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Structure, Folding Dynamics, and Amyloidogenesis of D76N β(2)-Microglobulin: ROLES OF SHEAR FLOW, HYDROPHOBIC SURFACES, AND α-CRYSTALLIN

Systemic amyloidosis is a fatal disease caused by misfolding of native globular proteins, which then aggregate extracellularly as insoluble fibrils, damaging the structure and function of affected organs. The formation of amyloid fibrils in vivo is poorly understood. We recently identified the first...

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Autores principales: Mangione, P. Patrizia, Esposito, Gennaro, Relini, Annalisa, Raimondi, Sara, Porcari, Riccardo, Giorgetti, Sofia, Corazza, Alessandra, Fogolari, Federico, Penco, Amanda, Goto, Yuji, Lee, Young-Ho, Yagi, Hisashi, Cecconi, Ciro, Naqvi, Mohsin M., Gillmore, Julian D., Hawkins, Philip N., Chiti, Fabrizio, Rolandi, Ranieri, Taylor, Graham W., Pepys, Mark B., Stoppini, Monica, Bellotti, Vittorio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3829406/
https://www.ncbi.nlm.nih.gov/pubmed/24014031
http://dx.doi.org/10.1074/jbc.M113.498857
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author Mangione, P. Patrizia
Esposito, Gennaro
Relini, Annalisa
Raimondi, Sara
Porcari, Riccardo
Giorgetti, Sofia
Corazza, Alessandra
Fogolari, Federico
Penco, Amanda
Goto, Yuji
Lee, Young-Ho
Yagi, Hisashi
Cecconi, Ciro
Naqvi, Mohsin M.
Gillmore, Julian D.
Hawkins, Philip N.
Chiti, Fabrizio
Rolandi, Ranieri
Taylor, Graham W.
Pepys, Mark B.
Stoppini, Monica
Bellotti, Vittorio
author_facet Mangione, P. Patrizia
Esposito, Gennaro
Relini, Annalisa
Raimondi, Sara
Porcari, Riccardo
Giorgetti, Sofia
Corazza, Alessandra
Fogolari, Federico
Penco, Amanda
Goto, Yuji
Lee, Young-Ho
Yagi, Hisashi
Cecconi, Ciro
Naqvi, Mohsin M.
Gillmore, Julian D.
Hawkins, Philip N.
Chiti, Fabrizio
Rolandi, Ranieri
Taylor, Graham W.
Pepys, Mark B.
Stoppini, Monica
Bellotti, Vittorio
author_sort Mangione, P. Patrizia
collection PubMed
description Systemic amyloidosis is a fatal disease caused by misfolding of native globular proteins, which then aggregate extracellularly as insoluble fibrils, damaging the structure and function of affected organs. The formation of amyloid fibrils in vivo is poorly understood. We recently identified the first naturally occurring structural variant, D76N, of human β(2)-microglobulin (β(2)m), the ubiquitous light chain of class I major histocompatibility antigens, as the amyloid fibril protein in a family with a new phenotype of late onset fatal hereditary systemic amyloidosis. Here we show that, uniquely, D76N β(2)m readily forms amyloid fibrils in vitro under physiological extracellular conditions. The globular native fold transition to the fibrillar state is primed by exposure to a hydrophobic-hydrophilic interface under physiological intensity shear flow. Wild type β(2)m is recruited by the variant into amyloid fibrils in vitro but is absent from amyloid deposited in vivo. This may be because, as we show here, such recruitment is inhibited by chaperone activity. Our results suggest general mechanistic principles of in vivo amyloid fibrillogenesis by globular proteins, a previously obscure process. Elucidation of this crucial causative event in clinical amyloidosis should also help to explain the hitherto mysterious timing and location of amyloid deposition.
