Lee Sheu-Fen, Shah Sanjiv, Yu Cong, Wigley W Christian, Li Harry, Lim Myungsil, Pedersen Kia, Han Weiping, Thomas Philip, Lundkvist Johan, Hao Yi-Heng, Yu Gang
Center for Basic Neuroscience, University of Texas Southwestern Medical Center, Dallas, Texas 75390-9111, USA.
J Biol Chem. 2004 Feb 6;279(6):4144-52. doi: 10.1074/jbc.M309745200. Epub 2003 Nov 19.
The multipass membrane protein APH-1, found in the gamma-secretase complex together with presenilin, nicastrin, and PEN-2, is essential for Notch signaling in Caenorhabditis elegans embryos and is required for intramembrane proteolysis of Notch and beta-amyloid precursor protein in mammalian and Drosophila cells. In C. elegans, a mutation of the conserved transmembrane Gly123 in APH-1 (mutant or28) leads to a notch/glp-1 loss-of-function phenotype. In this study, we show that the corresponding mutation in mammalian APH-1aL (G122D) disrupts the physical interaction of APH-1aL with hypoglycosylated immature nicastrin and the presenilin holoprotein as well as with mature nicastrin, presenilin, and PEN-2. The G122D mutation also reduced gamma-secretase activity in intramembrane proteolysis of membrane-tethered Notch. Moreover, we found that the conserved transmembrane Gly122, Gly126, and Gly130 in the fourth transmembrane region of mammalian APH-1aL are part of the membrane helix-helix interaction GXXXG motif and are essential for the stable association of APH-1aL with presenilin, nicastrin, and PEN-2. These findings suggest that APH-1 plays a GXXXG-dependent scaffolding role in both the initial assembly and subsequent maturation and maintenance of the active gamma-secretase complex.
多跨膜蛋白APH-1与早老素、尼卡斯特林和PEN-2共同存在于γ-分泌酶复合物中,对线虫胚胎中的Notch信号传导至关重要,并且在哺乳动物和果蝇细胞中对Notch和β-淀粉样前体蛋白的膜内蛋白水解是必需的。在秀丽隐杆线虫中,APH-1中保守的跨膜甘氨酸123发生突变(突变体or28)会导致notch/glp-1功能丧失表型。在本研究中,我们表明哺乳动物APH-1aL中的相应突变(G122D)破坏了APH-1aL与低糖基化未成熟尼卡斯特林和早老素全蛋白以及与成熟尼卡斯特林、早老素和PEN-2的物理相互作用。G122D突变还降低了膜结合Notch膜内蛋白水解中的γ-分泌酶活性。此外,我们发现哺乳动物APH-1aL第四跨膜区中保守的跨膜甘氨酸122、甘氨酸126和甘氨酸130是膜螺旋-螺旋相互作用GXXXG基序的一部分,并且对于APH-1aL与早老素、尼卡斯特林和PEN-2的稳定结合至关重要。这些发现表明,APH-1在活性γ-分泌酶复合物的初始组装以及随后的成熟和维持中都发挥着GXXXG依赖性支架作用。