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Author Spotlight: Imaging ATG9A, a Multi-Spanning Membrane Protein
Published on: June 16, 2023
Identification of a lung cancer cell line deficient in atg7-dependent autophagy
Jonathan Mandelbaum1, Neil Rollins, Pooja Shah
1a Oncology Drug Discovery Unit, Millennium Pharmaceuticals, Inc., a wholly owned subsidiary of Takeda Pharmaceutical Company Limited , Cambridge , Massachusetts , USA.
Abstract:
Autophagy is a major cellular process for bulk degradation of proteins and organelles in order to maintain metabolic homeostasis, and it represents an emerging target area for cancer. Initially proposed to be a cancer-restricting process for tumor initiation, recent studies suggest that autophagy can also promote cell survival in established tumors. ATG7 is an essential autophagy gene that encodes the E1 enzyme necessary for the lipidation of the LC3 family of ubiquitin-like proteins and autophagosome formation. In this study we identified a rare case of a cancer cell line, H1650 lung adenocarcinoma, which has lost ATG7 expression due to a focal biallelic deletion within the ATG7 locus. These cells displayed no evidence of ATG7 pathway activity; however, reconstituting the cells with wild-type ATG7 restored both LC3 lipidation and downstream autophagic consumption of autophagy substrates such as the SQSTM1/p62 protein. We characterized several phenotypes reported to be influenced by autophagy, and observed an ATG7-dependent increase in cell growth and clearance of proteasome-inhibitor induced protein aggregates. Cellular changes in mitochondrial metabolism or response to nutrient starvation were unaffected by ATG7 expression. In addition, parental H1650 cells that lacked ATG7 were still able to consume autophagy substrates SQSTM1, NBR1 and TAX1BP1 via a bafilomycin A1-sensitive pathway, suggesting that these proteins were not exclusively degraded by autophagy. Overall, these findings highlight a unique outlier instance of complete loss of ATG7-dependent autophagy in a cancer cell line. The H1650 cell line may be a useful system for future studies to further understand the role of autophagy in tumorigenesis and potential redundant pathways that allow cells to circumvent the loss of ATG7-dependent autophagy in cancer.
Insights
A lung cancer cell line lacking the essential autophagy gene ATG7 was identified. Restoring ATG7 normalized autophagy, impacting cell growth and protein aggregate clearance, revealing potential alternative degradation pathways.
Area of Science:
- Cellular Biology
- Cancer Research
- Molecular Biology
Background:
- Autophagy is crucial for cellular homeostasis and is increasingly recognized as a target in cancer therapy.
- While initially seen as tumor-suppressive, autophagy can also support cancer cell survival.
- ATG7 is a key gene for autophagosome formation, essential for the autophagy pathway.
Purpose of the Study:
- To investigate a rare cancer cell line, H1650 lung adenocarcinoma, with a complete loss of ATG7 expression.
- To characterize the functional consequences of ATG7 loss on autophagy and related cellular processes.
- To explore potential compensatory mechanisms for ATG7-dependent autophagy in cancer cells.
Main Methods:
- Genetic analysis to identify the cause of ATG7 loss (focal biallelic deletion).
- Reconstitution of ATG7 expression in H1650 cells.
- Assays to measure LC3 lipidation, autophagic substrate degradation (SQSTM1/p62), cell growth, and response to proteasome inhibitors and nutrient starvation.
Main Results:
- H1650 cells showed no ATG7 pathway activity, confirmed by lack of LC3 lipidation.
- Restoring ATG7 expression rescued LC3 lipidation and degradation of autophagy substrates.
- ATG7 loss impacted cell growth and protein aggregate clearance, but not mitochondrial metabolism or starvation response. Parental cells degraded substrates via an ATG7-independent pathway.
Conclusions:
- This study presents a unique cancer cell line (H1650) with a complete absence of ATG7-dependent autophagy.
- The findings highlight the critical role of ATG7 in specific autophagy-dependent processes like cell growth and aggregate clearance.
- The H1650 model offers a valuable system to study autophagy's role in cancer and identify alternative degradation pathways that bypass ATG7 loss.

