共 2 条
Sequential and γ-secretase-dependent processing of the betacellulin precursor generates a palmitoylated intracellular-domain fragment that inhibits cell growth
被引:23
|作者:
Stoeck, Alexander
[1
]
Shang, Li
[1
]
Dempsey, Peter J.
[1
,2
]
机构:
[1] Univ Michigan, Dept Pediat & Communicable Dis, Ann Arbor, MI 48109 USA
[2] Univ Michigan, Dept Mol & Integrat Physiol, Ann Arbor, MI 48109 USA
关键词:
Betacellulin;
ADAM10;
Regulated intramembrane proteolysis;
Palmitoylation;
Reverse signaling;
FACTOR RECEPTOR LIGANDS;
CYTOPLASMIC DOMAIN;
FACTOR-ALPHA;
TERMINAL FRAGMENT;
TGF-ALPHA;
HB-EGF;
NEUROTROPHIN RECEPTOR;
ECTODOMAIN CLEAVAGE;
PROTEOLYTIC RELEASE;
TETRASPANIN CD9;
D O I:
10.1242/jcs.060830
中图分类号:
Q2 [细胞生物学];
学科分类号:
071009 ;
090102 ;
摘要:
Betacellulin (BTC) belongs to the family of epidermal growth factor (EGF)-like growth factors that are expressed as transmembrane precursors and undergo proteolytic ectodomain shedding to release soluble mature ligands. BTC is a dual-specificity ligand for ErbB1 and ErbB4 receptors, and can activate unique signal-transduction pathways that are beneficial for the function, survival and regeneration of pancreatic beta-cells. We have previously shown that BTC precursor (proBTC) is cleaved by ADAM10 to generate soluble ligand and a stable, transmembrane remnant (BTC-CTF). In this study, we analyzed the fate of the BTC-CTF in greater detail. We demonstrated that proBTC is cleaved by ADAM10 to produce BTC-CTF, which then undergoes intramembrane processing by presenilin-1- and/or presenilin-2-dependent gamma-secretase to generate an intracellular-domain fragment (BTC-ICD). We found that the proBTC cytoplasmic domain is palmitoylated and that palmitoylation is not required for ADAM10-dependent cleavage but is necessary for the stability and gamma-secretase-dependent processing of BTC-CTF to generate BTC-ICD. Additionally, palmitoylation is required for nuclear-membrane localization of BTC-ICD, as demonstrated by the redistribution of non-palmitoylated BTC-ICD mutant to the nucleoplasm. Importantly, a novel receptor-independent role for BTC-ICD signaling is suggested by the ability of BTC-ICD to inhibit cell growth in vitro.
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页码:2319 / 2331
页数:13
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