De Strooper B, Umans L, Van Leuven F, Van Den Berghe H
Center for Human Genetics, University of Leuven, Belgium.
J Cell Biol. 1993 Apr;121(2):295-304. doi: 10.1083/jcb.121.2.295.
Amyloid precursor protein (APP) secretase plays a pivotal role in the processing of APP since its activity precludes the formation of amyloid peptide in Alzheimer's Disease. The identity and the subcellular localization of this enzyme are at this moment unknown. It is also unclear how APP escapes the activity of this enzyme when amyloid is formed. We have previously shown that APP-secretase activity is not inhibited by exogenously added proteinase inhibitors of different specificity (De Strooper, B., F. Van Leuven, and H. Van Den Berghe. 1992. FEBS (Fed. Eur. Biochem. Soc.) Lett. 308:50-53). We show here that the primary amine methylamine inhibits the secretion of APP into the medium. Furthermore, we show that a truncated form of APP, devoid of the cytoplasmic domain, is more efficiently cleaved and secreted than wild-type APP, which together with the methylamine block, shows that APP-secretase is located in a late compartment of the default constitutional secretion pathway. The sorting signals in the cytoplasmic domain of APP are therefore important in the deviation of APP from the secretase pathway. Finally we show that mutation of Arg609 to Asp in combination with Lys612 to Glu makes APP a less efficiently cleaved substrate for APP-secretase. The results are discussed in the context of recent findings on the targeting of APP and a parallel is drawn with some lysosomal glycoproteins that follow similar pathways.
淀粉样前体蛋白(APP)分泌酶在APP的加工过程中起关键作用,因为其活性可阻止阿尔茨海默病中淀粉样肽的形成。目前,这种酶的身份和亚细胞定位尚不清楚。同样不清楚的是,当形成淀粉样蛋白时,APP是如何避开这种酶的活性的。我们之前已经表明,外源性添加的具有不同特异性的蛋白酶抑制剂不会抑制APP分泌酶的活性(De Strooper, B., F. Van Leuven, and H. Van Den Berghe. 1992. FEBS (Fed. Eur. Biochem. Soc.) Lett. 308:50 - 53)。我们在此表明,伯胺甲胺可抑制APP分泌到培养基中。此外,我们表明,一种缺失细胞质结构域的APP截短形式比野生型APP更有效地被切割和分泌,这与甲胺阻断作用一起表明,APP分泌酶位于默认组成型分泌途径的晚期区室。因此,APP细胞质结构域中的分选信号在使APP偏离分泌酶途径方面很重要。最后,我们表明,将Arg609突变为Asp并将Lys612突变为Glu会使APP成为APP分泌酶切割效率较低的底物。我们将结合最近关于APP靶向的研究结果对这些结果进行讨论,并与一些遵循类似途径的溶酶体糖蛋白进行比较。