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Updated: Apr 20, 2026

Laser Micro-Irradiation to Study DNA Recruitment During S Phase
Published on: April 16, 2021
Myc and Ras oncogenes engage different energy metabolism programs and evoke distinct patterns of oxidative and DNA
Apolinar Maya-Mendoza1, Jitka Ostrakova1, Martin Kosar2
1Danish Cancer Society Research Center, DK-2100 Copenhagen, Denmark.
Abstract:
Both Myc and Ras oncogenes impact cellular metabolism, deregulate redox homeostasis and trigger DNA replication stress (RS) that compromises genomic integrity. However, how are such oncogene-induced effects evoked and temporally related, to what extent are these kinetic parameters shared by Myc and Ras, and how are these cellular changes linked with oncogene-induced cellular senescence in different cell context(s) remain poorly understood. Here, we addressed the above-mentioned open questions by multifaceted comparative analyses of human cellular models with inducible expression of c-Myc and H-RasV12 (Ras), two commonly deregulated oncoproteins operating in a functionally connected signaling network. Our study of DNA replication parameters using the DNA fiber approach and time-course assessment of perturbations in glycolytic flux, oxygen consumption and production of reactive oxygen species (ROS) revealed the following results. First, overabundance of nuclear Myc triggered RS promptly, already after one day of Myc induction, causing slow replication fork progression and fork asymmetry, even before any metabolic changes occurred. In contrast, Ras overexpression initially induced a burst of cell proliferation and increased the speed of replication fork progression. However, after several days of induction Ras caused bioenergetic metabolic changes that correlated with slower DNA replication fork progression and the ensuing cell cycle arrest, gradually leading to senescence. Second, the observed oncogene-induced RS and metabolic alterations were cell-type/context dependent, as shown by comparative analyses of normal human BJ fibroblasts versus U2-OS sarcoma cells. Third, the energy metabolic reprogramming triggered by Ras was more robust compared to impact of Myc. Fourth, the detected oncogene-induced oxidative stress was due to ROS (superoxide) of non-mitochondrial origin and mitochondrial OXPHOS was reduced (Crabtree effect). Overall, our study provides novel insights into oncogene-evoked metabolic reprogramming, replication and oxidative stress, with implications for mechanisms of tumorigenesis and potential targeting of oncogene addiction.
Insights
Oncogenes Myc and Ras induce DNA replication stress and metabolic changes, but Myc acts faster, while Ras causes more robust metabolic shifts leading to senescence. These effects vary by cell type.
Area of Science:
- Molecular Biology
- Cell Biology
- Oncology
Background:
- Myc and Ras oncogenes disrupt cellular metabolism, redox balance, and DNA replication stress (RS), impacting genomic integrity.
- The temporal relationship, shared kinetics, and link to senescence of these oncogene-induced effects remain unclear.
- Understanding these processes is crucial for cancer research and therapeutic targeting.
Purpose of the Study:
- To comparatively analyze the temporal effects of Myc and Ras oncogenes on DNA replication, metabolism, and oxidative stress.
- To investigate the cell-type dependency of these oncogene-induced alterations.
- To elucidate the mechanisms linking oncogene activity to cellular senescence.
Main Methods:
- Inducible expression of c-Myc and H-RasV12 in human cell models (BJ fibroblasts, U2-OS sarcoma cells).
- DNA fiber analysis to assess replication fork dynamics.
- Time-course measurements of glycolytic flux, oxygen consumption, and reactive oxygen species (ROS) production.
Main Results:
- Myc rapidly induced RS with slowed, asymmetric replication forks before metabolic changes; Ras initially accelerated replication but later caused metabolic shifts, slower forks, and senescence.
- Oncogene-induced RS and metabolic alterations were cell-type dependent.
- Ras induced more robust metabolic reprogramming than Myc.
- Oxidative stress stemmed from non-mitochondrial ROS; mitochondrial oxidative phosphorylation (OXPHOS) was reduced (Crabtree effect).
Conclusions:
- Myc and Ras trigger distinct temporal patterns of replication stress and metabolic reprogramming.
- Cellular context significantly influences oncogene-induced phenotypes.
- Findings offer insights into oncogene addiction mechanisms and potential therapeutic strategies.
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