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Author Spotlight: Oxygen-Independent Assays to Measure Mitochondrial Function in Mammals
Published on: May 19, 2023
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.
Abstract:
Of all the causes of metabolic and neurological disorders, oxidative stress distinguishes itself by its sweeping effect on the dynamic cellular redox homeostasis and, in its wake, exposing the vulnerabilities of the protein machinery of the cell. High levels of Reactive Oxygen Species (ROS) that mitochondria produce during ATP synthesis can damage mtDNA, lipids, and essential mitochondrial proteins. ROS majorly oxidizes cysteine and methionine amino acids in peptides, which can lead to protein unfolding or misfolding of proteins, which ultimately can have a toll on their function. As mitochondrial biogenesis relies on the continuous import of nuclear-encoded proteins into mitochondria mediated by mitochondrial protein import complexes, oxidative stress triggered by mitochondria can rapidly and detrimentally affect mitochondrial biogenesis and homeostasis. Functional Mge1 is a homodimer and acts as a cochaperone and a nucleotide exchange factor of mitochondrial heat shock protein 70 (mHsp70), crucial for mitochondrial protein import. Oxidative stress like ROS, oxidizes Met 155 in Mge1, compromising its ability to dimerize and interact with mHsp70. The cell employs Methionine sulphoxide reductase 2 (Mxr2), a member of the methionine sulphoxide reductase family, to reduce oxidized Met 155 and thereby restore the essential function of Mge1. Oxidation of methionine as a regulated post-translational modification has been gaining traction. Future high throughput studies that can scan the entire mitochondrial proteome to interrogate methionine oxidation and reversal may increase the repertoire of mitochondrial proteins undergoing regulated oxidation and reduction. In this chapter, we describe the methods followed in our laboratory to study the oxidation of Mge1 and its reduction by Mxr2 in vitro.
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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