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PML isoforms in response to arsenic: high-resolution analysis of PML body structure and degradation

Arsenic is a clinically effective treatment for acute promyelocytic leukaemia (APL) in which the promyelocytic leukaemia (PML) protein is fused to retinoic receptor alpha (RARα). PML-RARα is degraded by the proteasome by a SUMO-dependent, ubiquitin-mediated pathway in response to arsenic treatment,...

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Autores principales: Hands, Katherine J., Cuchet-Lourenco, Delphine, Everett, Roger D., Hay, Ronald T.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Company of Biologists 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3889398/
https://www.ncbi.nlm.nih.gov/pubmed/24190887
http://dx.doi.org/10.1242/jcs.132290
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author Hands, Katherine J.
Cuchet-Lourenco, Delphine
Everett, Roger D.
Hay, Ronald T.
author_facet Hands, Katherine J.
Cuchet-Lourenco, Delphine
Everett, Roger D.
Hay, Ronald T.
author_sort Hands, Katherine J.
collection PubMed
description Arsenic is a clinically effective treatment for acute promyelocytic leukaemia (APL) in which the promyelocytic leukaemia (PML) protein is fused to retinoic receptor alpha (RARα). PML-RARα is degraded by the proteasome by a SUMO-dependent, ubiquitin-mediated pathway in response to arsenic treatment, curing the disease. Six major PML isoforms are expressed as a result of alternative splicing, each of which encodes a unique C-terminal region. Using a system in which only a single EYFP-linked PML isoform is expressed, we demonstrate that PMLI, PMLII and PMLVI accumulate in the cytoplasm following arsenic treatment, whereas PMLIII, PMLIV and PMLV do not. 3D structured illumination was used to obtain super-resolution images of PML bodies, revealing spherical shells of PML along with associated SUMO. Arsenic treatment results in dramatic isoform-specific changes to PML body ultrastructure. After extended arsenic treatment most PML isoforms are degraded, leaving SUMO at the core of the nuclear bodies. A high-content imaging assay identifies PMLV as the isoform most readily degraded following arsenic treatment, and PMLIV as relatively resistant to degradation. Immunoprecipitation analysis demonstrates that all PML isoforms are modified by SUMO and ubiquitin after arsenic treatment, and by using siRNA, we demonstrate that arsenic-induced degradation of all PML isoforms is dependent on the ubiquitin E3 ligase RNF4. Intriguingly, depletion of RNF4 results in marked accumulation of PMLV, suggesting that this isoform is an optimal substrate for RNF4. Thus the variable C-terminal domain influences the rate and location of degradation of PML isoforms following arsenic treatment.
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spelling pubmed-38893982014-01-17 PML isoforms in response to arsenic: high-resolution analysis of PML body structure and degradation Hands, Katherine J. Cuchet-Lourenco, Delphine Everett, Roger D. Hay, Ronald T. J Cell Sci Research Article Arsenic is a clinically effective treatment for acute promyelocytic leukaemia (APL) in which the promyelocytic leukaemia (PML) protein is fused to retinoic receptor alpha (RARα). PML-RARα is degraded by the proteasome by a SUMO-dependent, ubiquitin-mediated pathway in response to arsenic treatment, curing the disease. Six major PML isoforms are expressed as a result of alternative splicing, each of which encodes a unique C-terminal region. Using a system in which only a single EYFP-linked PML isoform is expressed, we demonstrate that PMLI, PMLII and PMLVI accumulate in the cytoplasm following arsenic treatment, whereas PMLIII, PMLIV and PMLV do not. 3D structured illumination was used to obtain super-resolution images of PML bodies, revealing spherical shells of PML along with associated SUMO. Arsenic treatment results in dramatic isoform-specific changes to PML body ultrastructure. After extended arsenic treatment most PML isoforms are degraded, leaving SUMO at the core of the nuclear bodies. A high-content imaging assay identifies PMLV as the isoform most readily degraded following arsenic treatment, and PMLIV as relatively resistant to degradation. Immunoprecipitation analysis demonstrates that all PML isoforms are modified by SUMO and ubiquitin after arsenic treatment, and by using siRNA, we demonstrate that arsenic-induced degradation of all PML isoforms is dependent on the ubiquitin E3 ligase RNF4. Intriguingly, depletion of RNF4 results in marked accumulation of PMLV, suggesting that this isoform is an optimal substrate for RNF4. Thus the variable C-terminal domain influences the rate and location of degradation of PML isoforms following arsenic treatment. The Company of Biologists 2014-01-15 /pmc/articles/PMC3889398/ /pubmed/24190887 http://dx.doi.org/10.1242/jcs.132290 Text en © 2014. Published by The Company of Biologists Ltd http://creativecommons.org/licenses/by/3.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/3.0/), which permits unrestricted use, distribution and reproduction in any medium provided that the original work is properly attributed.
spellingShingle Research Article
Hands, Katherine J.
Cuchet-Lourenco, Delphine
Everett, Roger D.
Hay, Ronald T.
PML isoforms in response to arsenic: high-resolution analysis of PML body structure and degradation
title PML isoforms in response to arsenic: high-resolution analysis of PML body structure and degradation
title_full PML isoforms in response to arsenic: high-resolution analysis of PML body structure and degradation
title_fullStr PML isoforms in response to arsenic: high-resolution analysis of PML body structure and degradation
title_full_unstemmed PML isoforms in response to arsenic: high-resolution analysis of PML body structure and degradation
title_short PML isoforms in response to arsenic: high-resolution analysis of PML body structure and degradation
title_sort pml isoforms in response to arsenic: high-resolution analysis of pml body structure and degradation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3889398/
https://www.ncbi.nlm.nih.gov/pubmed/24190887
http://dx.doi.org/10.1242/jcs.132290
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