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Published on: February 18, 2017
A hybrid computational model for the effects of maspin on cancer cell dynamics
M A Al-Mamun1, L J Brown2, M A Hossain1
1Computational Intelligence Group, Faculty of Engineering and Environment, University of Northumbria at Newcastle, UK.
Abstract:
Cancer metastasis is a complex multistep process which allows cancer cells to establish new tumours in distant organs. The process of metastasis involves cell migration and invasion; it is what makes cancer a fatal disease. The efficiency of most cancer treatments depends on metastasis suppression. Maspin is a type II tumour metastasis suppressor which has multiple cellular effects. It has been described as a key regulatory protein in both the intracellular and extracellular environments. Maspin has been shown to reduce cell migration, invasion, proliferation and angiogenesis, and increase apoptosis and cell-cell adhesion in in vitro and in vivo experiments. The clinical data regarding the predictive effects of maspin expression are variable. To date, the whole cellular mechanisms that maspin uses to influence tumour cell behaviours have not been clearly defined. The diversity of the effects of maspin motivated us to develop an intelligent model to investigate its effects on cellular proliferation and migration. This paper reports a hybrid model of solid tumour growth in order to investigate the impact of maspin on the growth and evolutionary dynamics of the cancer cell. A feed-forward neural network was used to model the behaviours (proliferation, quiescence, apoptosis and/or movement) of each cell, which has been suggested as a suitable model of cell signalling pathways. Results show that maspin reduces migration by 10-40%, confirmed by published in vitro data. The model also shows a reduction in cell proliferation by 20-30% in the presence of maspin. So far, this is the first attempt to model the effect of maspin in a computational model to verify in vitro data. This will provide new insights into the tumour suppressive properties of maspin and inform the development of novel cancer therapies.
Insights
Maspin, a tumor suppressor, reduces cancer cell migration by 10-40% and proliferation by 20-30%. This computational model validates maspin's anti-metastasis effects, aiding new cancer therapy development.
Area of Science:
- Oncology
- Computational Biology
- Biophysics
Background:
- Cancer metastasis is a complex process involving cell migration and invasion, driving cancer mortality.
- Maspin is a type II tumor metastasis suppressor protein with diverse intracellular and extracellular regulatory functions.
- Understanding maspin's precise mechanisms in influencing tumor cell behavior is crucial for effective cancer treatment.
Purpose of the Study:
- To develop an intelligent computational model to investigate the impact of maspin on cancer cell proliferation and migration.
- To computationally verify in vitro data on maspin's tumor-suppressive properties.
- To gain new insights into maspin's mechanisms for informing novel cancer therapies.
Main Methods:
- A hybrid model of solid tumor growth was employed.
- A feed-forward neural network was utilized to simulate individual cell behaviors (proliferation, quiescence, apoptosis, movement).
- The model investigated the effects of maspin on cancer cell dynamics.
Main Results:
- The computational model demonstrated that maspin reduces cancer cell migration by 10-40%.
- Maspin was shown to decrease cancer cell proliferation by 20-30%.
- Model findings align with and confirm previously published in vitro experimental data.
Conclusions:
- This study presents the first computational model to verify in vitro data on maspin's effects.
- The findings provide significant insights into the tumor-suppressive properties of maspin.
- The results support the potential of maspin as a target for developing novel cancer therapies.
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