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Published on: June 16, 2023
Sos1 disruption impairs cellular proliferation and viability through an increase in mitochondrial oxidative stress in
P Liceras-Boillos1, R García-Navas1, A Ginel-Picardo1
1Centro de Investigación del Cáncer-Instituto de Biología Molecular y Celular del Cáncer (CSIC- Universidad de Salamanca), Salamanca, Spain.
Abstract:
Using a 4-hydroxytamoxifen (4OHT)-inducible, conditional Sos1-null mutation, we analyzed wild-type (WT), single Sos1-KO, Sos2-KO and double Sos1/2 KO primary mouse embryonic fibroblasts (MEF) with an aim at evaluating the functional specificity or redundancy of the Sos1 and Sos2 alleles at the cellular level. The 4OHT-induced Sos1-KO and Sos1/2-DKO MEFs exhibited distinct flat morphology, enlarged cell perimeter and altered cytoskeletal organization that were not observed in the WT and Sos2-KO counterparts. The Sos1-KO and Sos1/2-DKO MEFs also displayed significant accumulation, in comparison with WT and Sos2-KO MEFs, of cytoplasmic vesicular bodies identified as autophagosomes containing degraded mitochondria by means of electron microscopy and specific markers. Cellular proliferation and migration were impaired in Sos1-KO and Sos1/2-DKO MEFs in comparison with WT and Sos2-KO MEFs, whereas cell adhesion was only impaired upon depletion of both Sos isoforms. RasGTP formation was practically absent in Sos1/2-DKO MEFs as compared with the other genotypes and extracellular signal-regulated kinase phosphorylation showed only significant reduction after combined Sos1/2 depletion. Consistent with a mitophagic phenotype, in vivo labeling with specific fluorophores uncovered increased levels of oxidative stress (elevated intracellular reactive oxygen species and mitochondrial superoxide and loss of mitochondrial membrane potential) in the Sos1-KO and the Sos1/2-DKO cells as compared with Sos2-KO and WT MEFs. Interestingly, treatment of the MEF cultures with antioxidants corrected the altered phenotypes of Sos1-KO and Sos1/2-DKO MEFs by restoring their altered perimeter size and proliferative rate to levels similar to those of WT and Sos2-KO MEFs. Our data uncover a direct mechanistic link between Sos1 and control of intracellular oxidative stress, and demonstrate functional prevalence of Sos1 over Sos2 with regards to cellular proliferation and viability.
Insights
The study reveals that Sos1 protein is crucial for cellular health, controlling oxidative stress and cell viability. Depleting Sos1, but not Sos2, leads to impaired cell function and increased oxidative stress, highlighting Sos1
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- The Son of Sevenless (Sos) protein family, including Sos1 and Sos2, are guanine nucleotide exchange factors (GEFs) critical for Ras signaling.
- Understanding the specific roles and potential redundancy of Sos1 and Sos2 is essential for comprehending cellular regulation.
Purpose of the Study:
- To investigate the functional specificity and redundancy between Sos1 and Sos2 alleles at the cellular level.
- To elucidate the cellular consequences of conditional Sos1 and Sos1/2 double knockout.
Main Methods:
- Conditional knockout of Sos1 and Sos2 in mouse embryonic fibroblasts (MEFs) using 4-hydroxytamoxifen (4OHT) induction.
- Analysis of cell morphology, cytoskeletal organization, proliferation, migration, adhesion, RasGTP formation, and ERK phosphorylation.
- Assessment of autophagosome formation, mitochondrial degradation (mitophagy), and oxidative stress markers.
Main Results:
- Sos1 depletion (single or double knockout with Sos2) induced distinct cellular phenotypes, including altered morphology, impaired proliferation, and migration.
- Sos1-deficient cells exhibited autophagosome accumulation with degraded mitochondria and increased oxidative stress.
- RasGTP formation and ERK phosphorylation were significantly reduced only upon combined Sos1 and Sos2 depletion.
- Antioxidant treatment rescued the altered phenotypes in Sos1-deficient cells.
Conclusions:
- Sos1 plays a predominant role over Sos2 in maintaining cellular proliferation and viability.
- A direct mechanistic link exists between Sos1 and the control of intracellular oxidative stress.
- Sos1 is essential for regulating mitochondrial quality control and preventing oxidative damage.
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