Title :
Employing in-vivo molecular imaging in simulating and validating tumor growth
Author :
Tzamali, Eleftheria ; Favicchio, Rosy ; Roniotis, Alexandros ; Tzedakis, Giorgos ; Grekas, Giorgos ; Ripoll, J. ; Marias, Kostas ; Zacharakis, Giannis ; Sakkalis, Vangelis
Author_Institution :
Inst. of Comput. Sci., Found. for Res. & Technol. - Hellas, Heraklion, Greece
Abstract :
During the last decades, especially via the EU initiative related to the Virtual Physiological Human, significant progress has been made in advancing “in-silico” computational models to produce accurate and reliable tumor growth simulations. However, currently most attempts to validate the outcome of the models are either done in-vitro or ex-vivo after tumor resection. In this work, we incorporate information provided by fluorescence molecular tomography performed in-vivo into a mathematical model that describes tumor growth. The outcome is validated against tumor evolution snapshots captured in-vivo using advanced molecular probes in laboratory animals. The simulations are inline with the actual in-vivo growth and although alternative modeling parameters can lead to similar results challenging for additional microscopic information and imaging modalities to drive the in-silico models, they all show that hypoxia plays a dominant role in the evolution of the tumor under study.
Keywords :
biomedical optical imaging; fluorescence; molecular biophysics; optical tomography; physiological models; tumours; fluorescence molecular tomography; hypoxia; in-silico computational model; in-vivo molecular imaging; mathematical model; tumor evolution; tumor growth simulation; tumor growth validation; tumor resection; virtual physiological human; Biological system modeling; Cancer; Fluorescence; Mathematical model; Tomography; Tumors;
Conference_Titel :
Engineering in Medicine and Biology Society (EMBC), 2013 35th Annual International Conference of the IEEE
Conference_Location :
Osaka
DOI :
10.1109/EMBC.2013.6610803