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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.
Abstract:
Human mitoNEET (mNT) is the first identified Fe-S protein of the mammalian outer mitochondrial membrane. Recently, mNT has been implicated in cytosolic Fe-S repair of a key regulator of cellular iron homeostasis. Here, we aimed to decipher the mechanism by which mNT triggers its Fe-S repair capacity. By using tightly controlled reactions combined with complementary spectroscopic approaches, we have determined the differential roles played by both the redox state of the mNT cluster and dioxygen in cluster transfer and protein stability. We unambiguously demonstrated that only the oxidized state of the mNT cluster triggers cluster transfer to a generic acceptor protein and that dioxygen is neither required for the cluster transfer reaction nor does it affect the transfer rate. In the absence of apo-acceptors, a large fraction of the oxidized holo-mNT form is converted back to reduced holo-mNT under low oxygen tension. Reduced holo-mNT, which holds a [2Fe-2S](+)with a global protein fold similar to that of the oxidized form is, by contrast, resistant in losing its cluster or in transferring it. Our findings thus demonstrate that mNT uses an iron-based redox switch mechanism to regulate the transfer of its cluster. The oxidized state is the "active state," which reacts promptly to initiate Fe-S transfer independently of dioxygen, whereas the reduced state is a "dormant form." Finally, we propose that the redox-sensing function of mNT is a key component of the cellular adaptive response to help stress-sensitive Fe-S proteins recover from oxidative injury.
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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