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Identification of BACE1 cleavage sites in human voltage-gated sodium channel beta 2 subunit

BACKGROUND: The voltage-gated sodium channel β2 subunit (Navβ2) is a physiological substrate of BACE1 (β-site APP cleaving enzyme) and γ-secretase, two proteolytic enzymes central to Alzheimer's disease pathogenesis. Previously, we have found that the processing of Navβ2 by BACE1 and γ-secretas...

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Autores principales: Gersbacher, Manuel T, Kim, Doo Yeon, Bhattacharyya, Raja, Kovacs, Dora M
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3022600/
https://www.ncbi.nlm.nih.gov/pubmed/21182789
http://dx.doi.org/10.1186/1750-1326-5-61
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author Gersbacher, Manuel T
Kim, Doo Yeon
Bhattacharyya, Raja
Kovacs, Dora M
author_facet Gersbacher, Manuel T
Kim, Doo Yeon
Bhattacharyya, Raja
Kovacs, Dora M
author_sort Gersbacher, Manuel T
collection PubMed
description BACKGROUND: The voltage-gated sodium channel β2 subunit (Navβ2) is a physiological substrate of BACE1 (β-site APP cleaving enzyme) and γ-secretase, two proteolytic enzymes central to Alzheimer's disease pathogenesis. Previously, we have found that the processing of Navβ2 by BACE1 and γ-secretase regulates sodium channel metabolism in neuronal cells. In the current study we identified the BACE1 cleavage sites in human Navβ2. RESULTS: We found a major (147-148 L↓M, where ↓ indicates the cleavage site) and a minor (144145 L↓Q) BACE1 cleavage site in the extracellular domain of human Navβ2 using a cell-free BACE1 cleavage assay followed by mass spectrometry. Next, we introduced two different double mutations into the identified major BACE1 cleavage site in human Navβ2: 147LM/VI and 147LM/AA. Both mutations dramatically decreased the cleavage of human Navβ2 by endogenous BACE1 in cell-free BACE1 cleavage assays. Neither of the two mutations affected subcellular localization of Navβ2 as confirmed by confocal fluorescence microscopy and subcellular fractionation of cholesterol-rich domains. Finally, wildtype and mutated Navβ2 were expressed along BACE1 in B104 rat neuroblastoma cells. In spite of α-secretase still actively cleaving the mutant proteins, Navβ2 cleavage products decreased by ~50% in cells expressing Navβ2 (147LM/VI) and ~75% in cells expressing Navβ2 (147LM/AA) as compared to cells expressing wildtype Navβ2. CONCLUSION: We identified a major (147-148 L↓M) and a minor (144-145 L↓Q) BACE1 cleavage site in human Navβ2. Our in vitro and cell-based results clearly show that the 147-148 L↓M is the major BACE1 cleavage site in human Navβ2. These findings expand our understanding of the role of BACE1 in voltage-gated sodium channel metabolism.
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spelling pubmed-30226002011-01-19 Identification of BACE1 cleavage sites in human voltage-gated sodium channel beta 2 subunit Gersbacher, Manuel T Kim, Doo Yeon Bhattacharyya, Raja Kovacs, Dora M Mol Neurodegener Research Article BACKGROUND: The voltage-gated sodium channel β2 subunit (Navβ2) is a physiological substrate of BACE1 (β-site APP cleaving enzyme) and γ-secretase, two proteolytic enzymes central to Alzheimer's disease pathogenesis. Previously, we have found that the processing of Navβ2 by BACE1 and γ-secretase regulates sodium channel metabolism in neuronal cells. In the current study we identified the BACE1 cleavage sites in human Navβ2. RESULTS: We found a major (147-148 L↓M, where ↓ indicates the cleavage site) and a minor (144145 L↓Q) BACE1 cleavage site in the extracellular domain of human Navβ2 using a cell-free BACE1 cleavage assay followed by mass spectrometry. Next, we introduced two different double mutations into the identified major BACE1 cleavage site in human Navβ2: 147LM/VI and 147LM/AA. Both mutations dramatically decreased the cleavage of human Navβ2 by endogenous BACE1 in cell-free BACE1 cleavage assays. Neither of the two mutations affected subcellular localization of Navβ2 as confirmed by confocal fluorescence microscopy and subcellular fractionation of cholesterol-rich domains. Finally, wildtype and mutated Navβ2 were expressed along BACE1 in B104 rat neuroblastoma cells. In spite of α-secretase still actively cleaving the mutant proteins, Navβ2 cleavage products decreased by ~50% in cells expressing Navβ2 (147LM/VI) and ~75% in cells expressing Navβ2 (147LM/AA) as compared to cells expressing wildtype Navβ2. CONCLUSION: We identified a major (147-148 L↓M) and a minor (144-145 L↓Q) BACE1 cleavage site in human Navβ2. Our in vitro and cell-based results clearly show that the 147-148 L↓M is the major BACE1 cleavage site in human Navβ2. These findings expand our understanding of the role of BACE1 in voltage-gated sodium channel metabolism. BioMed Central 2010-12-23 /pmc/articles/PMC3022600/ /pubmed/21182789 http://dx.doi.org/10.1186/1750-1326-5-61 Text en Copyright ©2010 Gersbacher et al; licensee BioMed Central Ltd. This is an Open Access article distributed under the terms of the Creative Commons Attribution License (<url>http://creativecommons.org/licenses/by/2.0</url>), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Gersbacher, Manuel T
Kim, Doo Yeon
Bhattacharyya, Raja
Kovacs, Dora M
Identification of BACE1 cleavage sites in human voltage-gated sodium channel beta 2 subunit
title Identification of BACE1 cleavage sites in human voltage-gated sodium channel beta 2 subunit
title_full Identification of BACE1 cleavage sites in human voltage-gated sodium channel beta 2 subunit
title_fullStr Identification of BACE1 cleavage sites in human voltage-gated sodium channel beta 2 subunit
title_full_unstemmed Identification of BACE1 cleavage sites in human voltage-gated sodium channel beta 2 subunit
title_short Identification of BACE1 cleavage sites in human voltage-gated sodium channel beta 2 subunit
title_sort identification of bace1 cleavage sites in human voltage-gated sodium channel beta 2 subunit
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3022600/
https://www.ncbi.nlm.nih.gov/pubmed/21182789
http://dx.doi.org/10.1186/1750-1326-5-61
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