Multi-layered microcapsules for cell encapsulation

被引:63
作者
Chia, SM
Wan, ACA
Quek, CH
Mao, HQ
Xu, X
Shen, L
Ng, ML
Leong, KW
Yu, H
机构
[1] Natl Univ Singapore, Fac Med, Clin Res Ctr, Singapore 117597, Singapore
[2] Inst Mat Res & Engn, Singapore 117602, Singapore
[3] Johns Hopkins Singapore Pte Ltd, Clin Res Ctr, Singapore 117597, Singapore
[4] Johns Hopkins Univ, Sch Med, Dept Biomed Engn, Baltimore, MD 21205 USA
关键词
cell microencapsulation; exoskeleton; ceramic sol-gel; nano-indentation;
D O I
10.1016/S0142-9612(01)00191-0
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Mechanical stability, complete encapsulation, selective permeability, and Suitable extra-cellular microenvironment, are the major considerations in designing microcapsules for cell encapsulation. We have developed four types of multi-layered microcapsules that allow selective optimization of these parameters. Primary hepatocytes were used as model cells to test these different microcapsule configurations. Type-I microcapsules with an average diameter of 400 mum were formed by complexing modified collagen with a terpolymer shell of 2-hydroxyethyl methylacrylate (HEMA). methacrylic acid (MAA) and methyl methacrylate (MMA), resulting in a capsule thickness of 2-5 mum. Cells in these microcapsules exhibited improved cellular functions over those Cultured on collagen monolayers. Type-II microcapsules were formed by encapsulating the Type-I microcapsules in another 2-5 mum ter-polymer shell and a similar to 5 mum collagen layer between the two ter-polymer shells to ensure complete cell encapsulation. Type-III microcapsules comprised of a macro-porous exoskeleton with materials Such as alumina sol-gel coated on the Type-I microcapsules. Nano-indendation assay indicated an improved mechanical stability over the Type-I microcapsules. Tvpe-IV microcapsules were created by encapsulating Type-III microcapsules in another 2-5 mum ter-polymer shell, with the aim of imparting a negatively charged smooth surface to minimize plasma protein absorption and ensure complete cell encapsulation. The permeability for nutrient exchange, cellular functions in terms of urea production and mechanical stability of the microcapsules were characterized. The advantages and limitations of these microcapsules for tissue engineering are discussed. (C) 2001 Elsevier Science Ltd. All rights reserved.
引用
收藏
页码:849 / 856
页数:8
相关论文
共 16 条
[1]   A NOVEL BIOREACTOR DESIGN FOR IN-VITRO RECONSTRUCTION OF IN-VIVO LIVER CHARACTERISTICS [J].
BADER, A ;
KNOP, E ;
BOKER, K ;
FRUHAUF, N ;
SCHUTTLER, W ;
OLDHAFER, K ;
BURKHARD, R ;
PICHLMAYR, R ;
SEWING, KF .
ARTIFICIAL ORGANS, 1995, 19 (04) :368-374
[2]  
BING DH, 1978, CHEM PHYSL HUMAN PLA
[3]   HEPATOCYTES IMMOBILIZED BY MICROENCAPSULATION IN ARTIFICIAL CELLS - EFFECTS ON HYPERBILIRUBINEMIA IN GUNN-RATS [J].
BRUNI, S ;
CHANG, TMS .
BIOMATERIALS ARTIFICIAL CELLS AND ARTIFICIAL ORGANS, 1989, 17 (04) :403-411
[4]  
BRUNNER G, 1979, INT J ARTIF ORGANS, V2, P163
[5]  
CHANG CK, 1993, IEEE SOFTWARE, V10, P4
[6]   SEMIPERMEABLE MICROCAPSULES [J].
CHANG, TMS .
SCIENCE, 1964, 146 (364) :524-&
[7]  
Chang TMS, 1999, ANN NY ACAD SCI, V875, P71
[8]   Hepatocyte encapsulation for enhanced cellular functions [J].
Chia, SM ;
Leong, KW ;
Li, J ;
Xu, X ;
Zeng, KY ;
Er, PN ;
Gao, SJ ;
Yu, H .
TISSUE ENGINEERING, 2000, 6 (05) :481-495
[9]   DEVELOPMENT OF A BIOARTIFICIAL LIVER USING ISOLATED HEPATOCYTES [J].
DIXIT, V .
ARTIFICIAL ORGANS, 1994, 18 (05) :371-384
[10]   Cell-based therapy of acute liver failure: The extracorporeal bioartificial liver [J].
Fremond, B ;
Joly, A ;
Desille, M ;
Desjardins, JF ;
Campion, JP ;
Clement, B .
CELL BIOLOGY AND TOXICOLOGY, 1996, 12 (4-6) :325-329