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首页> 外文期刊>Journal of neurobiology >Topographic regulation of phosphorylation in giant neurons of the squid, Loligo pealei: role of phosphatases.
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Topographic regulation of phosphorylation in giant neurons of the squid, Loligo pealei: role of phosphatases.

机译:鱿鱼Loligo pealei巨神经元中磷酸化的地形调控:磷酸酶的作用。

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摘要

In previous studies of phosphorylation in squid stellate ganglion neurons, we demonstrated that a specific multimeric phosphorylation complex characterized each cellular compartment. Although the endogenous protein profile of cell body extracts (giant fiber lobe, GFL), as determined by Coomassie staining, was similar to that of axoplasm from the giant axon, in this study we show that the protein phosphorylation profiles are qualitatively different. Whereas many axoplasm proteins were phosphorylated, including most cytoskeletal proteins, virtually all phosphorylation in perikarya was confined to low molecular weight compounds (<6 kDa). Because phosphorylation of exogenous substrates, histone and casein, was equally active in extracts from both compartments, failure to detect endogenous protein phosphorylation in cell bodies was attributed to the presence of more active phosphatases. To further explore the role of phosphatases in these neurons, we studied phosphorylation in the presence of serine/threonine and protein tyrosine phosphatase (PTP) inhibitors. We found that phosphorylation of axonal cytoskeletal proteins was modulated by okadaic acid-sensitive ser/thr phosphatases, whereas cell body phosphorylation was more sensitive to an inhibitor of protein tyrosine phosphatases, such as vanadate. Inhibition of PTPs by vanadate stimulated endogenous phosphorylation of GFL proteins, including cytoskeletal proteins. Protein tyrosine kinase activity was equally stimulated by vanadate in cell body and axonal whole homogenates and Triton X-100 free soluble extracts, but only the Triton X soluble fraction (membrane bound proteins) of the GFL exhibited significant activation in the presence of vanadate, suggesting higher PTP activities in this fraction than in the axon. The data are consistent with the hypothesis that neuronal protein phosphorylation in axons and cell bodies is modulated by different phosphatases associated with compartment-specific multimeric complexes.
机译:在先前的鱿鱼星状神经节神经元的磷酸化研究中,我们证明了特定的多聚体磷酸化复合体是每个细胞区室的特征。尽管通过考马斯亮红染色确定的细胞体提取物(巨大的纤维叶,GFL)的内源性蛋白质谱与巨轴突的轴质相似,但在这项研究中我们表明,蛋白质的磷酸化谱在质量上是不同的。尽管许多腋质蛋白(包括大多数细胞骨架蛋白)都被磷酸化,但实际上周核生物中的所有磷酸化作用都局限于低分子量化合物(<6 kDa)。由于两个隔室的提取物中外源底物,组蛋白和酪蛋白的磷酸化活性均相同,因此未能检测到细胞体内内源性蛋白质磷酸化的原因是存在更多的活性磷酸酶。为了进一步探讨磷酸酶在这些神经元中的作用,我们研究了在丝氨酸/苏氨酸和蛋白质酪氨酸磷酸酶(PTP)抑制剂存在下的磷酸化作用。我们发现,冈田酸敏感的ser / thr磷酸酶可调节轴突细胞骨架蛋白的磷酸化,而细胞体的磷酸化对蛋白酪氨酸磷酸酶的抑制剂(如钒酸盐)更敏感。钒酸盐抑制PTP会刺激GFL蛋白(包括细胞骨架蛋白)的内源性磷酸化。钒酸盐在细胞体和轴突全匀浆和不含Triton X-100的可溶性提取物中同样地刺激蛋白质酪氨酸激酶的活性,但只有钒酸盐存在时,GFL的Triton X可溶性级分(膜结合蛋白)才显示出明显的活化作用,这表明在此部分中,PTP活性高于轴突。数据与这样的假设相符,即轴突和细胞体中神经元蛋白的磷酸化受到与间隔特异性多聚体复合物相关的不同磷酸酶的调控。

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