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spelling pubmed-38294062013-11-15 Structure, Folding Dynamics, and Amyloidogenesis of D76N β(2)-Microglobulin: ROLES OF SHEAR FLOW, HYDROPHOBIC SURFACES, AND α-CRYSTALLIN Mangione, P. Patrizia Esposito, Gennaro Relini, Annalisa Raimondi, Sara Porcari, Riccardo Giorgetti, Sofia Corazza, Alessandra Fogolari, Federico Penco, Amanda Goto, Yuji Lee, Young-Ho Yagi, Hisashi Cecconi, Ciro Naqvi, Mohsin M. Gillmore, Julian D. Hawkins, Philip N. Chiti, Fabrizio Rolandi, Ranieri Taylor, Graham W. Pepys, Mark B. Stoppini, Monica Bellotti, Vittorio J Biol Chem Molecular Bases of Disease Systemic amyloidosis is a fatal disease caused by misfolding of native globular proteins, which then aggregate extracellularly as insoluble fibrils, damaging the structure and function of affected organs. The formation of amyloid fibrils in vivo is poorly understood. We recently identified the first naturally occurring structural variant, D76N, of human β(2)-microglobulin (β(2)m), the ubiquitous light chain of class I major histocompatibility antigens, as the amyloid fibril protein in a family with a new phenotype of late onset fatal hereditary systemic amyloidosis. Here we show that, uniquely, D76N β(2)m readily forms amyloid fibrils in vitro under physiological extracellular conditions. The globular native fold transition to the fibrillar state is primed by exposure to a hydrophobic-hydrophilic interface under physiological intensity shear flow. Wild type β(2)m is recruited by the variant into amyloid fibrils in vitro but is absent from amyloid deposited in vivo. This may be because, as we show here, such recruitment is inhibited by chaperone activity. Our results suggest general mechanistic principles of in vivo amyloid fibrillogenesis by globular proteins, a previously obscure process. Elucidation of this crucial causative event in clinical amyloidosis should also help to explain the hitherto mysterious timing and location of amyloid deposition. American Society for Biochemistry and Molecular Biology 2013-10-25 2013-09-06 /pmc/articles/PMC3829406/ /pubmed/24014031 http://dx.doi.org/10.1074/jbc.M113.498857 Text en © 2013 by The American Society for Biochemistry and Molecular Biology, Inc. Author's Choice—Final version full access. Creative Commons Attribution Unported License (http://creativecommons.org/licenses/by/3.0/) applies to Author Choice Articles
spellingShingle Molecular Bases of Disease
Mangione, P. Patrizia
Esposito, Gennaro
Relini, Annalisa
Raimondi, Sara
Porcari, Riccardo
Giorgetti, Sofia
Corazza, Alessandra
Fogolari, Federico
Penco, Amanda
Goto, Yuji
Lee, Young-Ho
Yagi, Hisashi
Cecconi, Ciro
Naqvi, Mohsin M.
Gillmore, Julian D.
Hawkins, Philip N.
Chiti, Fabrizio
Rolandi, Ranieri
Taylor, Graham W.
Pepys, Mark B.
Stoppini, Monica
Bellotti, Vittorio
Structure, Folding Dynamics, and Amyloidogenesis of D76N β(2)-Microglobulin: ROLES OF SHEAR FLOW, HYDROPHOBIC SURFACES, AND α-CRYSTALLIN
title Structure, Folding Dynamics, and Amyloidogenesis of D76N β(2)-Microglobulin: ROLES OF SHEAR FLOW, HYDROPHOBIC SURFACES, AND α-CRYSTALLIN
title_full Structure, Folding Dynamics, and Amyloidogenesis of D76N β(2)-Microglobulin: ROLES OF SHEAR FLOW, HYDROPHOBIC SURFACES, AND α-CRYSTALLIN
title_fullStr Structure, Folding Dynamics, and Amyloidogenesis of D76N β(2)-Microglobulin: ROLES OF SHEAR FLOW, HYDROPHOBIC SURFACES, AND α-CRYSTALLIN
title_full_unstemmed Structure, Folding Dynamics, and Amyloidogenesis of D76N β(2)-Microglobulin: ROLES OF SHEAR FLOW, HYDROPHOBIC SURFACES, AND α-CRYSTALLIN
title_short Structure, Folding Dynamics, and Amyloidogenesis of D76N β(2)-Microglobulin: ROLES OF SHEAR FLOW, HYDROPHOBIC SURFACES, AND α-CRYSTALLIN
title_sort structure, folding dynamics, and amyloidogenesis of d76n β(2)-microglobulin: roles of shear flow, hydrophobic surfaces, and α-crystallin
topic Molecular Bases of Disease
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3829406/
https://www.ncbi.nlm.nih.gov/pubmed/24014031
http://dx.doi.org/10.1074/jbc.M113.498857
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