Petko Jessica A, Kabbani Nadine, Frey Colleen, Woll Matthew, Hickey Katharine, Craig Michael, Canfield Victor A, Levenson Robert
Department of Pharmacology, Penn State College of Medicine, 500 University Drive, Hershey PA 17033, USA.
BMC Neurosci. 2009 Mar 25;10:27. doi: 10.1186/1471-2202-10-27.
The semicircular canals, a subdivision of the vestibular system of the vertebrate inner ear, function as sensors of angular acceleration. Little is currently known, however, regarding the underlying molecular mechanisms that govern the development of this intricate structure. Zebrafish represent a particularly tractable model system for the study of inner ear development. This is because the ear can be easily visualized during early embryogenesis, and both forward and reverse genetic techniques are available that can be applied to the discovery of novel genes that contribute to proper ear development. We have previously shown that in zebrafish, the calcium sensing molecule neuronal calcium sensor-1 (NCS-1) is required for semicircular canal formation. The function of NCS-1 in regulating semicircular canal formation has not yet been elucidated.
We initiated a multistep functional proteomic strategy to identify neuronal calcium sensor-1 (NCS-1) binding partners (NBPs) that contribute to inner ear development in zebrafish. By performing a Y2H screen in combination with literature and database searches, we identified 10 human NBPs. BLAST searches of the zebrafish EST and genomic databases allowed us to clone zebrafish orthologs of each of the human NBPs. By investigating the expression profiles of zebrafish NBP mRNAs, we identified seven that were expressed in the developing inner ear and overlapped with the ncs-1a expression profile. GST pulldown experiments confirmed that selected NBPs interacted with NCS-1, while morpholino-mediated knockdown experiments demonstrated an essential role for arf1, pi4kbeta, dan, and pink1 in semicircular canal formation.
Based on their functional profiles, the hypothesis is presented that Ncs-1a/Pi4kbeta/Arf1 form a signaling pathway that regulates secretion of molecular components, including Dan and Bmp4, that are required for development of the vestibular apparatus. A second set of NBPs, consisting of Pink1, Hint2, and Slc25a25, are destined for localization in mitochondria. Our findings reveal a novel signalling pathway involved in development of the semicircular canal system, and suggest a previously unrecognized role for NCS-1 in mitochondrial function via its association with several mitochondrial proteins.
半规管是脊椎动物内耳前庭系统的一个分支,作为角加速度的传感器发挥作用。然而,目前对于控制这一复杂结构发育的潜在分子机制知之甚少。斑马鱼是研究内耳发育的一个特别易于处理的模型系统。这是因为在胚胎早期发育过程中耳朵很容易可视化,并且正向和反向遗传技术都可用于发现有助于耳朵正常发育的新基因。我们之前已经表明,在斑马鱼中,钙传感分子神经元钙传感器-1(NCS-1)是半规管形成所必需的。NCS-1在调节半规管形成中的功能尚未阐明。
我们启动了一个多步骤的功能蛋白质组学策略,以鉴定有助于斑马鱼内耳发育的神经元钙传感器-1(NCS-1)结合伴侣(NBP)。通过进行酵母双杂交筛选并结合文献和数据库搜索,我们鉴定出了10个人类NBP。对斑马鱼EST和基因组数据库进行BLAST搜索,使我们能够克隆每个人类NBP的斑马鱼直系同源基因。通过研究斑马鱼NBP mRNA的表达谱,我们鉴定出7个在内耳发育过程中表达且与ncs-1a表达谱重叠的基因。谷胱甘肽-S-转移酶(GST)下拉实验证实所选的NBP与NCS-1相互作用,而吗啉代介导的敲低实验表明arf1、pi4kbeta、dan和pink1在半规管形成中起重要作用。
基于它们的功能概况,提出了这样一个假说,即Ncs-1a/Pi4kbeta/Arf1形成一条信号通路,该通路调节包括Dan和Bmp4在内的分子成分的分泌,这些分子成分是前庭器官发育所必需的。第二组NBP由Pink1、Hint2和Slc25a25组成,它们定位于线粒体。我们的研究结果揭示了一条参与半规管系统发育的新信号通路,并表明NCS-1通过与几种线粒体蛋白的关联在之前未被认识到的线粒体功能中发挥作用。