DocumentCode :
2294960
Title :
Modeling and control for in vitro combination therapy using ONYX-015 replicating adenovirus
Author :
Zurakowski, Ryan ; Wodarz, Dominik
Author_Institution :
Dept. of Ecology & Evolutionary Biol., California Univ., Irvine, CA
fYear :
2006
fDate :
14-16 June 2006
Abstract :
Replicating genetically modified adenoviruses have shown promise as a new treatment approach against cancer. Recombinant adenoviruses replicate only in cancer cells which contain certain mutations, such as the loss of functional p53, as is the case in the virus ONYX-015. The successful entry of the viral particle into target cells is strongly dependent on the presence of the main receptor for adenovirus, the coxsackie- and adeno-virus receptor (CAR). This receptor is frequently down-regulated in highly malignant cells, rendering this population less vulnerable to viral attack. It has been shown that use of MEK inhibitors can up-regulate CAR expression, resulting in enhanced adenovirus entry into the cells. However, inhibition of MEK results in G1 cell cycle arrest, rendering infected cells temporarily unable to produce virus. This forces a tradeoff. While drug mediated up-regulation of CAR enhances virus entry into cancer cells, the consequent cell cycle arrest inhibits production of new virus particles and the replication of the virus. Optimal control-based schedules of MEK inhibitor application should increase the efficacy of this treatment, maximizing the overall tumor toxicity by exploiting the dynamics of CAR expression and viral production. We introduce two mathematical models of these dynamics and show simple optimal control based strategies which motivate this approach
Keywords :
cellular biophysics; genetic engineering; medical control systems; microorganisms; optimal control; tumours; CAR expression; G1 cell cycle arrest; MEK inhibitors; ONYX-015 replicating adenovirus; adeno-virus receptor; adenovirus replication; coxsackie-virus receptor; genetic replication; in vitro combination therapy; optimal control-based schedule; recombinant adenoviruses; tumor toxicity; viral particles; viral production; Adenoviruses; Cancer; Drugs; Dynamic scheduling; Genetic mutations; In vitro; Inhibitors; Medical treatment; Optimal control; Particle production;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
American Control Conference, 2006
Conference_Location :
Minneapolis, MN
Print_ISBN :
1-4244-0209-3
Electronic_ISBN :
1-4244-0209-3
Type :
conf
DOI :
10.1109/ACC.2006.1657479
Filename :
1657479
Link To Document :
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