Microfluidic-driven viral infection on cell cultures: Theoretical and experimental study

被引:19
作者
Cimetta, Elisa [1 ]
Franzoso, Mauro [1 ,2 ]
Trevisan, Marta [3 ]
Serena, Elena [1 ,2 ]
Zambon, Alessandro [1 ]
Giulitti, Stefano [1 ,2 ]
Barzon, Luisa [3 ]
Elvassore, Nicola [1 ,2 ]
机构
[1] Univ Padua, Dept Chem Engn, I-35131 Padua, Italy
[2] Venetian Inst Mol Med, Padua, Italy
[3] Univ Padua, Dept Histol Microbiol & Med Biotechnol, I-35131 Padua, Italy
关键词
ON-A-CHIP; GENE-THERAPY; FUTURE; BIOREACTOR; SYSTEMS; PHYSICS;
D O I
10.1063/1.4723853
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Advanced cell culture systems creating a controlled and predictable microenvironment together with computational modeling may be useful tools to optimize the efficiency of cell infections. In this paper, we will present a phenomenological study of a virus-host infection system, and the development of a multilayered microfluidic platform used to accurately tune the virus delivery from a diffusive-limited regime to a convective-dominated regime. Mathematical models predicted the convective-diffusive regimes developed within the system itself and determined the dominating mass transport phenomena. Adenoviral vectors carrying the enhanced green fluorescent protein (EGFP) transgene were used at different multiplicities of infection (MOI) to infect multiple cell types, both in standard static and in perfused conditions. Our results validate the mathematical models and demonstrate how the infection processes through perfusion via microfluidic platform led to an enhancement of adenoviral infection efficiency even at low MOIs. This was particularly evident at the longer time points, since the establishment of steady-state condition guaranteed a constant viral concentration close to cells, thus strengthening the efficiency of infection. Finally, we introduced the concept of effective MOI, a more appropriate variable for microfluidic infections that considers the number of adenoviruses in solution per cell at a certain time. (C) 2012 American Institute of Physics. [http://dx.doi.org/10.1063/1.4723853]
引用
收藏
页数:12
相关论文
共 31 条
[1]   Real-time virus trapping and fluorescent imaging in microfluidic devices [J].
Akin, D ;
Li, HB ;
Bashir, R .
NANO LETTERS, 2004, 4 (02) :257-259
[2]   Microfabrication and microfluidics for tissue engineering: state of the art and future opportunities [J].
Andersson, H ;
van den Berg, A .
LAB ON A CHIP, 2004, 4 (02) :98-103
[3]  
[Anonymous], 1960, Transport Phenomena
[4]   Physics and applications of microfluidics in biology [J].
Beebe, DJ ;
Mensing, GA ;
Walker, GM .
ANNUAL REVIEW OF BIOMEDICAL ENGINEERING, 2002, 4 :261-286
[5]   Microfluidics-based systems biology [J].
Breslauer, DN ;
Lee, PJ ;
Lee, LP .
MOLECULAR BIOSYSTEMS, 2006, 2 (02) :97-112
[6]   Enhancement of viability of muscle precursor cells on 3D scaffold in a perfusion bioreactor [J].
Cimetta, E. ;
Flaibani, M. ;
Mella, M. ;
Serena, E. ;
Boldrin, L. ;
De Coppi, P. ;
Elvassore, N. .
INTERNATIONAL JOURNAL OF ARTIFICIAL ORGANS, 2007, 30 (05) :415-428
[7]   Microfluidic device generating stable concentration gradients for long term cell culture: application to Wnt3a regulation of β-catenin signaling [J].
Cimetta, Elisa ;
Cannizzaro, Christopher ;
James, Richard ;
Biechele, Travis ;
Moon, Randall T. ;
Elvassore, Nicola ;
Vunjak-Novakovic, Gordana .
LAB ON A CHIP, 2010, 10 (23) :3277-3283
[8]   Micro-bioreactor arrays for controlling cellular environments: Design principles for human embryonic stem cell applications [J].
Cimetta, Elisa ;
Figallo, Elisa ;
Cannizzaro, Christopher ;
Elvassore, Nicola ;
Vunjak-Novakovic, Gordana .
METHODS, 2009, 47 (02) :81-89
[9]   Lab-on-a-chip: microfluidics in drug discovery [J].
Dittrich, PS ;
Manz, A .
NATURE REVIEWS DRUG DISCOVERY, 2006, 5 (03) :210-218
[10]   Propagation of viruses on micropatterned host cells [J].
Endler, EE ;
Duca, KA ;
Nealey, PF ;
Whitesides, GM ;
Yin, J .
BIOTECHNOLOGY AND BIOENGINEERING, 2003, 81 (06) :719-725