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Side-by-side comparison of Notch- and C83 binding to γ-secretase in a complete membrane model at physiological temperature

γ-Secretase cleaves the C99 fragment of the amyloid precursor protein, leading to formation of aggregated β-amyloid peptide central to Alzheimer's disease, and Notch, essential for cell regulation. Recent cryogenic electron microscopy (cryo-EM) structures indicate major changes upon substrate b...

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Autores principales: Dehury, Budheswar, Tang, Ning, Mehra, Rukmankesh, Blundell, Tom L., Kepp, Kasper P.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9056423/
https://www.ncbi.nlm.nih.gov/pubmed/35520661
http://dx.doi.org/10.1039/d0ra04683c
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author Dehury, Budheswar
Tang, Ning
Mehra, Rukmankesh
Blundell, Tom L.
Kepp, Kasper P.
author_facet Dehury, Budheswar
Tang, Ning
Mehra, Rukmankesh
Blundell, Tom L.
Kepp, Kasper P.
author_sort Dehury, Budheswar
collection PubMed
description γ-Secretase cleaves the C99 fragment of the amyloid precursor protein, leading to formation of aggregated β-amyloid peptide central to Alzheimer's disease, and Notch, essential for cell regulation. Recent cryogenic electron microscopy (cryo-EM) structures indicate major changes upon substrate binding, a β-sheet recognition motif, and a possible helix unwinding to expose peptide bonds towards nucleophilic attack. Here we report side-by-side comparison of the 303 K dynamics of the two proteins in realistic membranes using molecular dynamics simulations. Our ensembles agree with the cryo-EM data (full-protein Cα-RMSD = 1.62–2.19 Å) but reveal distinct presenilin helix conformation states and thermal β-strand to coil transitions of C83 and Notch100. We identify distinct 303 K hydrogen bond dynamics and water accessibility of the catalytic sites. The RKRR motif (1758–1761) contributes significantly to Notch binding and serves as a “membrane anchor” that prevents Notch displacement. Water that transiently hydrogen bonds to G1753 and V1754 probably represents the catalytic nucleophile. At 303 K, Notch and C83 binding induce different conformation states, with Notch mostly present in a closed state with shorter Asp–Asp distance. This may explain the different outcome of Notch and C99 cleavage, as the latter is more imprecise with many products. Our identified conformation states may aid efforts to develop conformation-selective drugs that target C99 and Notch cleavage differently, e.g. Notch-sparing γ-secretase modulators.
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spelling pubmed-90564232022-05-04 Side-by-side comparison of Notch- and C83 binding to γ-secretase in a complete membrane model at physiological temperature Dehury, Budheswar Tang, Ning Mehra, Rukmankesh Blundell, Tom L. Kepp, Kasper P. RSC Adv Chemistry γ-Secretase cleaves the C99 fragment of the amyloid precursor protein, leading to formation of aggregated β-amyloid peptide central to Alzheimer's disease, and Notch, essential for cell regulation. Recent cryogenic electron microscopy (cryo-EM) structures indicate major changes upon substrate binding, a β-sheet recognition motif, and a possible helix unwinding to expose peptide bonds towards nucleophilic attack. Here we report side-by-side comparison of the 303 K dynamics of the two proteins in realistic membranes using molecular dynamics simulations. Our ensembles agree with the cryo-EM data (full-protein Cα-RMSD = 1.62–2.19 Å) but reveal distinct presenilin helix conformation states and thermal β-strand to coil transitions of C83 and Notch100. We identify distinct 303 K hydrogen bond dynamics and water accessibility of the catalytic sites. The RKRR motif (1758–1761) contributes significantly to Notch binding and serves as a “membrane anchor” that prevents Notch displacement. Water that transiently hydrogen bonds to G1753 and V1754 probably represents the catalytic nucleophile. At 303 K, Notch and C83 binding induce different conformation states, with Notch mostly present in a closed state with shorter Asp–Asp distance. This may explain the different outcome of Notch and C99 cleavage, as the latter is more imprecise with many products. Our identified conformation states may aid efforts to develop conformation-selective drugs that target C99 and Notch cleavage differently, e.g. Notch-sparing γ-secretase modulators. The Royal Society of Chemistry 2020-08-24 /pmc/articles/PMC9056423/ /pubmed/35520661 http://dx.doi.org/10.1039/d0ra04683c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Dehury, Budheswar
Tang, Ning
Mehra, Rukmankesh
Blundell, Tom L.
Kepp, Kasper P.
Side-by-side comparison of Notch- and C83 binding to γ-secretase in a complete membrane model at physiological temperature
title Side-by-side comparison of Notch- and C83 binding to γ-secretase in a complete membrane model at physiological temperature
title_full Side-by-side comparison of Notch- and C83 binding to γ-secretase in a complete membrane model at physiological temperature
title_fullStr Side-by-side comparison of Notch- and C83 binding to γ-secretase in a complete membrane model at physiological temperature
title_full_unstemmed Side-by-side comparison of Notch- and C83 binding to γ-secretase in a complete membrane model at physiological temperature
title_short Side-by-side comparison of Notch- and C83 binding to γ-secretase in a complete membrane model at physiological temperature
title_sort side-by-side comparison of notch- and c83 binding to γ-secretase in a complete membrane model at physiological temperature
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9056423/
https://www.ncbi.nlm.nih.gov/pubmed/35520661
http://dx.doi.org/10.1039/d0ra04683c
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