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Updated: Jun 14, 2025

Integration of Bioinformatics Approaches and Experimental Validations to Understand the Role of Notch Signaling in Ovarian Cancer
Published on: January 12, 2020
Optimal targeted therapy for multiple cancers based on contrastive Notch signaling networks
Tamaki Wakamoto1, Sungrim Seirin-Lee2
1Institute for the Advanced Study of Human Biology (ASHBi), Kyoto University Institute for Advanced Study, Kyoto University, Kyoto, 606-8315, Japan.
Abstract:
Over decades, cancer understanding has advanced significantly at molecular and cellular levels, leading to various therapies based on intra-/inter-cellular networks. Despite this, cancer still remains a leading cause of death globally. The Notch signaling pathway, a crucial intercellular network in many cancers, has been extensively studied and therapies targeting the Notch pathway also have been well-studied based on inhibiting various stages of Notch activation. Nonetheless, the unclear pathophysiological mechanisms of metastasis, responsible for about 90 % of cancer deaths, complicate treatment development. For example, the role of Notch signaling varies between cancers; in non-small cell lung cancer, Notch1 and Notch2 exhibit opposing effects compared to their roles in embryonal brain tumors. This suggests that a single targeted therapy to Notch signaling could produce opposing effects in the metastatic state, necessitating a more careful selection of therapies. To address this, we considered a scenario involving multiple cancers with contrasting Notch signaling pathways. We developed two mathematical models and explored optimal targeted therapies for reducing cancer cells in the metastatic state of two types of cancers with these contrasting pathways. From the in silico tests of existing Notch-targeted therapies and newly suggested therapies in this study, we found that multiple cancers with contrasting Notch networks can be controlled by one common targeted signal network. Furthermore, combination therapies enhancing Notch production may be most effective in early-stage cancer, whereas cleavage therapies may prove more effective in late-stage cancer. We also found that the order of multiple targeted therapies significantly affects treatment effectiveness and should be a key consideration. Our study proposes that optimal treatment should take into account the cancer stage, with careful selection and sequencing of medication therapies.
Insights
Targeting the Notch signaling pathway offers new cancer treatment strategies. Mathematical models reveal that a common targeted signal network can control multiple cancers, with therapy order and cancer stage being crucial for effectiveness.
Area of Science:
- Oncology
- Systems Biology
- Mathematical Modeling
Background:
- Cancer remains a leading global cause of death despite advances in molecular understanding.
- The Notch signaling pathway is a key intercellular network implicated in various cancers.
- Metastasis, responsible for 90% of cancer deaths, presents complex challenges for effective treatment development.
Purpose of the Study:
- To explore optimal targeted therapies for reducing metastatic cancer cells in multiple cancers with contrasting Notch signaling pathways.
- To investigate the potential of a common targeted signal network for controlling diverse cancers.
- To determine the influence of cancer stage and therapy sequencing on treatment efficacy.
Main Methods:
- Development of two mathematical models to simulate cancer dynamics.
- In silico testing of existing and novel Notch-targeted therapies.
- Analysis of treatment effectiveness based on cancer stage and therapy order.
Main Results:
- A single common targeted signal network can effectively control multiple cancers with contrasting Notch networks.
- Combination therapies boosting Notch production are more effective in early-stage cancer.
- Cleavage therapies show greater efficacy in late-stage cancer.
Conclusions:
- Optimal cancer treatment requires careful consideration of cancer stage and the strategic sequencing of therapies.
- Targeted therapies for the Notch pathway can be tailored based on cancer progression.
- Mathematical modeling provides a framework for optimizing complex cancer treatment strategies.
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