Redox Control of the Human Iron-Sulfur Repair Protein MitoNEET Activity via Its Iron-Sulfur Cluster

Marie-Pierre Golinelli-Cohen1, Ewen Lescop2, Cécile Mons2

  • 1From the Institut de Chimie des Substances Naturelles (ICSN), CNRS UPR 2301, Université Paris-Sud, Université Paris-Saclay, 91190 Gif-sur-Yvette, France, marie-pierre.golinelli@cnrs.fr.

Insights

Human mitoNEET (mNT), an iron-sulfur protein, uses its redox state to control iron-sulfur cluster transfer for cellular repair. The oxidized form is active, while the reduced form is dormant, independent of oxygen.

Area of Science:

  • Biochemistry
  • Cellular Biology
  • Mitochondrial Function

Background:

  • Human mitoNEET (mNT) is the first identified iron-sulfur (Fe-S) protein in the mammalian outer mitochondrial membrane.
  • mNT is involved in cytosolic Fe-S cluster repair, crucial for iron homeostasis regulation.

Purpose of the Study:

  • To elucidate the mechanism by which mNT initiates its Fe-S cluster repair capacity.
  • To determine the roles of the mNT cluster's redox state and dioxygen in cluster transfer and protein stability.

Main Methods:

  • Controlled biochemical reactions.
  • Complementary spectroscopic approaches.

Main Results:

  • The oxidized state of the mNT cluster, not dioxygen, triggers Fe-S cluster transfer to acceptor proteins.
  • Dioxygen does not influence the rate of cluster transfer.
  • Reduced holo-mNT is resistant to cluster loss or transfer, acting as a dormant form.
  • Oxidized holo-mNT converts to reduced holo-mNT under low oxygen tension in the absence of acceptors.

Conclusions:

  • mNT employs an iron-based redox switch mechanism to regulate Fe-S cluster transfer.
  • The oxidized state is the active form for initiating Fe-S transfer, independent of oxygen.
  • The reduced state serves as a dormant form, protecting the cluster.
  • mNT's redox-sensing function is vital for cellular adaptation and recovery from oxidative stress affecting Fe-S proteins.

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