Author
Listed:
- Joo In Jung
- Sasha Premraj
- Pedro E Cruz
- Thomas B Ladd
- Yewon Kwak
- Edward H Koo
- Kevin M Felsenstein
- Todd E Golde
- Yong Ran
Abstract
Altered production of β-amyloid (Aβ) from the amyloid precursor protein (APP) is closely associated with Alzheimer’s disease (AD). APP has a number of homo- and hetero-dimerizing domains, and studies have suggested that dimerization of β-secretase derived APP carboxyl terminal fragment (CTFβ, C99) impairs processive cleavage by γ-secretase increasing production of long Aβs (e.g., Aβ1-42, 43). Other studies report that APP CTFβ dimers are not γ-secretase substrates. We revisited this issue due to observations made with an artificial APP mutant referred to as 3xK-APP, which contains three lysine residues at the border of the APP ectodomain and transmembrane domain (TMD). This mutant, which dramatically increases production of long Aβ, was found to form SDS-stable APP dimers, once again suggesting a mechanistic link between dimerization and increased production of long Aβ. To further evaluate how multimerization of substrate affects both initial γ-secretase cleavage and subsequent processivity, we generated recombinant wild type- (WT) and 3xK-C100 substrates, isolated monomeric, dimeric and trimeric forms of these proteins, and evaluated both ε-cleavage site utilization and Aβ production. These show that multimerization significantly impedes γ-secretase cleavage, irrespective of substrate sequence. Further, the monomeric form of the 3xK-C100 mutant increased long Aβ production without altering the initial ε-cleavage utilization. These data confirm and extend previous studies showing that dimeric substrates are not efficient γ-secretase substrates, and demonstrate that primary sequence determinants within APP substrate alter γ-secretase processivity.
Suggested Citation
Joo In Jung & Sasha Premraj & Pedro E Cruz & Thomas B Ladd & Yewon Kwak & Edward H Koo & Kevin M Felsenstein & Todd E Golde & Yong Ran, 2014.
"Independent Relationship between Amyloid Precursor Protein (APP) Dimerization and γ-Secretase Processivity,"
PLOS ONE, Public Library of Science, vol. 9(10), pages 1-8, October.
Handle:
RePEc:plo:pone00:0111553
DOI: 10.1371/journal.pone.0111553
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