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Tissue-level mechanisms driving cardiac progenitor and extracellular matrix movements during early vertebrate heart development.

机译:在脊椎动物早期心脏发育过程中驱动心脏祖细胞和细胞外基质运动的组织水平机制。

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摘要

Vertebrate cardiogenesis involves heart progenitor cell movements from their initial lateral positions to the embryonic midline, where they assemble into a primitive heart. This early heart tube consists of an outer myocardium, a medial extracellular matrix (ECM), and an endocardial lining. Cardiac morphogenesis in avians and mammals is inseparable from development of the foregut, which provides molecular cues to regulate endocardial and myocardial differentiation from mesodermal progenitors. Concomitantly with the initiation of midline-directed cardiac progenitor movements, foregut endoderm undergoes dramatic folding and elongation. Following their initial assembly, the heart and foregut are transiently connected through a mesentery. Previous research focused on the molecular factors involved in guiding cardiac progenitors to the midline, yet cellular and tissue mechanisms coordinating these movements remain poorly understood.;This work investigates movements of all three early heart constituents—the endocardial and myocardial progenitors, and surrounding ECM—in live quail embryos using a combination of time-lapse microscopy, chemical and mechanical perturbations, computational analysis and modeling. By visualizing the tissue environment for cell displacements, we distinguish the active (tissue-independent) movements from those cells undergo in a manner coordinated with the surrounding tissues. First, we analyzed the movements of endocardial progenitors and fluorescently-labeled ECM (fibronectin, fibrillin-2) fibrils. We found the bulk of midline-directed movement of pre-endocardial cells is coordinated with their surrounding ECM. Further, that ECM from extracardiac sources is transferred to and incorporated into the growing heart. By assessing the contributions of active cell motility to the observed midline endocardial displacements we found its role to be secondary to that of convective tissue movement within the anterior embryo.;Second, we assessed myocardial progenitor movements relative to fibronectin ECM and endoderm. We discovered that observed antero-medial myocardial displacements are driven by a combination of: 1) medial tissue motion, and 2) anterior movement, accomplished via a coordinated deformation of myocardial progenitors, organized into a continuous epithelial sheet.;Finally, we investigated the effects of VEGF overexposure on progenitor movements during early cardiogenesis. We found a dramatic VEGF-induced increase in cardiac inflow region size, which affected the coordinated movements/deformations displayed by myocardial progenitors, and resulted in heart tube elongation defects.
机译:脊椎动物的心脏病发生涉及心脏祖细胞从其最初的侧向位置到胚胎中线的运动,在此它们汇聚成原始的心脏。该早期心管由外部心肌层,内侧细胞外基质(ECM)和心内膜组成。禽类和哺乳动物的心脏形态发生与前肠的发展密不可分,前肠的发展提供了分子线索来调节中胚层祖细胞的心内膜和心肌分化。伴随着中线定向心脏祖细胞运动的开始,前肠内胚层经历了剧烈的折叠和伸长。初始组装后,心脏和前肠通过肠系膜短暂连接。先前的研究集中在将心脏祖细胞引导到中线的分子因素上,但协调这些运动的细胞和组织机制仍然知之甚少。;这项工作调查了所有三个早期心脏成分的运动-心内膜和心肌祖细胞以及周围的ECM,结合使用延时显微镜,化学和机械扰动,计算分析和建模技术,在活鹌鹑胚胎中进行检测。通过可视化组织环境中的细胞移位,我们将活跃的(独立于组织的)运动与那些以与周围组织协调的方式经历的细胞区分开来。首先,我们分析了心内膜祖细胞和荧光标记的ECM(纤连蛋白,原纤维蛋白2)原纤维的运动。我们发现心内膜前细胞的中线定向运动的大部分与其周围的ECM相协调。此外,来自心外源的ECM被转移到并整合到正在成长的心脏中。通过评估活动细胞运动对观察到的中线心内膜位移的贡献,我们发现其作用仅次于前胚内对流组织运动。其次,我们评估了相对于纤连蛋白ECM和内胚层的心肌祖细胞运动。我们发现观察到的前内侧心肌移位是由以下因素共同驱动的:1)内侧组织运动和2)通过心肌祖细胞的协调变形完成的前运动,组织成连续的上皮片层;最后,我们调查了过度暴露对早期心脏发生过程中祖细胞运动的影响。我们发现显着的VEGF诱导的心脏流入区域大小增加,这影响了心肌祖细胞显示的协调运动/变形,并导致了心管伸长缺陷。

著录项

  • 作者

    Aleksandrova, Anastasiia.;

  • 作者单位

    University of Kansas.;

  • 授予单位 University of Kansas.;
  • 学科 Biology Cell.;Health Sciences Human Development.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 267 p.
  • 总页数 267
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:42:44

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