bioRxiv · 10.1101/2021.06.14.448268
A pathogenic role for histone H3 copper reductase activity in a yeast model of Friedreich's Ataxia
Abstract
Disruptions to iron-sulfur (Fe-S) clusters, essential cofactors for a broad range of proteins, cause widespread cellular defects resulting in human disease. An underappreciated source of damage to Fe-S clusters are cuprous (Cu1+) ions. Since histone H3 enzymatically produces Cu1+ to support copper-dependent functions, we asked whether this activity could become detrimental to Fe-S clusters. Here, we report that histone H3-mediated Cu1+ toxicity is a major determinant of cellular Fe-S cluster quotient. Inadequate Fe-S cluster supply, either due to diminished assembly as occurs in Friedreichs Ataxia or defective distribution, causes severe metabolic and growth defects in S. cerevisiae. Decreasing Cu1+ abundance, through attenuation of histone cupric reductase activity or depletion of total cellular copper, restored Fe-S cluster-dependent metabolism and growth. Our findings reveal a novel interplay between chromatin and mitochondria in Fe-S cluster homeostasis, and a potential pathogenic role for histone enzyme activity and Cu1+ in diseases with Fe-S cluster dysfunction. TeaserReduction of Cu1+ production by histone H3 restores cellular deficiencies caused by insufficient supply of iron-sulfur clusters.
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Campos, O. A., Attar, N., Mallipeddi, N. V., Cheng, C., Vogelauer, M., Schmollinger, S., Merchant, S. S., Kurdistani, S. K.. 2021-06-14. A pathogenic role for histone H3 copper reductase activity in a yeast model of Friedreich's Ataxia. https://doi.org/10.1101/2021.06.14.448268
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