicated in LR development with roles ranging from formation of the laterality organ [LR organizer (LRO)] to the transfer of asymmetry from the embryonic midline to the lateral plate mesoderm (LPM). However, much less is known about which FGF receptors (FGFRs) play a role in laterality. Here, we show that the candidate heterotaxy gene FGFR4 is essential for proper organ situs in Xenopus and that frogs depleted of fgfr4 display inverted cardiac and gut looping. Fgfr4 knockdown causes mispatterning of the LRO even before cilia on its surface initiate symmetry-breaking fluid flow, indicating a role in the earliest stages of LR development. Specifically, fgfr4 acts during gastrulation to pattern the paraxial mesoderm, which gives rise to the lateral pre-somitic portion of the LRO. Upon fgfr4 knockdown, the paraxial mesoderm is mispatterned in the gastrula and LRO, and crucial genes for symmetry breakage, like coco, xnr1, and gdf3 are subsequently absent from the lateral portions of the organizer. In summary, our data indicate that FGF signaling in mesodermal LRO progenitors defines cell fates essential for subsequent LR patterning.
机译:先天性心脏病(CHD)是最常见的先天性缺陷,但其遗传原因仍不清楚。最近,在一项大型患者外显子组测序研究中,成纤维细胞生长因子受体4(FGFR4)作为冠心病特别是异源性疾病的候选疾病基因。在异质学中,左右(LR)体轴的图案受到损害,经常导致心脏LR结构的缺陷和严重的CHD。诸如FGF8和FGF4的FGF配体先前已参与LR的发展,其作用范围从侧向器官的形成[LR Organizer(LRO)]到不对称性从胚胎中线到侧板中胚层(LPM)的转移。然而,关于哪些FGF受体(FGFR)在侧向中起作用的了解还很少。在这里,我们显示出候选异源基因FGFR4对于非洲爪蟾的正常器官位点是必不可少的,并且耗尽fgfr4的青蛙显示出心脏和肠道循环倒置。 Fgfr4敲低甚至在纤毛表面上的纤毛启动破坏对称性的流体流动之前就导致LRO的图案错误,这表明它在LR发育的最早阶段起作用。具体而言,fgfr4在气化过程中起作用以对近轴中胚层进行构图,从而引起LRO的横向前声波部分。击倒fgfr4时,旁轴中胚层在下腹和LRO中的图案错误,随后组织者的侧面部分缺少对称性破坏的关键基因,例如coco,xnr1和gdf3。总而言之,我们的数据表明,中胚层LRO祖细胞中的FGF信号传导定义了后续LR模式必不可少的细胞命运。

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