Chasis J A, Reid M E, Jensen R H, Mohandas N
Department of Medicine, University of California, San Francisco 94143.
J Cell Biol. 1988 Oct;107(4):1351-7. doi: 10.1083/jcb.107.4.1351.
Binding of ligands to the extracellular region of the erythrocyte transmembrane protein glycophorin A induces a decrease in membrane deformability. Since the property of membrane deformability is regulated by the skeletal proteins on the cytoplasmic side of the membrane, this suggests that ligand binding may initiate a transmembrane signal. To further study this process, we examined which domains of the extracellular region of glycophorin are involved in signal transduction and whether the cytoplasmic domain of the molecule is necessary for transmitting the signal. Using the ektacytometer, we compared the effect on deformability of four monoclonal antibodies that detect different epitopes on glycophorin A. We found that 9A3 (which recognized the amino terminus of glycophorin) caused a 5.8-fold increase in rigidity, R-10 and 10F7 (which recognized epitopes in the mid-region of the extracellular domain) caused a 10.8-fold increase in rigidity and B14 (which binds to glycophorin close to the membrane) caused a 18-fold increase in rigidity. Further, a direct relationship was observed between the degree of antibody-induced rigidity and the amount of glycophorin A that became associated with the skeletal proteins in a Triton shell assay. In Miltenberger V erythrocytes, which contain a hybrid sialoglycoprotein with no cytoplasmic domain, antibody binding did not induce an increase in rigidity. These results imply that glycophorin A is capable of a modulatable form of transmembrane signaling that is determined by the extracellular domain to which the ligand binds, and the cytoplasmic domain of glycophorin A is crucial for this process.
配体与红细胞跨膜蛋白血型糖蛋白A的细胞外区域结合会导致膜变形性降低。由于膜变形性的特性是由膜细胞质侧的骨架蛋白调节的,这表明配体结合可能引发跨膜信号。为了进一步研究这一过程,我们研究了血型糖蛋白细胞外区域的哪些结构域参与信号转导,以及该分子的细胞质结构域对于传递信号是否必要。使用激光衍射血细胞分析仪,我们比较了四种检测血型糖蛋白A上不同表位的单克隆抗体对变形性的影响。我们发现9A3(识别血型糖蛋白的氨基末端)使刚性增加了5.8倍,R-10和10F7(识别细胞外结构域中部的表位)使刚性增加了10.8倍,而B14(靠近膜结合血型糖蛋白)使刚性增加了18倍。此外,在Triton壳试验中,观察到抗体诱导的刚性程度与与骨架蛋白结合的血型糖蛋白A的量之间存在直接关系。在含有无细胞质结构域的杂合唾液糖蛋白的米尔滕贝格V型红细胞中,抗体结合并未诱导刚性增加。这些结果表明,血型糖蛋白A能够进行一种可调节形式的跨膜信号传导,该信号传导由配体结合的细胞外结构域决定,并且血型糖蛋白A的细胞质结构域对于这一过程至关重要。