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Reference - PMID:24997422 - The role of frataxin in fission yeast iron metabolism: implications for Friedreich's ataxia.

Reference summary

PubMed ID
PMID:24997422
Title
The role of frataxin in fission yeast iron metabolism: implications for Friedreich's ataxia.
Authors
Wang Y, Wang Y, Marcus S, Busenlehner LS
Citation
Biochim Biophys Acta 2014 Oct;1840(10):3022-33
Publication year
2014
Abstract
The neurodegenerative disease Friedreich's ataxia is the result of frataxin deficiency. Frataxin is a mitochondrial protein involved in iron-sulfur cluster (Fe-S) cofactor biogenesis, but its functional role in this pathway is debated. This is due to the interconnectivity of iron metabolic and oxidative stress response pathways that make distinguishing primary effects of frataxin deficiency challenging. Since Fe-S cluster assembly is conserved, frataxin overexpression phenotypes in a simple eukaryotic organism will provide additional insight into frataxin function. The Schizosaccharomyces pombe frataxin homologue (fxn1) was overexpressed from a plasmid under a thiamine repressible promoter. The S. pombe transformants were characterized at several expression strengths for cellular growth, mitochondrial organization, iron levels, oxidative stress, and activities of Fe-S cluster containing enzymes. Observed phenotypes were dependent on the amount of Fxn1 overexpression. High Fxn1 overexpression severely inhibited S. pombe growth, impaired mitochondrial membrane integrity and cellular respiration, and led to Fxn1 aggregation. Cellular iron accumulation was observed at moderate Fxn1 overexpression but was most pronounced at high levels of Fxn1. All levels of Fxn1 overexpression up-regulated oxidative stress defense and mitochondrial Fe-S cluster containing enzyme activities. Despite the presence of oxidative stress and accumulated iron, activation of Fe-S cluster enzymes was common to all levels of Fxn1 overexpression; therefore, Fxn1 may regulate the efficiency of Fe-S cluster biogenesis in S. pombe. We provide evidence that suggests that dysregulated Fe-S cluster biogenesis is a primary effect of both frataxin overexpression and deficiency as in Friedreich's ataxia.

Annotation

Protein sequence feature

SO:0100011 - cleaved_peptide_region

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Single locus phenotype

FYPO:0000359 - abnormal mitochondrial morphology

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FYPO:0003238 - decreased anaerobic cell population growth

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FYPO:0001407 - decreased cell population growth on glucose carbon source

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FYPO:0002009 - decreased oxygen consumption during vegetative growth

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FYPO:0001422 - decreased protein processing during vegetative growth

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FYPO:0000564 - decreased rate of cellular respiration

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FYPO:0000921 - increased aconitate hydratase activity

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FYPO:0005175 - increased catalase activity

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FYPO:0002006 - increased cellular iron level

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FYPO:0003004 - increased cellular reactive oxygen species level during vegetative growth

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FYPO:0005176 - increased ferric-chelate reductase activity

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FYPO:0000825 - increased RNA level during vegetative growth

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FYPO:0004131 - increased succinate dehydrogenase (ubiquinone) activity

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FYPO:0003386 - increased superoxide dismutase activity

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FYPO:0001164 - normal growth on glucose carbon source

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FYPO:0001317 - normal RNA level during vegetative growth

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FYPO:0001103 - resistance to hydrogen peroxide

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FYPO:0001119 - tapered vegetative cell

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