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Synapse Development in Zebrafish

Synapse Development in Zebrafish
斑马鱼的突触发育
批准号:
6923521
负责人:
PAUL BREHM
金额:
$7.6万
依托单位国家:
美国
项目类别:
财政年份:
2003
资助国家:
美国
项目状态:
已结题
起止时间:
2003-09-30 至 2007-06-30

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中文摘要
翻译
描述(由申请人提供):尽管我们对神经肌肉连接处突触发育的理解取得了巨大进展,但一些关键蛋白质的作用仍不清楚。本实验将利用斑马鱼遗传和发育的独特优势,在体内确定rapsyn、乙酰胆碱受体、MuSK和β -三磷酸糖酐在突触形成中的作用。与哺乳动物相比,斑马鱼在体外和体内系统中都具有巨大的优势。使用体外哺乳动物表达系统和培养肌管的研究都因无法研究真正的突触而受到阻碍。由于小鼠基因敲除不能在突触形成期间存活,体内研究受到限制。例如,在受体敲除的情况下,其后果是如此严重,以至于没有研究能够解决无受体发育的后果。相比之下,在斑马鱼的突变系中发现了乙酰胆碱受体、rapsyn和MuSK的功能性敲除。这些鱼最初是在游泳异常的基础上被识别出来的,这种异常反映了这些关键突触蛋白被敲除的直接后果。这种分析在斑马鱼中是可能的,因为与哺乳动物不同,这些突变动物在突触形成完成后死亡,并且可以评估动物行为。迄今为止,我们的发现揭示了乙酰胆碱受体和rapsyn在控制突触发育和功能中的大多数意想不到的作用。特别是,我们发现受体可能在将rapsyn定位到突触中起关键作用,而rapsyn在调节受体功能中起关键作用。此外,我们的研究为人类神经肌肉疾病提供了新的预测,其中一种已经在患有罕见形式重症肌无力的患者身上得到证实。我们相信,这个模型系统将通过其许多独特的优势,解决一些突出的悖论,涉及信号分子在突触形成中的作用。
英文摘要
DESCRIPTION (provided by applicant): Despite the great advances made in our understanding of synapse development at the neuromuscular junction, the roles of several key proteins remain unclear. The proposed experiments will use the unique advantages offered by zebrafish genetics and development to identify the roles of rapsyn, acetylcholine receptor, MuSK and beta-dystroglycan in synapse formation in vivo. Zebrafish offers tremendous advantages over mammalian in vitro and in vivo systems. Studies using in vitro mammalian expression systems and cultured myotubes have both been hampered by the inability to study bona-fide synapses. The in vivo studies have been limited by the inability of the mouse knock-outs to survive through the period of synapse formation. In the case of receptor knock-out, for example, the consequences are so severe that no studies have been able to address the consequences of receptor-less development. By contrast, functional knock-outs of acetylcholine receptor, rapsyn, and MuSK have been identified in mutant lines of zebrafish. These fish were originally identified on the basis of swimming abnormalities that reflect direct consequences of knock-outs of each of these key synaptic proteins. This analysis is possible in zebrafish because, unlike their mammalian counterparts, these mutant animals die well after synapse formation is completed and the animal behavior can be assessed. To date our findings have revealed most unexpected roles for the acetylcholine receptor and for rapsyn in governing synapse development and function. In particular, we have found that the receptor likely plays a key role in localizing rapsyn to the synapse and rapsyn plays a critical role in regulating receptor function. Additionally, our studies have provided new predictions for human neuromuscular diseases, one of which has been confirmed on patients afflicted with rare forms of myasthenia gravis. We are confident that this model system will, through its many unique advantages, resolve some of the outstanding paradoxes involving the roles of signaling molecules in synapse formation.
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