Rebeck G W, Moir R D, Mui S, Strickland D K, Tanzi R E, Hyman B T
Alzheimer Research Unit, 149 13th Street, Massachusetts General Hospital, Charlestown, MA 02129, USA.
Brain Res Mol Brain Res. 2001 Mar 5;87(2):238-45. doi: 10.1016/s0169-328x(01)00006-7.
In order to identify cell surface proteins that interact with the amyloid precursor protein (APP), we biotinylated H4 human neuroglioma cells in culture with a water soluble biotinylating agent, immunoprecipitated APP with an antibody specific to the intracellular domain, and probed the precipitated proteins with anti-biotin. In human neuroglioma cells overexpressing APP751, we found a high molecular weight protein that immunoprecipitated with APP. This band was identified as the low density lipoprotein receptor-related protein (LRP) by three criteria: first, the band immunolabeled with anti-LRP antibodies; second, the band bound the LRP receptor associated protein, RAP; and third, this band was present in LRP-expressing fibroblasts, but not LRP-deficient fibroblasts. In complementary experiments, we found that APP co-precipitated with LRP, with a preference for an isoform of APP containing the Kunitz protease inhibitor domain. Interaction of APP and LRP on the surface of living cells was demonstrated by crosslinking APP and LRP with the water-soluble cross-linking agent BS(3). APP and LRP were shown by confocal microscopy to colocalize in perinuclear structures, but to primarily remain separate in vesicles and on the cell surface. We propose that full-length APP can transiently interact with the receptor LRP on the cell surface, affecting the processing and intracellular transport of APP.
为了鉴定与淀粉样前体蛋白(APP)相互作用的细胞表面蛋白,我们用一种水溶性生物素化试剂对培养中的H4人神经胶质瘤细胞进行生物素化,用针对细胞内结构域的特异性抗体免疫沉淀APP,并用抗生物素抗体检测沉淀的蛋白。在过表达APP751的人神经胶质瘤细胞中,我们发现一种与APP一起免疫沉淀的高分子量蛋白。通过三个标准将该条带鉴定为低密度脂蛋白受体相关蛋白(LRP):第一,该条带用抗LRP抗体进行免疫标记;第二,该条带结合LRP受体相关蛋白RAP;第三,该条带出现在表达LRP的成纤维细胞中,而不存在于缺乏LRP的成纤维细胞中。在互补实验中,我们发现APP与LRP共沉淀,且更倾向于与含有Kunitz蛋白酶抑制剂结构域的APP同工型共沉淀。通过用水溶性交联剂BS(3)交联APP和LRP,证明了APP和LRP在活细胞表面的相互作用。共聚焦显微镜显示APP和LRP共定位于核周结构,但在囊泡和细胞表面主要保持分离状态。我们提出全长APP可以在细胞表面与受体LRP短暂相互作用,影响APP的加工和细胞内运输。