APP is cleaved by Bace1 in pre-synaptic vesicles and establishes a pre-synaptic interactome, via its intracellular domain, with molecular complexes that regulate pre-synaptic vesicles functions.

Amyloid Precursor Protein (APP) is a type I membrane protein that undergoes extensive processing by secretases, including BACE1. Although mutations in APP and genes that regulate processing of APP, such as PSENs and BRI2/ITM2B, cause dementias, the normal function of APP in synaptic transmission, sy...

Descripción completa

Guardado en:
Detalles Bibliográficos
Autores principales: Dolores Del Prete, Franco Lombino, Xinran Liu, Luciano D'Adamio
Formato: article
Lenguaje:EN
Publicado: Public Library of Science (PLoS) 2014
Materias:
R
Q
Acceso en línea:https://doaj.org/article/b23aa10f385146a292ac672b57b89bc9
Etiquetas: Agregar Etiqueta
Sin Etiquetas, Sea el primero en etiquetar este registro!
id oai:doaj.org-article:b23aa10f385146a292ac672b57b89bc9
record_format dspace
spelling oai:doaj.org-article:b23aa10f385146a292ac672b57b89bc92021-11-25T05:59:42ZAPP is cleaved by Bace1 in pre-synaptic vesicles and establishes a pre-synaptic interactome, via its intracellular domain, with molecular complexes that regulate pre-synaptic vesicles functions.1932-620310.1371/journal.pone.0108576https://doaj.org/article/b23aa10f385146a292ac672b57b89bc92014-01-01T00:00:00Zhttps://doi.org/10.1371/journal.pone.0108576https://doaj.org/toc/1932-6203Amyloid Precursor Protein (APP) is a type I membrane protein that undergoes extensive processing by secretases, including BACE1. Although mutations in APP and genes that regulate processing of APP, such as PSENs and BRI2/ITM2B, cause dementias, the normal function of APP in synaptic transmission, synaptic plasticity and memory formation is poorly understood. To grasp the biochemical mechanisms underlying the function of APP in the central nervous system, it is important to first define the sub-cellular localization of APP in synapses and the synaptic interactome of APP. Using biochemical and electron microscopy approaches, we have found that APP is localized in pre-synaptic vesicles, where it is processed by Bace1. By means of a proteomic approach, we have characterized the synaptic interactome of the APP intracellular domain. We focused on this region of APP because in vivo data underline the central functional and pathological role of the intracellular domain of APP. Consistent with the expression of APP in pre-synaptic vesicles, the synaptic APP intracellular domain interactome is predominantly constituted by pre-synaptic, rather than post-synaptic, proteins. This pre-synaptic interactome of the APP intracellular domain includes proteins expressed on pre-synaptic vesicles such as the vesicular SNARE Vamp2/Vamp1 and the Ca2+ sensors Synaptotagmin-1/Synaptotagmin-2, and non-vesicular pre-synaptic proteins that regulate exocytosis, endocytosis and recycling of pre-synaptic vesicles, such as target-membrane-SNAREs (Syntaxin-1b, Syntaxin-1a, Snap25 and Snap47), Munc-18, Nsf, α/β/γ-Snaps and complexin. These data are consistent with a functional role for APP, via its carboxyl-terminal domain, in exocytosis, endocytosis and/or recycling of pre-synaptic vesicles.Dolores Del PreteFranco LombinoXinran LiuLuciano D'AdamioLuciano D'AdamioPublic Library of Science (PLoS)articleMedicineRScienceQENPLoS ONE, Vol 9, Iss 9, p e108576 (2014)
institution DOAJ
collection DOAJ
language EN
topic Medicine
R
Science
Q
spellingShingle Medicine
R
Science
Q
Dolores Del Prete
Franco Lombino
Xinran Liu
Luciano D'Adamio
Luciano D'Adamio
APP is cleaved by Bace1 in pre-synaptic vesicles and establishes a pre-synaptic interactome, via its intracellular domain, with molecular complexes that regulate pre-synaptic vesicles functions.
