Modeling the chemotherapy-induced selection of drug-resistant traits during tumor growth

被引:28
作者
Cho, H. [1 ]
Levy, D. [1 ,2 ]
机构
[1] Univ Maryland, Dept Math, College Pk, MD 20742 USA
[2] Univ Maryland, Ctr Sci Computat & Math Modeling CSCAMM, College Pk, MD 20742 USA
基金
美国国家科学基金会;
关键词
Tumor growth; Drug resistance; NONLINEAR SIMULATION; MATHEMATICAL-MODEL; SOLID TUMORS; PHENOTYPIC HETEROGENEITY; MULTIDRUG-RESISTANCE; ANTICANCER THERAPY; CANCER-CELLS; EVOLUTION; MICROENVIRONMENT; DYNAMICS;
D O I
10.1016/j.jtbi.2017.10.005
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
The emergence of drug-resistance is a major challenge in chemotherapy. In this paper we develop a mathematical model to study the dynamics of drug-resistance in solid tumors. Our model follows the dynamics of the tumor, assuming that the cancer cell population depends on a phenotype variable that corresponds to the resistance level to a cytotoxic drug. The equation for the tumor density is written as a reaction-diffusion equation with a pressure term that depends on the local cell density. The model incorporates the dynamics of nutrients and two different types of drugs: a cytotoxic drug, which directly impacts the death rate of the cancer cells, and a cytostatic drug that reduces the proliferation rate. This model successfully integrates the phenotype structured drug-resistance approach with an asymmetric tumor growth model in space. Through analysis and simulations we study the impact of spatial and phenotypic heterogeneity on the tumor growth under chemotherapy. We demonstrate that heterogeneous cancer cells may emerge due to the selection dynamics of the environment. Our model predicts that under certain conditions, multiple resistant traits emerge at different locations within the tumor. We show that a higher dosage of the cytotoxic drug may delay a relapse, yet, when this happens, a more resistant trait emerges. Moreover, we estimate the expansion rate of the tumor boundary as well as the time of relapse, in terms of the resistance trait, the level of the nutrient, and the drug concentration. Finally, we propose an efficient drug schedule aiming at minimizing the growth rate of the most resistant trait. By combining the cytotoxic and cytostatic drugs, we demonstrate that the resistant cells can be eliminated. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:120 / 134
页数:15
相关论文
共 79 条
[1]   Dynamic imaging of cancer growth and invasion: a modified skin-fold chamber model [J].
Alexander, Stephanie ;
Koehl, Gudrun E. ;
Hirschberg, Markus ;
Geissler, Edward K. ;
Friedl, Peter .
HISTOCHEMISTRY AND CELL BIOLOGY, 2008, 130 (06) :1147-1154
[2]   viSNE enables visualization of high dimensional single-cell data and reveals phenotypic heterogeneity of leukemia [J].
Amir, El-ad David ;
Davis, Kara L. ;
Tadmor, Michelle D. ;
Simonds, Erin F. ;
Levine, Jacob H. ;
Bendall, Sean C. ;
Shenfeld, Daniel K. ;
Krishnaswamy, Smita ;
Nolan, Garry P. ;
Pe'er, Dana .
NATURE BIOTECHNOLOGY, 2013, 31 (06) :545-+
[3]   Tumor morphology and phenotypic evolution driven by selective pressure from the microenvironment [J].
Anderson, Alexander R. A. ;
Weaver, Alissa M. ;
Cummings, Peter T. ;
Quaranta, Vito .
CELL, 2006, 127 (05) :905-915
[4]   Continuous and discrete mathematical models of tumor-induced angiogenesis [J].
Anderson, ARA ;
Chaplain, MAJ .
BULLETIN OF MATHEMATICAL BIOLOGY, 1998, 60 (05) :857-899
[5]   A hybrid mathematical model of solid tumour invasion: the importance of cell adhesion [J].
Anderson, ARA .
MATHEMATICAL MEDICINE AND BIOLOGY-A JOURNAL OF THE IMA, 2005, 22 (02) :163-186
[6]  
[Anonymous], MED ONCOLOGY BASIC P
[7]  
[Anonymous], 2006, CANC DRUG RESISTANCE
[8]  
Bellomo N., 2003, J. Theor. Med, V5, P111, DOI 10.1080/1027336042000288633
[9]   Single-Cell Mass Cytometry of Differential Immune and Drug Responses Across a Human Hematopoietic Continuum [J].
Bendall, Sean C. ;
Simonds, Erin F. ;
Qiu, Peng ;
Amir, El-ad D. ;
Krutzik, Peter O. ;
Finck, Rachel ;
Bruggner, Robert V. ;
Melamed, Rachel ;
Trejo, Angelica ;
Ornatsky, Olga I. ;
Balderas, Robert S. ;
Plevritis, Sylvia K. ;
Sachs, Karen ;
Pe'er, Dana ;
Tanner, Scott D. ;
Nolan, Garry P. .
SCIENCE, 2011, 332 (6030) :687-696
[10]   A MATHEMATICAL-MODEL OF THE DEVELOPMENT OF DRUG-RESISTANCE TO CANCER-CHEMOTHERAPY [J].
BIRKHEAD, BG ;
RANKIN, EM ;
GALLIVAN, S ;
DONES, L ;
RUBENS, RD .
EUROPEAN JOURNAL OF CANCER & CLINICAL ONCOLOGY, 1987, 23 (09) :1421-1427