Fu Guohui, Wang Tianying, Yang Baofeng, Lv Fengxiang, Shi Congning, Jiang Xiaoshu, Tian Lifeng, Yu Weihan, Hamasaki Naotaka
Departments of Pathophysiology, Harbin Medical University, Harbin 150086, China.
Biochemistry. 2004 Feb 17;43(6):1633-8. doi: 10.1021/bi035281c.
To clarify the function of the hydrophilic carboxyl-terminal tail of human erythrocyte membrane band 3 protein (HEM-B3), we purified two peptides, C1 (Ala893-Val911) and KS4 (Gly647-Arg656), from human erythrocyte band 3 protein preparations. Purified C1 peptides at concentrations from 5 to 80 microM were incubated with fresh human erythrocyte white ghosts. The C1 peptide demonstrated a novel protease activity, which cleaved glycophorin A (GPA) at Leu118-Ser119 in a dose-dependent manner. This activity was eliminated by trypsin. In a control experiment, the KS4 peptide did not cleave GPA under the same conditions. To help substantiate that the band 3 C-terminal tail peptide (C1) alone possesses the protease activity, two experiments were performed. First, the plasmids pGBKT(7)-GPA-Ct and pGADT(7)-AE1-Ct were cotransformed into the yeast strain AH109. The pGBKT(7)-GPA-Ct plasmid contains the cDNA of the 33 amino acid residue section of GPA (Tyr93-Asn125) fused with the pGBKT(7) vector. The plasmid pGADT(7)-AE1-Ct contains the cDNA of the C-terminal 33 amino acid residues of HEM-B3 fused with the GAL4 DNA-binding domain in the pGADT(7) vector. The results of the cotransformation experiment indicated that the C-terminal 33 amino acid residues of HEM-B3 interacted directly with the GPA C-terminal segment defined above. Second, we used a mammalian two-hybrid analysis to confirm the interaction relationship between the band 3 C-terminal segment and the GPA C-terminus. The C-terminus of GPA and the C-terminal 33 amino acid residues of HEM-B3 were subcloned into the DNA-binding domain and transcription activation domain vectors of the two-hybrid system, respectively. They were then cotransfected along with a chloramphenicol acetyltransferse (CAT) reporter vector into HeLa cells. The CAT activity measured in this experiment also indicated that there was interaction between the C-terminal 33 amino acid residues of HEM-B3 and the C-terminus of GPA.
为阐明人红细胞膜带3蛋白(HEM-B3)亲水性羧基末端尾巴的功能,我们从人红细胞带3蛋白制剂中纯化了两种肽段,即C1(Ala893-Val911)和KS4(Gly647-Arg656)。将浓度为5至80微摩尔的纯化C1肽段与新鲜的人红细胞白色血影一起孵育。C1肽段表现出一种新型蛋白酶活性,它以剂量依赖的方式在Leu118-Ser119处切割血型糖蛋白A(GPA)。这种活性可被胰蛋白酶消除。在对照实验中,KS4肽段在相同条件下未切割GPA。为进一步证实单独的带3 C末端尾巴肽段(C1)具有蛋白酶活性,我们进行了两个实验。首先,将质粒pGBKT(7)-GPA-Ct和pGADT(7)-AE1-Ct共转化到酵母菌株AH109中。pGBKT(7)-GPA-Ct质粒包含与pGBKT(7)载体融合的GPA 33个氨基酸残基部分(Tyr93-Asn125)的cDNA。质粒pGADT(7)-AE1-Ct包含与pGADT(7)载体中GAL4 DNA结合结构域融合的HEM-B3 C末端33个氨基酸残基的cDNA。共转化实验结果表明,HEM-B3的C末端33个氨基酸残基与上述定义的GPA C末端片段直接相互作用。其次,我们使用哺乳动物双杂交分析来确认带3 C末端片段与GPA C末端之间的相互作用关系。将GPA的C末端和HEM-B3的C末端33个氨基酸残基分别亚克隆到双杂交系统的DNA结合结构域和转录激活结构域载体中。然后将它们与氯霉素乙酰转移酶(CAT)报告载体一起共转染到HeLa细胞中。该实验中测得的CAT活性也表明,HEM-B3的C末端33个氨基酸残基与GPA的C末端之间存在相互作用。