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Chronic Morphine Alters the Presynaptic Protein Profile: Identification of Novel Molecular Targets Using Proteomics and Network Analysis

Opiates produce significant and persistent changes in synaptic transmission; knowledge of the proteins involved in these changes may help to understand the molecular mechanisms underlying opiate dependence. Using an integrated quantitative proteomics and systems biology approach, we explored changes...

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Autores principales: Abul-Husn, Noura S., Annangudi, Suresh P., Ma'ayan, Avi, Ramos-Ortolaza, Dinah L., Stockton, Steven D., Gomes, Ivone, Sweedler, Jonathan V., Devi, Lakshmi A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3197197/
https://www.ncbi.nlm.nih.gov/pubmed/22043286
http://dx.doi.org/10.1371/journal.pone.0025535
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author Abul-Husn, Noura S.
Annangudi, Suresh P.
Ma'ayan, Avi
Ramos-Ortolaza, Dinah L.
Stockton, Steven D.
Gomes, Ivone
Sweedler, Jonathan V.
Devi, Lakshmi A.
author_facet Abul-Husn, Noura S.
Annangudi, Suresh P.
Ma'ayan, Avi
Ramos-Ortolaza, Dinah L.
Stockton, Steven D.
Gomes, Ivone
Sweedler, Jonathan V.
Devi, Lakshmi A.
author_sort Abul-Husn, Noura S.
collection PubMed
description Opiates produce significant and persistent changes in synaptic transmission; knowledge of the proteins involved in these changes may help to understand the molecular mechanisms underlying opiate dependence. Using an integrated quantitative proteomics and systems biology approach, we explored changes in the presynaptic protein profile following a paradigm of chronic morphine administration that leads to the development of dependence. For this, we isolated presynaptic fractions from the striata of rats treated with saline or escalating doses of morphine, and analyzed the proteins in these fractions using differential isotopic labeling. We identified 30 proteins that were significantly altered by morphine and integrated them into a protein-protein interaction (PPI) network representing potential morphine-regulated protein complexes. Graph theory-based analysis of this network revealed clusters of densely connected and functionally related morphine-regulated clusters of proteins. One of the clusters contained molecular chaperones thought to be involved in regulation of neurotransmission. Within this cluster, cysteine-string protein (CSP) and the heat shock protein Hsc70 were downregulated by morphine. Interestingly, Hsp90, a heat shock protein that normally interacts with CSP and Hsc70, was upregulated by morphine. Moreover, treatment with the selective Hsp90 inhibitor, geldanamycin, decreased the somatic signs of naloxone-precipitated morphine withdrawal, suggesting that Hsp90 upregulation at the presynapse plays a role in the expression of morphine dependence. Thus, integration of proteomics, network analysis, and behavioral studies has provided a greater understanding of morphine-induced alterations in synaptic composition, and identified a potential novel therapeutic target for opiate dependence.
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spelling pubmed-31971972011-10-31 Chronic Morphine Alters the Presynaptic Protein Profile: Identification of Novel Molecular Targets Using Proteomics and Network Analysis Abul-Husn, Noura S. Annangudi, Suresh P. Ma'ayan, Avi Ramos-Ortolaza, Dinah L. Stockton, Steven D. Gomes, Ivone Sweedler, Jonathan V. Devi, Lakshmi A. PLoS One Research Article Opiates produce significant and persistent changes in synaptic transmission; knowledge of the proteins involved in these changes may help to understand the molecular mechanisms underlying opiate dependence. Using an integrated quantitative proteomics and systems biology approach, we explored changes in the presynaptic protein profile following a paradigm of chronic morphine administration that leads to the development of dependence. For this, we isolated presynaptic fractions from the striata of rats treated with saline or escalating doses of morphine, and analyzed the proteins in these fractions using differential isotopic labeling. We identified 30 proteins that were significantly altered by morphine and integrated them into a protein-protein interaction (PPI) network representing potential morphine-regulated protein complexes. Graph theory-based analysis of this network revealed clusters of densely connected and functionally related morphine-regulated clusters of proteins. One of the clusters contained molecular chaperones thought to be involved in regulation of neurotransmission. Within this cluster, cysteine-string protein (CSP) and the heat shock protein Hsc70 were downregulated by morphine. Interestingly, Hsp90, a heat shock protein that normally interacts with CSP and Hsc70, was upregulated by morphine. Moreover, treatment with the selective Hsp90 inhibitor, geldanamycin, decreased the somatic signs of naloxone-precipitated morphine withdrawal, suggesting that Hsp90 upregulation at the presynapse plays a role in the expression of morphine dependence. Thus, integration of proteomics, network analysis, and behavioral studies has provided a greater understanding of morphine-induced alterations in synaptic composition, and identified a potential novel therapeutic target for opiate dependence. Public Library of Science 2011-10-17 /pmc/articles/PMC3197197/ /pubmed/22043286 http://dx.doi.org/10.1371/journal.pone.0025535 Text en Abul-Husn et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Abul-Husn, Noura S.
Annangudi, Suresh P.
Ma'ayan, Avi
Ramos-Ortolaza, Dinah L.
Stockton, Steven D.
Gomes, Ivone
Sweedler, Jonathan V.
Devi, Lakshmi A.
Chronic Morphine Alters the Presynaptic Protein Profile: Identification of Novel Molecular Targets Using Proteomics and Network Analysis
title Chronic Morphine Alters the Presynaptic Protein Profile: Identification of Novel Molecular Targets Using Proteomics and Network Analysis
title_full Chronic Morphine Alters the Presynaptic Protein Profile: Identification of Novel Molecular Targets Using Proteomics and Network Analysis
title_fullStr Chronic Morphine Alters the Presynaptic Protein Profile: Identification of Novel Molecular Targets Using Proteomics and Network Analysis
title_full_unstemmed Chronic Morphine Alters the Presynaptic Protein Profile: Identification of Novel Molecular Targets Using Proteomics and Network Analysis
title_short Chronic Morphine Alters the Presynaptic Protein Profile: Identification of Novel Molecular Targets Using Proteomics and Network Analysis
title_sort chronic morphine alters the presynaptic protein profile: identification of novel molecular targets using proteomics and network analysis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3197197/
https://www.ncbi.nlm.nih.gov/pubmed/22043286
http://dx.doi.org/10.1371/journal.pone.0025535
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