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A yeast three-hybrid system that reconstitutes mammalian hypoxia inducible factor regulatory machinery

BACKGROUND: Several human pathologies, including neoplasia and ischemic cardiovascular diseases, course with an unbalance between oxygen supply and demand (hypoxia). Cells within hypoxic regions respond with the induction of a specific genetic program, under the control of the Hypoxia Inducible Fact...

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Autores principales: Alcaide-German, Maria L, Vara-Vega, Alicia, Garcia-Fernandez, Luis F, Landazuri, Manuel O, del Peso, Luis
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2008
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2346465/
https://www.ncbi.nlm.nih.gov/pubmed/18402654
http://dx.doi.org/10.1186/1471-2121-9-18
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author Alcaide-German, Maria L
Vara-Vega, Alicia
Garcia-Fernandez, Luis F
Landazuri, Manuel O
del Peso, Luis
author_facet Alcaide-German, Maria L
Vara-Vega, Alicia
Garcia-Fernandez, Luis F
Landazuri, Manuel O
del Peso, Luis
author_sort Alcaide-German, Maria L
collection PubMed
description BACKGROUND: Several human pathologies, including neoplasia and ischemic cardiovascular diseases, course with an unbalance between oxygen supply and demand (hypoxia). Cells within hypoxic regions respond with the induction of a specific genetic program, under the control of the Hypoxia Inducible Factor (HIF), that mediates their adaptation to the lack of oxygen. The activity of HIF is mainly regulated by the EGL-nine homolog (EGLN) enzymes that hydroxylate the alpha subunit of this transcription factor in an oxygen-dependent reaction. Hydroxylated HIF is then recognized and ubiquitinilated by the product of the tumor suppressor gene, pVHL, leading to its proteosomal degradation. Under hypoxia, the hydroxylation of HIF by the EGLNs is compromised due to the lack of oxygen, which is a reaction cosubstrate. Thus, HIF escapes degradation and drives the transcription of its target genes. Since the progression of the aforementioned pathologies might be influenced by activation of HIF-target genes, development of small molecules with the ability to interfere with the HIF-regulatory machinery is of great interest. RESULTS: Herein we describe a yeast three-hybrid system that reconstitutes mammalian HIF regulation by the EGLNs and VHL. In this system, yeast growth, under specific nutrient restrictions, is driven by the interaction between the β domain of VHL and a hydroxyproline-containing HIFα peptide. In turn, this interaction is strictly dependent on EGLN activity that hydroxylates the HIFα peptide. Importantly, this system accurately preserves the specificity of the hydroxylation reaction toward specific substrates. We propose that this system, in combination with a matched control, can be used as a simple and inexpensive assay to identify molecules that specifically modulate EGLN activity. As a proof of principle we show that two known EGLN inhibitors, dimethyloxaloylglycine (DMOG) and 6-chlor-3-hydroxychinolin-2-carbonic acid-N-carboxymethylamide (S956711), have a profound and specific effect on the yeast HIF/EGLN/VHL system. CONCLUSION: The system described in this work accurately reconstitutes HIF regulation while preserving EGLN substrate specificity. Thus, it is a valuable tool to study HIF regulation, and particularly EGLN biochemistry, in a cellular context. In addition, we demonstrate that this system can be used to identify specific inhibitors of the EGLN enzymes.
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spelling pubmed-23464652008-04-26 A yeast three-hybrid system that reconstitutes mammalian hypoxia inducible factor regulatory machinery Alcaide-German, Maria L Vara-Vega, Alicia Garcia-Fernandez, Luis F Landazuri, Manuel O del Peso, Luis BMC Cell Biol Research Article BACKGROUND: Several human pathologies, including neoplasia and ischemic cardiovascular diseases, course with an unbalance between oxygen supply and demand (hypoxia). Cells within hypoxic regions respond with the induction of a specific genetic program, under the control of the Hypoxia Inducible Factor (HIF), that mediates their adaptation to the lack of oxygen. The activity of HIF is mainly regulated by the EGL-nine homolog (EGLN) enzymes that hydroxylate the alpha subunit of this transcription factor in an oxygen-dependent reaction. Hydroxylated HIF is then recognized and ubiquitinilated by the product of the tumor suppressor gene, pVHL, leading to its proteosomal degradation. Under hypoxia, the hydroxylation of HIF by the EGLNs is compromised due to the lack of oxygen, which is a reaction cosubstrate. Thus, HIF escapes degradation and drives the transcription of its target genes. Since the progression of the aforementioned pathologies might be influenced by activation of HIF-target genes, development of small molecules with the ability to interfere with the HIF-regulatory machinery is of great interest. RESULTS: Herein we describe a yeast three-hybrid system that reconstitutes mammalian HIF regulation by the EGLNs and VHL. In this system, yeast growth, under specific nutrient restrictions, is driven by the interaction between the β domain of VHL and a hydroxyproline-containing HIFα peptide. In turn, this interaction is strictly dependent on EGLN activity that hydroxylates the HIFα peptide. Importantly, this system accurately preserves the specificity of the hydroxylation reaction toward specific substrates. We propose that this system, in combination with a matched control, can be used as a simple and inexpensive assay to identify molecules that specifically modulate EGLN activity. As a proof of principle we show that two known EGLN inhibitors, dimethyloxaloylglycine (DMOG) and 6-chlor-3-hydroxychinolin-2-carbonic acid-N-carboxymethylamide (S956711), have a profound and specific effect on the yeast HIF/EGLN/VHL system. CONCLUSION: The system described in this work accurately reconstitutes HIF regulation while preserving EGLN substrate specificity. Thus, it is a valuable tool to study HIF regulation, and particularly EGLN biochemistry, in a cellular context. In addition, we demonstrate that this system can be used to identify specific inhibitors of the EGLN enzymes. BioMed Central 2008-04-10 /pmc/articles/PMC2346465/ /pubmed/18402654 http://dx.doi.org/10.1186/1471-2121-9-18 Text en Copyright © 2008 Alcaide-German et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License ( (http://creativecommons.org/licenses/by/2.0) ), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Alcaide-German, Maria L
Vara-Vega, Alicia
Garcia-Fernandez, Luis F
Landazuri, Manuel O
del Peso, Luis
A yeast three-hybrid system that reconstitutes mammalian hypoxia inducible factor regulatory machinery
title A yeast three-hybrid system that reconstitutes mammalian hypoxia inducible factor regulatory machinery
title_full A yeast three-hybrid system that reconstitutes mammalian hypoxia inducible factor regulatory machinery
title_fullStr A yeast three-hybrid system that reconstitutes mammalian hypoxia inducible factor regulatory machinery
title_full_unstemmed A yeast three-hybrid system that reconstitutes mammalian hypoxia inducible factor regulatory machinery
title_short A yeast three-hybrid system that reconstitutes mammalian hypoxia inducible factor regulatory machinery
title_sort yeast three-hybrid system that reconstitutes mammalian hypoxia inducible factor regulatory machinery
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2346465/
https://www.ncbi.nlm.nih.gov/pubmed/18402654
http://dx.doi.org/10.1186/1471-2121-9-18
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