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CD19 功能酪氨酸的差异磷酸化调节 B 淋巴细胞的激活。

Differential phosphorylation of functional tyrosines in CD19 modulates B-lymphocyte activation.

机构信息

Department of Dermatology, Graduate School of Medicine, University of Tokyo, Tokyo, Japan.

出版信息

Eur J Immunol. 2010 Apr;40(4):1192-204. doi: 10.1002/eji.200939848.

DOI:10.1002/eji.200939848
PMID:20101619
Abstract

CD19 is a B-cell transmembrane molecule that is critical for B-cell activation. CD19 serves as a scaffold protein for key signal transduction molecules including Lyn, PI3K, and Vav, by providing docking sites for these molecules via phosphorylation of CD19-Y(513), CD19-Y(482), and CD19-Y(391). We investigated the process of CD19 tyrosine phophorylation during B-cell activation using Ab specific for each of these phosphorylated tyrosines. BCR engagement induced differential tyrosine phosphorylation, as CD19-Y(513) phophorylation occurred first, and CD19-Y(482) phosphorylation was delayed and transient. Different BCR isotypes exhibited distinct patterns of CD19 phosphorylation: IgG-BCR ligation resulted in faster phosphorylation of CD19-Y(513) and more intense phosphorylation of CD19-Y(391) than IgM-BCR ligation. This affected CD19-mediated downstream pathways involving Vav, PI3K, and Akt. Additionally, the phosphorylation profile of CD19 differed distinctly according to its plasma membrane location. CD19 phosphorylated at Y(513) was almost exclusively located within lipid rafts, whereas phosphorylated Y(482) and Y(391) were found both inside and outside of the rafts. Furthermore, the phosphorylation of all three tyrosines was remarkably enhanced and prolonged following the simultaneous stimulation of BCR and CD40. Thus, variations in phosphorylation patterns may contribute to the complexity of CD19-regulated signal transduction.

摘要

CD19 是 B 细胞表面的一种跨膜分子,对 B 细胞的激活至关重要。CD19 作为 Lyn、PI3K 和 Vav 等关键信号转导分子的支架蛋白,通过 CD19-Y(513)、CD19-Y(482)和 CD19-Y(391)的磷酸化,为这些分子提供结合位点。我们使用针对这些磷酸化酪氨酸的特异性抗体研究了 B 细胞激活过程中 CD19 酪氨酸磷酸化的过程。BCR 的结合诱导了不同的酪氨酸磷酸化,因为 CD19-Y(513)的磷酸化首先发生,而 CD19-Y(482)的磷酸化延迟且短暂。不同的 BCR 同种型表现出不同的 CD19 磷酸化模式:IgG-BCR 的结合导致 CD19-Y(513)的磷酸化更快,CD19-Y(391)的磷酸化更强烈,而 IgM-BCR 的结合则较慢且短暂。这影响了涉及 Vav、PI3K 和 Akt 的 CD19 介导的下游途径。此外,CD19 的磷酸化谱根据其质膜位置而明显不同。磷酸化的 CD19-Y(513)几乎完全位于脂筏内,而磷酸化的 CD19-Y(482)和 CD19-Y(391)则存在于脂筏内外。此外,在 BCR 和 CD40 同时刺激后,所有三个酪氨酸的磷酸化显著增强并延长。因此,磷酸化模式的变化可能有助于 CD19 调节的信号转导的复杂性。

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