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In Vitro and In Vivo Detection of Mitophagy in Human Cells, C. Elegans, and Mice
Published on: November 22, 2017
Mitochondrial DNA deletions and chloramphenicol treatment stimulate the autophagic transcript ATG12
Alessandro Prigione1, Gino Cortopassi
1Department of Neuroscience and Biomedical Technologies, University of Milan-Bicocca, Monza, Italy.
Abstract:
Deletion mutations of mitochondrial DNA (mtDNA) accumulate somatically on a cell-by-cell basis with age, resulting in decreased cell function in muscle and substantia nigra. In osteosarcoma cells deletions incapacitate mitochondria and induce the autophagic transcript ATG12, which is involved in an early step of the mammalian autophagy pathway. We discuss here which consequences of mtDNA deletions could induce ATG12, and provide two new pieces of data. Our previous studies demonstrated that mtDNA deletions decreased mitochondrial ATP production and proteasomal function, induced the AMPK transcript (likely as a consequence of bioenergetic depletion), and decreased the intracellular concentration of 20 amino acids (possibly as a consequence of decreased proteasomal activity). Deletions eliminate essential tRNAs for mitochondrial protein synthesis, as well as essential components of mitochondrial multisubunit enzymes; therefore, the increased level of ATG12 could result from decreased bioenergetic function, increased oxidative damage, or decreased mitochondrial protein synthesis. However, the bioenergetic inhibitor rotenone does not induce ATG12. We show here that chloramphenicol, which inhibits mitochondrial protein synthesis, induces ATG12, and that mtDNA deletions result in an increased burden of oxidatively damaged protein. Thus, mtDNA deletions could induce ATG12 through a mechanism such as the following: deletions > mitochondrial protein synthesis inhibition or ROS > proteasome inhibition > amino acid depletion > ATG12.
Insights
Mitochondrial DNA deletions in cells trigger the autophagy gene ATG12. This occurs due to inhibited mitochondrial protein synthesis and increased oxidative damage, impacting cell function.
Area of Science:
- Cellular and Molecular Biology
- Genetics and Genomics
- Aging Research
Background:
- Mitochondrial DNA (mtDNA) deletions accumulate with age, impairing cell function in tissues like muscle and substantia nigra.
- In osteosarcoma cells, mtDNA deletions lead to mitochondrial dysfunction and induce the autophagy-related gene ATG12.
Purpose of the Study:
- To investigate the mechanisms by which mtDNA deletions induce the autophagic transcript ATG12.
- To elucidate the specific consequences of mtDNA deletions that trigger ATG12 expression.
Main Methods:
- Inhibition of mitochondrial protein synthesis using chloramphenicol.
- Assessment of oxidatively damaged proteins in cells with mtDNA deletions.
- Comparison of ATG12 induction by bioenergetic inhibitors versus protein synthesis inhibitors.
Main Results:
- Mitochondrial protein synthesis inhibition, but not bioenergetic inhibition (rotenone), successfully induced ATG12.
- mtDNA deletions were shown to increase the burden of oxidatively damaged proteins within cells.
- Previous findings indicated mtDNA deletions decrease ATP production, proteasomal function, and amino acid levels.
Conclusions:
- mtDNA deletions likely induce ATG12 via inhibition of mitochondrial protein synthesis and/or increased reactive oxygen species (ROS).
- This leads to proteasome inhibition, amino acid depletion, and subsequent ATG12 upregulation, contributing to cellular dysfunction.
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