skip to main content
OSTI.GOV title logo U.S. Department of Energy
Office of Scientific and Technical Information

Title: Drosophila Frataxin: An Iron Chaperone During Cellular Fe-S Cluster Bioassembly

Journal Article · · Biochem. 47:6917,2008
OSTI ID:953063

Frataxin, a mitochondrial protein that is directly involved in regulating cellular iron homeostasis, has been suggested to serve as an iron chaperone during cellular Fe-S cluster biosynthesis. In humans, decreased amounts or impaired function of frataxin causes the autosomal recessive neurodegenerative disorder Friedreich's ataxia. Cellular production of Fe-S clusters is accomplished by the Fe cofactor assembly platform enzymes Isu (eukaryotes) and IscU (prokaryotes). In this report, we have characterized the overall stability and iron binding properties of the Drosophila frataxin homologue (Dfh). Dfh is highly folded with secondary structural elements consistent with the structurally characterized frataxin orthologs. While the melting temperature (T{sub M} {approx} 59 C) and chemical stability ([urea]{sub 50} {approx} 2.4 M) of Drosophila frataxin, measured using circular dichroism (CD) and fluorescence spectroscopy, closely match values determined for the human ortholog, pure Dfh is more stable against autodegradation than both the human and yeast proteins. The ferrous iron binding affinity (K{sub d} {approx} 6.0 {micro}M) and optimal metal to protein stoichiometry (1:1) for Dfh have been measured using isothermal titration calorimetry (ITC). Under anaerobic conditions with salt present, holo-Dfh is a stable iron-loaded protein monomer. Frataxin prevents reactive oxygen species-induced oxidative damage to DNA when presented with both Fe(II) and H{sub 2}O{sub 2}. Ferrous iron bound to Dfh is high-spin and held in a partially symmetric Fe-(O/N){sub 6} coordination environment, as determined by X-ray absorption spectroscopy (XAS). Extended X-ray absorption fine structure (EXAFS) simulations indicate the average Fe-O/N bond length in Dfh is 2.13 {angstrom}, consistent with a ligand geometry constructed by water and carboxylate oxygens most likely supplied in part by surface-exposed conserved acidic residues located on helix 1 and strand 1 in the structurally characterized frataxin orthologs. The iron-dependent binding affinity (K{sub d} {approx} 0.21 {micro}M) and optimal holo-Dfh to Isu monomer stoichiometry (1:1) have also been determined using ITC. Finally, frataxin mediates the delivery of Fe(II) to Isu, promoting Fe-S cluster assembly in vitro. The Dfh-assisted assembly of Fe-S clusters occurs with an observed kinetic rate constant (k{sub obs}) of 0.096 min{sup -1}.

Research Organization:
SLAC National Accelerator Lab., Menlo Park, CA (United States)
Sponsoring Organization:
USDOE
DOE Contract Number:
AC02-76SF00515
OSTI ID:
953063
Report Number(s):
SLAC-REPRINT-2009-221; TRN: US200914%%185
Journal Information:
Biochem. 47:6917,2008, Vol. 47, Issue 26
Country of Publication:
United States
Language:
English

Similar Records

Drosophila Frataxin: an Iron Chaperone During Cellular [2Fe-2S] Cluster Bioassembly
Journal Article · Tue Jan 01 00:00:00 EST 2008 · Biochemistry · OSTI ID:953063

Monomeric Yeast Frataxin is an Iron Binding Protein†
Journal Article · Thu Jan 01 00:00:00 EST 2009 · Biochemistry · OSTI ID:953063

Monomeric Yeast Frataxin is an Iron-Binding Protein
Journal Article · Sun Jan 01 00:00:00 EST 2006 · Biochemistry · OSTI ID:953063