Formulation of PEG-based hydrogels affects tissue-engineered cartilage construct characteristics

被引:42
|
作者
Riley, SL
Dutt, S
de la Torre, R
Chen, AC
Sah, RL
Ratcliffe, A
机构
[1] Adv Tissue Sci, La Jolla, CA 92037 USA
[2] Univ Calif San Diego, Dept Bioengn, La Jolla, CA 92093 USA
关键词
D O I
10.1023/A:1012817317296
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The limited supply of cartilage tissue with appropriate sizes and shapes needed for reconstruction and repair has stimulated research in the area of hydrogels as scaffolds for cartilage tissue engineering. In this study we demonstrate that poly(ethylene glycol) (PEG)-based semi-interpenetrating (sIPN) network hydrogels, made with a crosslinkable poly(ethylene glycol)-dimethacrylate (PEGDM) component and a non-crosslinkable interpenetration poly(ethylene oxide) (PEO) component, and seeded with chondrocytes support cartilage construct growth having nominal thicknesses of 6 mm and relatively uniform safranin-O stained matrix when cultured statically, unlike constructs grown with prefabricated macroporous scaffolds. Even though changing the molecular weight of the PEO from 100 to 20 kDa reduces the viscosity of the precursor polymer solution, we have demonstrated that it does not appear to affect the histological or biochemical characteristics of cartilaginous constructs. Extracellular matrix (ECM) accumulation and the spatial uniformity of the ECM deposited by the embedded chondrocytes decreased, and hydrogel compressive properties increased, as the ratio of the PEGDM:PEO in the hydrogel formulation increased (from 30:70 to 100:0 PEGDM:PEO). Total collagen and glycosaminoglycan contents per dry weight were highest using the 30:70 PEGDM:PEO formulation (24.4 +/-3.5% and 7.1 +/-0.9%, respectively). The highest equilibrium compressive modulus was obtained using the 100:0 PEGDM:PEO formulation (0.32 +/-0.07 MPa), which is similar to the compressive modulus of native articular cartilage. These results suggest that the versatility of PEG-based sIPN hydrogels makes them an attractive scaffold for tissue engineering of cartilage. (C) 2001 Kluwer Academic Publishers.
引用
收藏
页码:983 / 990
页数:8
相关论文
共 50 条
  • [1] Formulation of PEG-based hydrogels affects tissue-engineered cartilage construct characteristics
    Susan L. Riley
    Sangeeta Dutt
    Rebecca de la Torre
    Albert C. Chen
    Robert L. Sah
    Anthony Ratcliffe
    Journal of Materials Science: Materials in Medicine, 2001, 12 : 983 - 990
  • [2] FORMATION OF TISSUE-ENGINEERED CONSTRUCT OF CARTILAGE IN VITRO
    Surguchenko, V. A.
    Ponomareva, A. S.
    Kirsanova, L. A.
    Bubentsova, G. N.
    Skaletskij, N. N.
    Sevastianov, V. I.
    VESTNIK TRANSPLANTOLOGII I ISKUSSTVENNYH ORGANOV, 2013, 15 (03): : 66 - 72
  • [3] Novel multiarm PEG-based hydrogels for tissue engineering
    Tan, Huaping
    DeFail, Alicia J.
    Rubin, J. Peter
    Chu, Constance R.
    Marra, Kacey G.
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2010, 92A (03) : 979 - 987
  • [4] Transdermal photopolymerization of poly(ethylene oxide)-based injectable hydrogels for tissue-engineered cartilage
    Elisseeff, J
    Anseth, K
    Sims, D
    McIntosh, W
    Randolph, M
    Yaremchuk, M
    Langer, R
    PLASTIC AND RECONSTRUCTIVE SURGERY, 1999, 104 (04) : 1014 - 1022
  • [5] Formation of Tissue-Engineered Construct of Human Cartilage Tissue in a Flow-Through Bioreactor
    V. I. Sevastianov
    Yu. B. Basok
    A. M. Grigor’ev
    L. A. Kirsanova
    V. N. Vasilets
    Bulletin of Experimental Biology and Medicine, 2017, 164 : 269 - 273
  • [6] Formation of Tissue-Engineered Construct of Human Cartilage Tissue in a Flow-Through Bioreactor
    Sevastianov, V. I.
    Basok, Yu. B.
    Grigor'ev, A. M.
    Kirsanova, L. A.
    Vasilets, V. N.
    BULLETIN OF EXPERIMENTAL BIOLOGY AND MEDICINE, 2017, 164 (02) : 269 - 273
  • [7] Transplanted tissue-engineered cartilage
    Christophel, JJ
    Chang, JS
    Park, SS
    ARCHIVES OF FACIAL PLASTIC SURGERY, 2006, 8 (02) : 117 - 122
  • [8] The Maturity of Tissue-Engineered Cartilage In Vitro Affects the Repairability for Osteochondral Defect
    Jin, Cheng Zhe
    Cho, Jae-Ho
    Choi, Byung Hyune
    Wang, Li Ming
    Kim, Moon Suk
    Park, So Ra
    Yun, Jung Ho
    Oh, Hyun Ju
    Min, Byoung-Hyun
    TISSUE ENGINEERING PART A, 2011, 17 (23-24) : 3057 - 3065
  • [9] Sizable Scaffold-Free Tissue-Engineered Articular Cartilage Construct for Cartilage Defect Repair
    Park, In-Su
    Jin, Ri Long
    Oh, Hyun Ju
    Minh-Dung Truong
    Choi, Byung Hyune
    Park, Sang-Hyug
    Park, Do Young
    Min, Byoung-Hyun
    ARTIFICIAL ORGANS, 2019, 43 (03) : 278 - 287
  • [10] Tissue reactions around the tissue-engineered cartilage - Based on biopolymers
    Fujihara, Y.
    Ogasawara, T.
    Asawa, Y.
    Fujihara, H.
    Takato, T.
    Hoshi, K.
    TISSUE ENGINEERING, 2007, 13 (07): : 1771 - 1771