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人肠上皮细胞微绒毛膜水解酶的表达与细胞内运输

Expression and intracellular transport of microvillus membrane hydrolases in human intestinal epithelial cells.

作者信息

Hauri H P, Sterchi E E, Bienz D, Fransen J A, Marxer A

出版信息

J Cell Biol. 1985 Sep;101(3):838-51. doi: 10.1083/jcb.101.3.838.

Abstract

A panel of monoclonal antibodies was produced against purified microvillus membranes of human small intestinal enterocytes. By means of these probes three disaccharidases (sucrase-isomaltase, lactase-phlorizin hydrolase, and maltase-glucoamylase) and four peptidases (aminopeptidase N, dipeptidylpeptidase IV, angiotension I-converting enzyme, and p-aminobenzoic acid peptide hydrolase) were successfully identified as individual entities by SDS PAGE and localized in the microvillus border of the enterocytes by immunofluorescence microscopy. The antibodies were used to study the expression of small intestinal hydrolases in the colonic adenocarcinoma cell line Caco 2. This cell line was found to express sucrase-isomaltase, lactase-phlorizin hydrolase, aminopeptidase N, and dipeptidylpeptidase IV, but not the other three enzymes. Pulse-chase studies with [35S]methionine and analysis by subunit-specific monoclonal antibodies revealed that sucrase-isomaltase was synthesized and persisted as a single-chain protein comprising both subunits. Similarly, lactase-phlorizin hydrolase was synthesized as a large precursor about twice the size of the lactase subunits found in the human intestine. Aminopeptidase N and dipeptidylpeptidase IV, known to be dimeric enzymes in most mammals, were synthesized as monomers. Transport from the rough endoplasmic reticulum to the trans-Golgi apparatus was considerably faster for the peptidases than for the disaccharidases, as probed by endoglycosidase H sensitivity. These results suggest that the major disaccharidases share a common biosynthetic mechanism that differs from that for peptidases. Furthermore, the data indicate that the transport of microvillus membrane proteins to and through the Golgi apparatus is a selective process that may be mediated by transport receptors.

摘要

制备了一组针对人小肠肠上皮细胞纯化微绒毛膜的单克隆抗体。借助这些探针,通过SDS-PAGE成功鉴定出三种二糖酶(蔗糖酶-异麦芽糖酶、乳糖酶-根皮苷水解酶和麦芽糖酶-葡糖淀粉酶)和四种肽酶(氨肽酶N、二肽基肽酶IV、血管紧张素I转换酶和对氨基苯甲酸肽水解酶)为单个实体,并通过免疫荧光显微镜将它们定位在肠上皮细胞的微绒毛边缘。这些抗体被用于研究结肠腺癌细胞系Caco 2中小肠水解酶的表达。发现该细胞系表达蔗糖酶-异麦芽糖酶、乳糖酶-根皮苷水解酶、氨肽酶N和二肽基肽酶IV,但不表达其他三种酶。用[35S]甲硫氨酸进行脉冲追踪研究并通过亚基特异性单克隆抗体分析表明,蔗糖酶-异麦芽糖酶作为一种包含两个亚基的单链蛋白合成并持续存在。同样,乳糖酶-根皮苷水解酶作为一种大约是人肠道中乳糖酶亚基两倍大小的大前体合成。氨肽酶N和二肽基肽酶IV在大多数哺乳动物中已知是二聚体酶,它们作为单体合成。通过内切糖苷酶H敏感性检测发现,肽酶从粗面内质网到反式高尔基体的转运比二糖酶快得多。这些结果表明,主要的二糖酶具有一种不同于肽酶的共同生物合成机制。此外,数据表明微绒毛膜蛋白向高尔基体的转运以及通过高尔基体的转运是一个可能由转运受体介导的选择性过程。

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