Hamada Juri, Okumura Nobuaki, Inagaki Miho, Taniguchi Hiroyuki, Nakahata Yasukazu, Sano Shin-ichiro, Nagai Katsuya
Division of Protein Metabolism, Institute for Protein Research, Osaka University, 3-2 Yamadaoka, Suita, Osaka 565-0871, Japan.
FEBS Lett. 2004 Jan 16;557(1-3):204-8. doi: 10.1016/s0014-5793(03)01493-5.
BIT is a transmembrane glycoprotein with three immunoglobulin-like domains in its extracellular region and tyrosine phosphorylation sites in its cytosolic region. We have previously shown that BIT was tyrosine phosphorylated in the hypothalamic suprachiasmatic nucleus in response to light exposure during the dark period, and suggested that it was involved in the light entrainment of the circadian clock. To further investigate the function of BIT in the nervous system, we examined the effect of photic stimulation on its tyrosine phosphorylation in the rat retina. It was found that the tyrosine phosphorylation level of BIT in the retina was higher in the light period than in the dark period. In addition, a light stimulation during the dark period resulted in a rapid phosphorylation of BIT and a subsequent association of BIT with SHP-2. The phosphorylation state was quickly reverted when the light was turned off. The light-dependent phosphorylation of BIT was also observed in isolated cultured retinas, and this was blocked by a specific Src-family inhibitor, PP-2. Immunohistochemical study showed that BIT was highly enriched in the inner and outer plexiform layers in the retina, where the immunoreactivity to anti-SHP-2 antibody was also detected. These results suggest that tyrosine phosphorylation of BIT is involved in neuronal transmission in the retina.
BIT是一种跨膜糖蛋白,其胞外区域有三个免疫球蛋白样结构域,胞质区域有酪氨酸磷酸化位点。我们之前已经表明,在黑暗期暴露于光线下时,下丘脑视交叉上核中的BIT会发生酪氨酸磷酸化,并提示其参与昼夜节律钟的光诱导。为了进一步研究BIT在神经系统中的功能,我们检测了光刺激对大鼠视网膜中其酪氨酸磷酸化的影响。结果发现,视网膜中BIT的酪氨酸磷酸化水平在光照期高于黑暗期。此外,在黑暗期进行光刺激会导致BIT迅速磷酸化,随后BIT与SHP-2结合。当光关闭时,磷酸化状态迅速恢复。在分离培养的视网膜中也观察到了BIT的光依赖性磷酸化,并且这被一种特异性Src家族抑制剂PP-2所阻断。免疫组织化学研究表明,BIT在视网膜的内、外网状层中高度富集,在这些区域也检测到了抗SHP-2抗体的免疫反应性。这些结果表明,BIT的酪氨酸磷酸化参与了视网膜中的神经元传递。