Gelation and biocompatibility of injectable alginate-calcium phosphate gels for bone regeneration

被引:41
作者
Cardoso, D. Alves [1 ,2 ]
van den Beucken, J. J. J. P. [2 ]
Both, L. L. H. [1 ]
Bender, J. [3 ]
Jansen, J. A. [2 ]
Leeuwenburgh, S. C. G. [2 ]
机构
[1] EMCM BV, NL-6545 CH Nijmegen, Netherlands
[2] Radboud Univ Nijmegen, Med Ctr, Dept Biomat, NL-6500 HB Nijmegen, Netherlands
[3] Bender Analyt Holding BV, NL-3581 XE Utrecht, Netherlands
关键词
biomaterials; bone; composites; natural polymer; alginate; calcium phosphates; injectable; BIOMATERIALS; HYDROGELS; COMPOSITE; SCAFFOLDS; CELLS;
D O I
10.1002/jbm.a.34754
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
An emerging approach toward development of injectable, self-setting, and fully biodegradable bone substitutes involves the combination of injectable hydrogel matrices with a dispersed phase consisting of nanosized calcium phosphate particles. Here, novel injectable composites for bone regeneration have been developed based on the combination of ultrapure alginate as the matrix phase, crystalline CaP [monetite and poorly crystalline hydroxyapatite (HA)] powders as both a dispersed mineral phase and a source of calcium for cross-linking alginate, glucono-delta-lactone (GDL) as acidifier and glycerol as both plasticizer and temporary sequestrant. The composites were maximized with respect to CaP content to obtain the highest amount of osteoconductive filler. The viscoelastic and physicochemical properties of the precursor compounds and composites were analyzed using rheometry, elemental analysis (for calcium release and uptake), acidity [by measuring pH in simulated body fluid (SBF)], general biocompatibility (subcutaneous implantation in rabbits), and osteocompatibility (implantation in femoral condyle bone defect of rabbits). The gelation of the resulting composites could be controlled from seconds to tens of minutes by varying the solubility of the CaP phase (HA vs. monetite) or amount of GDL. All composites mineralized extensively in SBF for up to 11 days. In vivo, the composites also disintegrated upon implantation in subcutaneous or bone tissue, leaving behind less degradable but osteoconductive CaP particles. Although the composites need to be optimized with respect to the available amount of calcium for cross-linking of alginate, the beneficial bone response as observed in the in vivo studies render these gels promising for minimally invasive applications as bone-filling material. (c) 2013 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 102A: 808-817, 2014.
引用
收藏
页码:808 / 817
页数:10
相关论文
共 29 条
[1]
Alginate hydrogels as biomaterials [J].
Augst, Alexander D. ;
Kong, Hyun Joon ;
Mooney, David J. .
MACROMOLECULAR BIOSCIENCE, 2006, 6 (08) :623-633
[2]
Advanced biomaterials for skeletal tissue regeneration:: Instructive and smart functions [J].
Barrere, F. ;
Mahmood, T. A. ;
de Groot, K. ;
van Blitterswijk, C. A. .
MATERIALS SCIENCE & ENGINEERING R-REPORTS, 2008, 59 (1-6) :38-71
[3]
Bender J. C. M. E., 2009, Bneder Analytics, Patent No. [WO 2009/154440, 2009154440]
[4]
Bender JCME, 2010, In situ gelling alginate systems, