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Mitochondrial fission factor (MFF) is a critical regulator of peroxisome maturation

Peroxisomes are highly dynamic subcellular compartments with important functions in lipid and ROS metabolism. Impaired peroxisomal function can lead to severe metabolic disorders with developmental defects and neurological abnormalities. Recently, a new group of disorders has been identified, charac...

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Autores principales: Passmore, Josiah B., Carmichael, Ruth E., Schrader, Tina A., Godinho, Luis F., Ferdinandusse, Sacha, Lismont, Celien, Wang, Yunhong, Hacker, Christian, Islinger, Markus, Fransen, Marc, Richards, David M., Freisinger, Peter, Schrader, Michael
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7262603/
https://www.ncbi.nlm.nih.gov/pubmed/32224193
http://dx.doi.org/10.1016/j.bbamcr.2020.118709
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author Passmore, Josiah B.
Carmichael, Ruth E.
Schrader, Tina A.
Godinho, Luis F.
Ferdinandusse, Sacha
Lismont, Celien
Wang, Yunhong
Hacker, Christian
Islinger, Markus
Fransen, Marc
Richards, David M.
Freisinger, Peter
Schrader, Michael
author_facet Passmore, Josiah B.
Carmichael, Ruth E.
Schrader, Tina A.
Godinho, Luis F.
Ferdinandusse, Sacha
Lismont, Celien
Wang, Yunhong
Hacker, Christian
Islinger, Markus
Fransen, Marc
Richards, David M.
Freisinger, Peter
Schrader, Michael
author_sort Passmore, Josiah B.
collection PubMed
description Peroxisomes are highly dynamic subcellular compartments with important functions in lipid and ROS metabolism. Impaired peroxisomal function can lead to severe metabolic disorders with developmental defects and neurological abnormalities. Recently, a new group of disorders has been identified, characterised by defects in the membrane dynamics and division of peroxisomes rather than by loss of metabolic functions. However, the contribution of impaired peroxisome plasticity to the pathophysiology of those disorders is not well understood. Mitochondrial fission factor (MFF) is a key component of both the peroxisomal and mitochondrial division machinery. Patients with MFF deficiency present with developmental and neurological abnormalities. Peroxisomes (and mitochondria) in patient fibroblasts are highly elongated as a result of impaired organelle division. The majority of studies into MFF-deficiency have focused on mitochondrial dysfunction, but the contribution of peroxisomal alterations to the pathophysiology is largely unknown. Here, we show that MFF deficiency does not cause alterations to overall peroxisomal biochemical function. However, loss of MFF results in reduced import-competency of the peroxisomal compartment and leads to the accumulation of pre-peroxisomal membrane structures. We show that peroxisomes in MFF-deficient cells display alterations in peroxisomal redox state and intra-peroxisomal pH. Removal of elongated peroxisomes through induction of autophagic processes is not impaired. A mathematical model describing key processes involved in peroxisome dynamics sheds further light into the physical processes disturbed in MFF-deficient cells. The consequences of our findings for the pathophysiology of MFF-deficiency and related disorders with impaired peroxisome plasticity are discussed.
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spelling pubmed-72626032020-07-01 Mitochondrial fission factor (MFF) is a critical regulator of peroxisome maturation Passmore, Josiah B. Carmichael, Ruth E. Schrader, Tina A. Godinho, Luis F. Ferdinandusse, Sacha Lismont, Celien Wang, Yunhong Hacker, Christian Islinger, Markus Fransen, Marc Richards, David M. Freisinger, Peter Schrader, Michael Biochim Biophys Acta Mol Cell Res Article Peroxisomes are highly dynamic subcellular compartments with important functions in lipid and ROS metabolism. Impaired peroxisomal function can lead to severe metabolic disorders with developmental defects and neurological abnormalities. Recently, a new group of disorders has been identified, characterised by defects in the membrane dynamics and division of peroxisomes rather than by loss of metabolic functions. However, the contribution of impaired peroxisome plasticity to the pathophysiology of those disorders is not well understood. Mitochondrial fission factor (MFF) is a key component of both the peroxisomal and mitochondrial division machinery. Patients with MFF deficiency present with developmental and neurological abnormalities. Peroxisomes (and mitochondria) in patient fibroblasts are highly elongated as a result of impaired organelle division. The majority of studies into MFF-deficiency have focused on mitochondrial dysfunction, but the contribution of peroxisomal alterations to the pathophysiology is largely unknown. Here, we show that MFF deficiency does not cause alterations to overall peroxisomal biochemical function. However, loss of MFF results in reduced import-competency of the peroxisomal compartment and leads to the accumulation of pre-peroxisomal membrane structures. We show that peroxisomes in MFF-deficient cells display alterations in peroxisomal redox state and intra-peroxisomal pH. Removal of elongated peroxisomes through induction of autophagic processes is not impaired. A mathematical model describing key processes involved in peroxisome dynamics sheds further light into the physical processes disturbed in MFF-deficient cells. The consequences of our findings for the pathophysiology of MFF-deficiency and related disorders with impaired peroxisome plasticity are discussed. Elsevier 2020-07 /pmc/articles/PMC7262603/ /pubmed/32224193 http://dx.doi.org/10.1016/j.bbamcr.2020.118709 Text en © 2020 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Passmore, Josiah B.
Carmichael, Ruth E.
Schrader, Tina A.
Godinho, Luis F.
Ferdinandusse, Sacha
Lismont, Celien
Wang, Yunhong
Hacker, Christian
Islinger, Markus
Fransen, Marc
Richards, David M.
Freisinger, Peter
Schrader, Michael
Mitochondrial fission factor (MFF) is a critical regulator of peroxisome maturation
title Mitochondrial fission factor (MFF) is a critical regulator of peroxisome maturation
title_full Mitochondrial fission factor (MFF) is a critical regulator of peroxisome maturation
title_fullStr Mitochondrial fission factor (MFF) is a critical regulator of peroxisome maturation
title_full_unstemmed Mitochondrial fission factor (MFF) is a critical regulator of peroxisome maturation
title_short Mitochondrial fission factor (MFF) is a critical regulator of peroxisome maturation
title_sort mitochondrial fission factor (mff) is a critical regulator of peroxisome maturation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7262603/
https://www.ncbi.nlm.nih.gov/pubmed/32224193
http://dx.doi.org/10.1016/j.bbamcr.2020.118709
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