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Updated: Jun 4, 2026

Discovery of Driver Genes in Colorectal HT29-derived Cancer Stem-Like Tumorspheres
Published on: July 22, 2020
Unexpected functional similarities between gatekeeper tumour suppressor genes and proto-oncogenes revealed by systems
Yongzhong Zhao1, Richard J Epstein
1Department of Molecular Genetics, Lerner Research Institute, Cleveland Clinic Foundation, Cleveland, OH, USA.
Abstract:
Familial tumor suppressor genes comprise two subgroups: caretaker genes (CTs) that repair DNA, and gatekeeper genes (GKs) that trigger cell death. Since GKs may also induce cell cycle delay and thus enhance cell survival by facilitating DNA repair, we hypothesized that the prosurvival phenotype of GKs could be selected during cancer progression, and we used a multivariable systems biology approach to test this. We performed multidimensional data analysis, non-negative matrix factorization and logistic regression to compare the features of GKs with those of their putative antagonists, the proto-oncogenes (POs), as well as with control groups of CTs and functionally unrelated congenital heart disease genes (HDs). GKs and POs closely resemble each other, but not CTs or HDs, in terms of gene structure (P<0.001), expression level and breadth (P<0.01), DNA methylation signature (P<0.001) and evolutionary rate (P<0.001). The similar selection pressures and epigenetic trajectories of GKs and POs so implied suggest a common functional attribute that is strongly negatively selected-that is, a shared phenotype that enhances cell survival. The counterintuitive finding of similar evolutionary pressures affecting GKs and POs raises an intriguing possibility: namely, that cancer microevolution is accelerated by an epistatic cascade in which upstream suppressor gene defects subvert the normal bifunctionality of wild-type GKs by constitutively shifting the phenotype away from apoptosis towards survival. If correct, this interpretation would explain the hitherto unexplained phenomenon of frequent wild-type GK (for example, p53) overexpression in tumors.
Insights
Gatekeeper genes (GKs) and proto-oncogenes (POs) share prosurvival traits, suggesting cancer evolution favors cell survival. This may explain why wild-type GKs are often overexpressed in tumors.
Area of Science:
- Genetics
- Cancer Biology
- Systems Biology
Background:
- Familial tumor suppressor genes include caretaker genes (CTs) for DNA repair and gatekeeper genes (GKs) that trigger cell death.
- Gatekeeper genes may also promote cell survival by delaying cell cycle and facilitating DNA repair.
Purpose of the Study:
- To investigate the hypothesis that the prosurvival phenotype of gatekeeper genes is selected during cancer progression.
- To compare the features of gatekeeper genes with proto-oncogenes and control gene groups.
Main Methods:
- Multivariable systems biology approach.
- Multidimensional data analysis, non-negative matrix factorization, and logistic regression.
- Comparison of gene structure, expression, DNA methylation, and evolutionary rate.
Main Results:
- Gatekeeper genes (GKs) and proto-oncogenes (POs) exhibit striking similarities in gene structure, expression, DNA methylation, and evolutionary rate.
- These similarities suggest a shared phenotype that enhances cell survival, which is strongly negatively selected.
- Control groups (CTs and HDs) did not show these similarities.
Conclusions:
- The similar evolutionary pressures on GKs and POs imply a common survival-enhancing function.
- Cancer microevolution may be accelerated by defects in suppressor genes that shift wild-type GKs towards a prosurvival phenotype.
- This could explain the frequent overexpression of wild-type GKs, like p53, in tumors.
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