Nixon Susan J, Carter Adrian, Wegner Jeremy, Ferguson Charles, Floetenmeyer Matthias, Riches Jamie, Key Brian, Westerfield Monte, Parton Robert G
Institute for Molecular Bioscience, University of Queensland, Brisbane 4072, Australia.
J Cell Sci. 2007 Jul 1;120(Pt 13):2151-61. doi: 10.1242/jcs.003830. Epub 2007 Jun 5.
Caveolae have been linked to diverse cellular functions and to many disease states. In this study we have used zebrafish to examine the role of caveolin-1 and caveolae during early embryonic development. During development, expression is apparent in a number of tissues including Kupffer's vesicle, tailbud, intersomite boundaries, heart, branchial arches, pronephric ducts and periderm. Particularly strong expression is observed in the sensory organs of the lateral line, the neuromasts and in the notochord where it overlaps with expression of caveolin-3. Morpholino-mediated downregulation of Cav1alpha caused a dramatic inhibition of neuromast formation. Detailed ultrastructural analysis, including electron tomography of the notochord, revealed that the central regions of the notochord has the highest density of caveolae of any embryonic tissue comparable to the highest density observed in any vertebrate tissue. In addition, Cav1alpha downregulation caused disruption of the notochord, an effect that was enhanced further by Cav3 knockdown. These results indicate an essential role for caveolin and caveolae in this vital structural and signalling component of the embryo.
小窝与多种细胞功能以及许多疾病状态相关联。在本研究中,我们利用斑马鱼来研究小窝蛋白-1和小窝在胚胎早期发育过程中的作用。在发育过程中,其表达在包括库普弗小泡、尾芽、体节间边界、心脏、鳃弓、前肾管和表皮等多种组织中明显可见。在侧线的感觉器官、神经丘以及脊索中观察到特别强烈的表达,在脊索中它与小窝蛋白-3的表达重叠。吗啉代介导的Cav1α下调导致神经丘形成受到显著抑制。详细的超微结构分析,包括对脊索的电子断层扫描,显示脊索的中央区域具有任何胚胎组织中最高密度的小窝,与在任何脊椎动物组织中观察到的最高密度相当。此外,Cav1α下调导致脊索破坏,Cav3基因敲低进一步增强了这种效应。这些结果表明小窝蛋白和小窝在胚胎这一重要的结构和信号传导组件中起着至关重要的作用。