description Amyloid Precursor Protein (APP) is a type I membrane protein that undergoes extensive processing by secretases, including BACE1. Although mutations in APP and genes that regulate processing of APP, such as PSENs and BRI2/ITM2B, cause dementias, the normal function of APP in synaptic transmission, synaptic plasticity and memory formation is poorly understood. To grasp the biochemical mechanisms underlying the function of APP in the central nervous system, it is important to first define the sub-cellular localization of APP in synapses and the synaptic interactome of APP. Using biochemical and electron microscopy approaches, we have found that APP is localized in pre-synaptic vesicles, where it is processed by Bace1. By means of a proteomic approach, we have characterized the synaptic interactome of the APP intracellular domain. We focused on this region of APP because in vivo data underline the central functional and pathological role of the intracellular domain of APP. Consistent with the expression of APP in pre-synaptic vesicles, the synaptic APP intracellular domain interactome is predominantly constituted by pre-synaptic, rather than post-synaptic, proteins. This pre-synaptic interactome of the APP intracellular domain includes proteins expressed on pre-synaptic vesicles such as the vesicular SNARE Vamp2/Vamp1 and the Ca2+ sensors Synaptotagmin-1/Synaptotagmin-2, and non-vesicular pre-synaptic proteins that regulate exocytosis, endocytosis and recycling of pre-synaptic vesicles, such as target-membrane-SNAREs (Syntaxin-1b, Syntaxin-1a, Snap25 and Snap47), Munc-18, Nsf, α/β/γ-Snaps and complexin. These data are consistent with a functional role for APP, via its carboxyl-terminal domain, in exocytosis, endocytosis and/or recycling of pre-synaptic vesicles.
format article
author Dolores Del Prete
Franco Lombino
Xinran Liu
Luciano D'Adamio
Luciano D'Adamio
author_facet Dolores Del Prete
Franco Lombino
Xinran Liu
Luciano D'Adamio
Luciano D'Adamio
author_sort Dolores Del Prete
title APP is cleaved by Bace1 in pre-synaptic vesicles and establishes a pre-synaptic interactome, via its intracellular domain, with molecular complexes that regulate pre-synaptic vesicles functions.
title_short APP is cleaved by Bace1 in pre-synaptic vesicles and establishes a pre-synaptic interactome, via its intracellular domain, with molecular complexes that regulate pre-synaptic vesicles functions.
title_full APP is cleaved by Bace1 in pre-synaptic vesicles and establishes a pre-synaptic interactome, via its intracellular domain, with molecular complexes that regulate pre-synaptic vesicles functions.
title_fullStr APP is cleaved by Bace1 in pre-synaptic vesicles and establishes a pre-synaptic interactome, via its intracellular domain, with molecular complexes that regulate pre-synaptic vesicles functions.
title_full_unstemmed APP is cleaved by Bace1 in pre-synaptic vesicles and establishes a pre-synaptic interactome, via its intracellular domain, with molecular complexes that regulate pre-synaptic vesicles functions.
title_sort app is cleaved by bace1 in pre-synaptic vesicles and establishes a pre-synaptic interactome, via its intracellular domain, with molecular complexes that regulate pre-synaptic vesicles functions.
publisher Public Library of Science (PLoS)
publishDate 2014
url https://doaj.org/article/b23aa10f385146a292ac672b57b89bc9
work_keys_str_mv AT doloresdelprete appiscleavedbybace1inpresynapticvesiclesandestablishesapresynapticinteractomeviaitsintracellulardomainwithmolecularcomplexesthatregulatepresynapticvesiclesfunctions
AT francolombino appiscleavedbybace1inpresynapticvesiclesandestablishesapresynapticinteractomeviaitsintracellulardomainwithmolecularcomplexesthatregulatepresynapticvesiclesfunctions
AT xinranliu appiscleavedbybace1inpresynapticvesiclesandestablishesapresynapticinteractomeviaitsintracellulardomainwithmolecularcomplexesthatregulatepresynapticvesiclesfunctions
AT lucianodadamio appiscleavedbybace1inpresynapticvesiclesandestablishesapresynapticinteractomeviaitsintracellulardomainwithmolecularcomplexesthatregulatepresynapticvesiclesfunctions
AT lucianodadamio appiscleavedbybace1inpresynapticvesiclesandestablishesapresynapticinteractomeviaitsintracellulardomainwithmolecularcomplexesthatregulatepresynapticvesiclesfunctions
_version_ 1718414301896638464