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Peroxisomal ABC transporters: functions and mechanism

Peroxisomes are arguably the most biochemically versatile of all eukaryotic organelles. Their metabolic functions vary between different organisms, between different tissue types of the same organism and even between different developmental stages or in response to changed environmental conditions....

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Autores principales: Baker, Alison, Carrier, David J., Schaedler, Theresia, Waterham, Hans R., van Roermund, Carlo W., Theodoulou, Frederica L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Portland Press Ltd. 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4652930/
https://www.ncbi.nlm.nih.gov/pubmed/26517910
http://dx.doi.org/10.1042/BST20150127
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author Baker, Alison
Carrier, David J.
Schaedler, Theresia
Waterham, Hans R.
van Roermund, Carlo W.
Theodoulou, Frederica L.
author_facet Baker, Alison
Carrier, David J.
Schaedler, Theresia
Waterham, Hans R.
van Roermund, Carlo W.
Theodoulou, Frederica L.
author_sort Baker, Alison
collection PubMed
description Peroxisomes are arguably the most biochemically versatile of all eukaryotic organelles. Their metabolic functions vary between different organisms, between different tissue types of the same organism and even between different developmental stages or in response to changed environmental conditions. New functions for peroxisomes are still being discovered and their importance is underscored by the severe phenotypes that can arise as a result of peroxisome dysfunction. The β-oxidation pathway is central to peroxisomal metabolism, but the substrates processed are very diverse, reflecting the diversity of peroxisomes across species. Substrates for β-oxidation enter peroxisomes via ATP-binding cassette (ABC) transporters of subfamily D; (ABCD) and are activated by specific acyl CoA synthetases for further metabolism. Humans have three peroxisomal ABCD family members, which are half transporters that homodimerize and have distinct but partially overlapping substrate specificity; Saccharomyces cerevisiae has two half transporters that heterodimerize and plants have a single peroxisomal ABC transporter that is a fused heterodimer and which appears to be the single entry point into peroxisomes for a very wide variety of β-oxidation substrates. Our studies suggest that the Arabidopsis peroxisomal ABC transporter AtABCD1 accepts acyl CoA substrates, cleaves them before or during transport followed by reactivation by peroxisomal synthetases. We propose that this is a general mechanism to provide specificity to this class of transporters and by which amphipathic compounds are moved across peroxisome membranes.
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spelling pubmed-46529302015-12-09 Peroxisomal ABC transporters: functions and mechanism Baker, Alison Carrier, David J. Schaedler, Theresia Waterham, Hans R. van Roermund, Carlo W. Theodoulou, Frederica L. Biochem Soc Trans Biochemical Society Focused Meetings Peroxisomes are arguably the most biochemically versatile of all eukaryotic organelles. Their metabolic functions vary between different organisms, between different tissue types of the same organism and even between different developmental stages or in response to changed environmental conditions. New functions for peroxisomes are still being discovered and their importance is underscored by the severe phenotypes that can arise as a result of peroxisome dysfunction. The β-oxidation pathway is central to peroxisomal metabolism, but the substrates processed are very diverse, reflecting the diversity of peroxisomes across species. Substrates for β-oxidation enter peroxisomes via ATP-binding cassette (ABC) transporters of subfamily D; (ABCD) and are activated by specific acyl CoA synthetases for further metabolism. Humans have three peroxisomal ABCD family members, which are half transporters that homodimerize and have distinct but partially overlapping substrate specificity; Saccharomyces cerevisiae has two half transporters that heterodimerize and plants have a single peroxisomal ABC transporter that is a fused heterodimer and which appears to be the single entry point into peroxisomes for a very wide variety of β-oxidation substrates. Our studies suggest that the Arabidopsis peroxisomal ABC transporter AtABCD1 accepts acyl CoA substrates, cleaves them before or during transport followed by reactivation by peroxisomal synthetases. We propose that this is a general mechanism to provide specificity to this class of transporters and by which amphipathic compounds are moved across peroxisome membranes. Portland Press Ltd. 2015-10-09 2015-10-01 /pmc/articles/PMC4652930/ /pubmed/26517910 http://dx.doi.org/10.1042/BST20150127 Text en © 2015 Authors http://creativecommons.org/licenses/by/3.0/ This is an open access article published by Portland Press Limited and distributed under the Creative Commons Attribution Licence 3.0 (http://creativecommons.org/licenses/by/3.0/) .
spellingShingle Biochemical Society Focused Meetings
Baker, Alison
Carrier, David J.
Schaedler, Theresia
Waterham, Hans R.
van Roermund, Carlo W.
Theodoulou, Frederica L.
Peroxisomal ABC transporters: functions and mechanism
title Peroxisomal ABC transporters: functions and mechanism
title_full Peroxisomal ABC transporters: functions and mechanism
title_fullStr Peroxisomal ABC transporters: functions and mechanism
title_full_unstemmed Peroxisomal ABC transporters: functions and mechanism
title_short Peroxisomal ABC transporters: functions and mechanism
title_sort peroxisomal abc transporters: functions and mechanism
topic Biochemical Society Focused Meetings
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4652930/
https://www.ncbi.nlm.nih.gov/pubmed/26517910
http://dx.doi.org/10.1042/BST20150127
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