Modeling the Dynamics of Let-7-Coupled Gene Regulatory Networks Linking Cell Proliferation to Malignant
Claude Gérard1, Frédéric Lemaigre1, Didier Gonze2
1de Duve Institute, Université catholique de Louvain, Brussels, Belgium.
Abstract:
Let-7 microRNA controls the expression of proteins that belong to two distinct gene regulatory networks, namely, a cyclin-dependent kinase (Cdk) network driving the cell cycle and a cell transformation network that can undergo an epigenetic switch between a non-transformed and a malignant transformed cell state. Using mathematical modeling and transcriptomic data analysis, we here investigate how Let-7 controls the Cdk-dependent cell cycle network, and how it couples the latter with the transformation network. We also assess the consequence of this coupling on cancer progression. Our analysis shows that the switch from a quiescent to a proliferative state depends on the relative levels of Let-7 and several cell cycle activators. Numerical simulations further indicate that the Let-7-coupled cell cycle and transformation networks mutually control each other, and our model identifies key players for this mutual control. Transcriptomic data analysis from The Cancer Genome Atlas (TCGA) suggests that the two networks are activated in cancer, in particular in gastrointestinal cancers, and that the activation levels vary significantly among patients affected by a same cancer type. Our mathematical model, when applied to a heterogeneous cell population, suggests that heterogeneity among tumors may in part result from stochastic switches between a non-transformed cell state with low proliferative capability and a transformed cell state with high proliferative property. The model further predicts that Let-7 may reduce tumor heterogeneity by decreasing the occurrence of stochastic switches toward a transformed, proliferative cell state. In conclusion, we identified the key components responsible for the qualitative dynamics of two networks interconnected by Let-7. The two networks are heterogeneously activated in several cancers, thereby stressing the need to consider patient's specific characteristics to optimize therapeutic strategies.
Insights
Let-7 microRNA regulates cell cycle and transformation networks. This microRNA may reduce tumor heterogeneity by controlling switches between non-transformed and malignant states, impacting cancer progression.
Area of Science:
- Molecular Biology
- Systems Biology
- Cancer Research
Background:
- Let-7 microRNA is a key regulator of gene expression.
- Two critical networks, the cell cycle and cell transformation networks, influence cell state.
- The interplay between these networks and Let-7's role in cancer is not fully understood.
Purpose of the Study:
- To investigate how Let-7 microRNA controls the cyclin-dependent kinase (Cdk)-dependent cell cycle network.
- To elucidate the coupling between the cell cycle and cell transformation networks by Let-7.
- To assess the impact of this coupling on cancer progression and tumor heterogeneity.
Main Methods:
- Mathematical modeling of gene regulatory networks.
- Transcriptomic data analysis using The Cancer Genome Atlas (TCGA).
- Numerical simulations of cellular state transitions.
Main Results:
- The switch between quiescent and proliferative states is dependent on Let-7 levels and cell cycle activators.
- Let-7-coupled cell cycle and transformation networks exhibit mutual control, with key players identified.
- Transcriptomic data reveals heterogeneous activation of these networks in cancers, particularly gastrointestinal cancers.
Conclusions:
- Let-7 plays a crucial role in interconnecting cell cycle and transformation networks.
- Tumor heterogeneity may arise from stochastic switches between non-transformed and transformed cell states.
- Let-7 may mitigate tumor heterogeneity, suggesting personalized therapeutic strategies are needed.
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