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Author Spotlight: Imaging ATG9A, a Multi-Spanning Membrane Protein
Published on: June 16, 2023
ATG7(2) Interacts With Metabolic Proteins and Regulates Central Energy Metabolism
Kevin Ostacolo1, Adrián López García de Lomana2, Clémence Larat1
1Department of Anatomy, Biomedical Center, Faculty of Medicine, University of Iceland, Reykjavik, Iceland.
Abstract:
Macroautophagy/autophagy is an essential catabolic process that targets a wide variety of cellular components including proteins, organelles, and pathogens. ATG7, a protein involved in the autophagy process, plays a crucial role in maintaining cellular homeostasis and can contribute to the development of diseases such as cancer. ATG7 initiates autophagy by facilitating the lipidation of the ATG8 proteins in the growing autophagosome membrane. The noncanonical isoform ATG7(2) is unable to perform ATG8 lipidation; however, its cellular regulation and function are unknown. Here, we uncovered a distinct regulation and function of ATG7(2) in contrast with ATG7(1), the canonical isoform. First, affinity-purification mass spectrometry analysis revealed that ATG7(2) establishes direct protein-protein interactions (PPIs) with metabolic proteins, whereas ATG7(1) primarily interacts with autophagy machinery proteins. Furthermore, we identified that ATG7(2) mediates a decrease in metabolic activity, highlighting a novel splice-dependent function of this important autophagy protein. Then, we found a divergent expression pattern of ATG7(1) and ATG7(2) across human tissues. Conclusively, our work uncovers the divergent patterns of expression, protein interactions, and function of ATG7(2) in contrast to ATG7(1). These findings suggest a molecular switch between main catabolic processes through isoform-dependent expression of a key autophagy gene.
Insights
The study reveals that the ATG7(2) protein isoform, unlike ATG7(1), interacts with metabolic proteins and decreases metabolic activity. This highlights a novel, splice-dependent function of ATG7(2) in cellular regulation.
Area of Science:
- Cellular Biology
- Molecular Biology
- Biochemistry
Background:
- Macroautophagy/autophagy is a vital catabolic process for cellular homeostasis.
- ATG7 is crucial for autophagy initiation, facilitating ATG8 lipidation.
- The noncanonical ATG7(2) isoform's function and regulation remain largely unknown.
Purpose of the Study:
- To investigate the distinct regulation and function of the ATG7(2) isoform compared to ATG7(1).
- To elucidate the protein-protein interactions and cellular activities mediated by ATG7(2).
Main Methods:
- Affinity-purification mass spectrometry to identify protein-protein interactions (PPIs).
- Analysis of metabolic activity.
- Examination of ATG7(1) and ATG7(2) expression patterns across human tissues.
Main Results:
- ATG7(2) primarily interacts with metabolic proteins, distinct from ATG7(1)'s interaction with autophagy machinery.
- ATG7(2) mediates a decrease in cellular metabolic activity.
- ATG7(1) and ATG7(2) exhibit divergent expression patterns in human tissues.
Conclusions:
- ATG7(2) possesses a novel, splice-dependent function impacting metabolic activity.
- Isoform-specific interactions and functions of ATG7 suggest a regulatory switch in catabolic processes.
- Findings uncover divergent roles of ATG7 isoforms in cellular regulation and homeostasis.
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