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Structural basis of glycogen branching enzyme deficiency and pharmacologic rescue by rational peptide design

Glycogen branching enzyme 1 (GBE1) plays an essential role in glycogen biosynthesis by generating α-1,6-glucosidic branches from α-1,4-linked glucose chains, to increase solubility of the glycogen polymer. Mutations in the GBE1 gene lead to the heterogeneous early-onset glycogen storage disorder typ...

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Autores principales: Froese, D. Sean, Michaeli, Amit, McCorvie, Thomas J., Krojer, Tobias, Sasi, Meitav, Melaev, Esther, Goldblum, Amiram, Zatsepin, Maria, Lossos, Alexander, Álvarez, Rafael, Escribá, Pablo V., Minassian, Berge A., von Delft, Frank, Kakhlon, Or, Yue, Wyatt W.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4581599/
https://www.ncbi.nlm.nih.gov/pubmed/26199317
http://dx.doi.org/10.1093/hmg/ddv280
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author Froese, D. Sean
Michaeli, Amit
McCorvie, Thomas J.
Krojer, Tobias
Sasi, Meitav
Melaev, Esther
Goldblum, Amiram
Zatsepin, Maria
Lossos, Alexander
Álvarez, Rafael
Escribá, Pablo V.
Minassian, Berge A.
von Delft, Frank
Kakhlon, Or
Yue, Wyatt W.
author_facet Froese, D. Sean
Michaeli, Amit
McCorvie, Thomas J.
Krojer, Tobias
Sasi, Meitav
Melaev, Esther
Goldblum, Amiram
Zatsepin, Maria
Lossos, Alexander
Álvarez, Rafael
Escribá, Pablo V.
Minassian, Berge A.
von Delft, Frank
Kakhlon, Or
Yue, Wyatt W.
author_sort Froese, D. Sean
collection PubMed
description Glycogen branching enzyme 1 (GBE1) plays an essential role in glycogen biosynthesis by generating α-1,6-glucosidic branches from α-1,4-linked glucose chains, to increase solubility of the glycogen polymer. Mutations in the GBE1 gene lead to the heterogeneous early-onset glycogen storage disorder type IV (GSDIV) or the late-onset adult polyglucosan body disease (APBD). To better understand this essential enzyme, we crystallized human GBE1 in the apo form, and in complex with a tetra- or hepta-saccharide. The GBE1 structure reveals a conserved amylase core that houses the active centre for the branching reaction and harbours almost all GSDIV and APBD mutations. A non-catalytic binding cleft, proximal to the site of the common APBD mutation p.Y329S, was found to bind the tetra- and hepta-saccharides and may represent a higher-affinity site employed to anchor the complex glycogen substrate for the branching reaction. Expression of recombinant GBE1-p.Y329S resulted in drastically reduced protein yield and solubility compared with wild type, suggesting this disease allele causes protein misfolding and may be amenable to small molecule stabilization. To explore this, we generated a structural model of GBE1-p.Y329S and designed peptides ab initio to stabilize the mutation. As proof-of-principle, we evaluated treatment of one tetra-peptide, Leu-Thr-Lys-Glu, in APBD patient cells. We demonstrate intracellular transport of this peptide, its binding and stabilization of GBE1-p.Y329S, and 2-fold increased mutant enzymatic activity compared with untreated patient cells. Together, our data provide the rationale and starting point for the screening of small molecule chaperones, which could become novel therapies for this disease.
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spelling pubmed-45815992015-09-25 Structural basis of glycogen branching enzyme deficiency and pharmacologic rescue by rational peptide design Froese, D. Sean Michaeli, Amit McCorvie, Thomas J. Krojer, Tobias Sasi, Meitav Melaev, Esther Goldblum, Amiram Zatsepin, Maria Lossos, Alexander Álvarez, Rafael Escribá, Pablo V. Minassian, Berge A. von Delft, Frank Kakhlon, Or Yue, Wyatt W. Hum Mol Genet Articles Glycogen branching enzyme 1 (GBE1) plays an essential role in glycogen biosynthesis by generating α-1,6-glucosidic branches from α-1,4-linked glucose chains, to increase solubility of the glycogen polymer. Mutations in the GBE1 gene lead to the heterogeneous early-onset glycogen storage disorder type IV (GSDIV) or the late-onset adult polyglucosan body disease (APBD). To better understand this essential enzyme, we crystallized human GBE1 in the apo form, and in complex with a tetra- or hepta-saccharide. The GBE1 structure reveals a conserved amylase core that houses the active centre for the branching reaction and harbours almost all GSDIV and APBD mutations. A non-catalytic binding cleft, proximal to the site of the common APBD mutation p.Y329S, was found to bind the tetra- and hepta-saccharides and may represent a higher-affinity site employed to anchor the complex glycogen substrate for the branching reaction. Expression of recombinant GBE1-p.Y329S resulted in drastically reduced protein yield and solubility compared with wild type, suggesting this disease allele causes protein misfolding and may be amenable to small molecule stabilization. To explore this, we generated a structural model of GBE1-p.Y329S and designed peptides ab initio to stabilize the mutation. As proof-of-principle, we evaluated treatment of one tetra-peptide, Leu-Thr-Lys-Glu, in APBD patient cells. We demonstrate intracellular transport of this peptide, its binding and stabilization of GBE1-p.Y329S, and 2-fold increased mutant enzymatic activity compared with untreated patient cells. Together, our data provide the rationale and starting point for the screening of small molecule chaperones, which could become novel therapies for this disease. Oxford University Press 2015-10-15 2015-07-21 /pmc/articles/PMC4581599/ /pubmed/26199317 http://dx.doi.org/10.1093/hmg/ddv280 Text en © The Author 2015. Published by Oxford University Press. http://creativecommons.org/licenses/by/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Articles
Froese, D. Sean
Michaeli, Amit
McCorvie, Thomas J.
Krojer, Tobias
Sasi, Meitav
Melaev, Esther
Goldblum, Amiram
Zatsepin, Maria
Lossos, Alexander
Álvarez, Rafael
Escribá, Pablo V.
Minassian, Berge A.
von Delft, Frank
Kakhlon, Or
Yue, Wyatt W.
Structural basis of glycogen branching enzyme deficiency and pharmacologic rescue by rational peptide design
title Structural basis of glycogen branching enzyme deficiency and pharmacologic rescue by rational peptide design
title_full Structural basis of glycogen branching enzyme deficiency and pharmacologic rescue by rational peptide design
title_fullStr Structural basis of glycogen branching enzyme deficiency and pharmacologic rescue by rational peptide design
title_full_unstemmed Structural basis of glycogen branching enzyme deficiency and pharmacologic rescue by rational peptide design
title_short Structural basis of glycogen branching enzyme deficiency and pharmacologic rescue by rational peptide design
title_sort structural basis of glycogen branching enzyme deficiency and pharmacologic rescue by rational peptide design
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4581599/
https://www.ncbi.nlm.nih.gov/pubmed/26199317
http://dx.doi.org/10.1093/hmg/ddv280
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