Multilayer microfluidic PEGDA hydrogels

被引:205
作者
Cuchiara, Michael P. [1 ]
Allen, Alicia C. B. [1 ]
Chen, Theodore M. [1 ]
Miller, Jordan S. [1 ]
West, Jennifer L. [1 ]
机构
[1] Rice Univ, Dept Bioengn, BRC, Houston, TX 77005 USA
关键词
PEG; Hydrogel; Micropatterning; Microfluidics; Cell culture; Cell viability; MARROW HEMATOPOIETIC COMPARTMENT; MODELING PO(2) DISTRIBUTIONS; CELL-GROWTH; SCAFFOLDS; FABRICATION;
D O I
10.1016/j.biomaterials.2010.03.031
中图分类号
R318 [生物医学工程];
学科分类号
100103 [病原生物学];
摘要
Development of robust 3D tissue analogs in vitro is limited by passive. diffusional mass transport. Perfused microfluidic tissue engineering scaffolds hold the promise to improve mass transport limitations and promote the development of complex, metabolically dense, and clinically relevant tissues. We report a simple and robust multilayer replica molding technique in which poly(dimethylsiloxane) (PDMS) and poly(ethylene glycol) diacrylate (PEGDA) are serially replica molded to develop microfluidic PEGDA hydrogel networks embedded within independently fabricated PDMS housings. We demonstrate the ability to control solute-scaffold effective diffusivity as a function of solute molecular weight and hydrogel concentration. Within cell laden microfluidic hydrogels, we demonstrate increased cellular viability in perfused hydrogel systems compared to static controls. We observed a significant increase in cell viability at all time points greater than zero at distances up to 1 mm from the perfused channel. Knowledge of spatiotemporal mass transport and cell viability gradients provides useful engineering design parameters necessary to maximize overall scaffold viability and metabolic density. This work has applications in the development of hydrogels as in vitro diagnostics and ultimately as regenerative medicine based therapeutics. (c) 2010 Elsevier Ltd. All rights reserved.
引用
收藏
页码:5491 / 5497
页数:7
相关论文
共 30 条
[1]
The potential to improve cell infiltration in composite fiber-aligned electrospun scaffolds by the selective removal of sacrificial fibers [J].
Baker, Brendon M. ;
Gee, Albert O. ;
Metter, Robert B. ;
Nathan, Ashwin S. ;
Marklein, Ross A. ;
Burdick, Jason A. ;
Mauck, Robert L. .
BIOMATERIALS, 2008, 29 (15) :2348-2358
[2]
The effect of nanofiber alignment on the maturation of engineered meniscus constructs [J].
Baker, Brendon M. ;
Mauck, Robert L. .
BIOMATERIALS, 2007, 28 (11) :1967-1977
[3]
Three-dimensional microfluidic tissue-engineering scaffolds using a flexible biodegradable polymer [J].
Bettinger, CJ ;
Weinberg, EJ ;
Kulig, KM ;
Vacanti, JP ;
Wang, YD ;
Borenstein, JT ;
Langer, R .
ADVANCED MATERIALS, 2006, 18 (02) :165-+
[4]
Microfluidic scaffolds for tissue engineering [J].
Choi, Nak Won ;
Cabodi, Mario ;
Held, Brittany ;
Gleghorn, Jason P. ;
Bonassar, Lawrence J. ;
Stroock, Abraham D. .
NATURE MATERIALS, 2007, 6 (11) :908-915
[5]
Modeling pO2 distributions in the bone marrow hematopoietic compartment.: I.: Krogh's model [J].
Chow, DC ;
Wenning, LA ;
Miller, WM ;
Papoutsakis, ET .
BIOPHYSICAL JOURNAL, 2001, 81 (02) :675-684
[6]
Modeling pO2 distributions in the bone marrow hematopoietic compartment.: II.: Modified Kroghian models [J].
Chow, DC ;
Wenning, LA ;
Miller, WM ;
Papoutsakis, ET .
BIOPHYSICAL JOURNAL, 2001, 81 (02) :685-696
[7]
Cell migration into scaffolds under co-culture conditions in a microfluidic platform [J].
Chung, Seok ;
Sudo, Ryo ;
Mack, Peter J. ;
Wan, Chen-Rei ;
Vickerman, Vernella ;
Kamm, Roger D. .
LAB ON A CHIP, 2009, 9 (02) :269-275
[8]
Fournier R.L., 1998, Basic Tranport Phenomena in Biomedical Engineering, P27
[9]
In situ collagen assembly for integrating microfabricated three-dimensional cell-seeded matrices [J].
Gillette, Brian M. ;
Jensen, Jacob A. ;
Tang, Beixian ;
Yang, Genevieve J. ;
Bazargan-Lari, Ardalan ;
Zhong, Ming ;
Sia, Samuel K. .
NATURE MATERIALS, 2008, 7 (08) :636-640
[10]
Fabrication of microfluidic hydrogels using molded gelatin as a sacrificial element [J].
Golden, Andrew P. ;
Tien, Joe .
LAB ON A CHIP, 2007, 7 (06) :720-725