Analysis of mitochondrial biogenesis regulation by oxidative stress

Dheeraj Pathak1, Thanuja Krishnamoorthy2, Naresh Babu V Sepuri1

  • 1Department of Biochemistry, School of Life Sciences, University of Hyderabad, Hyderabad, TS, India.

Methods in Enzymology
|November 2, 2024
PubMed

Insights

Oxidative stress damages mitochondrial proteins, including Mge1, by oxidizing methionine. Methionine sulphoxide reductase 2 (Mxr2) reverses this damage, restoring Mge1 function and mitochondrial homeostasis.

Area of Science:

  • Mitochondrial biology
  • Cellular redox homeostasis
  • Protein biochemistry

Background:

  • Oxidative stress, driven by mitochondrial Reactive Oxygen Species (ROS), disrupts cellular redox balance and damages proteins.
  • Mitochondrial protein import is essential for biogenesis and homeostasis, and is vulnerable to oxidative damage.
  • Mge1, a cochaperone for mHsp70, is critical for mitochondrial protein import but susceptible to ROS-induced oxidation.

Purpose of the Study:

  • To investigate the oxidative modification of the mitochondrial protein Mge1 by ROS.
  • To characterize the role of Methionine sulphoxide reductase 2 (Mxr2) in reversing Mge1 oxidation.
  • To establish in vitro methods for studying Mge1 oxidation and Mxr2-mediated reduction.

Main Methods:

  • Studying the oxidation of Mge1 at Methionine 155 (Met 155) residue.
  • Assessing the impact of Met 155 oxidation on Mge1 dimerization and interaction with mHsp70.
  • Utilizing in vitro assays to examine the reduction of oxidized Mge1 by Mxr2.

Main Results:

  • Oxidative stress oxidizes Met 155 in Mge1, impairing its dimerization and function.
  • Mxr2 effectively reduces oxidized Met 155, restoring Mge1's ability to dimerize and interact with mHsp70.
  • These findings highlight a specific mechanism for maintaining mitochondrial protein function under oxidative stress.

Conclusions:

  • Oxidation of Mge1 is a critical post-translational modification impacting mitochondrial protein import.
  • Mxr2 plays a vital role in protecting mitochondrial function by reversing Mge1 oxidation.
  • Understanding these redox regulatory mechanisms is crucial for addressing metabolic and neurological disorders.

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