Valtorta F, Villa A, Jahn R, De Camilli P, Greengard P, Ceccarelli B
Laboratory of Molecular and Cellular Neuroscience, Rockefeller University, New York.
Neuroscience. 1988 Feb;24(2):593-603. doi: 10.1016/0306-4522(88)90353-3.
We report here the results of immunocytochemical and biochemical studies on the localization of synapsin I, a nerve terminal--specific phosphoprotein, at the frog neuromuscular junction. Our results show that in this in situ synapse synapsin I is concentrated in the presynaptic compartment, where it appears to be associated with the synaptic vesicle membrane. Double immunoprecipitated synapsin I from homogenates of frog cutaneous pectoris muscles could be phosphorylated by the catalytic subunit of cyclic adenosine 5'-monophosphate-dependent protein kinase after gel electrophoresis and blotting onto nitrocellulose and could be subsequently identified by an immunoperoxidase technique. Experiments carried out in frog brain preparations indicate that frog synapsin I, like the mammalian protein, can be phosphorylated at different sites by exogenously added catalytic subunit of cyclic adenosine 5'-monophosphate-dependent protein kinase and Ca2+/calmodulin-dependent protein kinase II prepared from mammalian sources. The phosphorylation sites of frog synapsin I, as judged by phosphopeptide mapping, are somewhat different from those of mammalian synapsin I. The study of synapsin I and of the regulation of its state of phosphorylation at the neuromuscular junction may provide important information on its role in synaptic function, since at the present time this is one of the few systems in which a correlation among biochemical, immunocytochemical and electrophysiological results is possible.
我们在此报告关于突触素I(一种神经末梢特异性磷蛋白)在青蛙神经肌肉接头处定位的免疫细胞化学和生物化学研究结果。我们的结果表明,在这个原位突触中,突触素I集中在前突触区室,在那里它似乎与突触小泡膜相关联。从青蛙胸大肌匀浆中进行双重免疫沉淀得到的突触素I,在凝胶电泳并转移到硝酸纤维素膜上后,可被环腺苷5'-单磷酸依赖性蛋白激酶的催化亚基磷酸化,随后可用免疫过氧化物酶技术进行鉴定。在青蛙脑制备物中进行的实验表明,青蛙突触素I与哺乳动物的该蛋白一样,可被从哺乳动物来源制备的外源性环腺苷5'-单磷酸依赖性蛋白激酶催化亚基和Ca2+/钙调蛋白依赖性蛋白激酶II在不同位点磷酸化。通过磷酸肽图谱分析判断,青蛙突触素I的磷酸化位点与哺乳动物突触素I的磷酸化位点有所不同。对突触素I及其在神经肌肉接头处磷酸化状态调节的研究,可能会为其在突触功能中的作用提供重要信息,因为目前这是少数几个能够将生物化学、免疫细胞化学和电生理结果相互关联的系统之一。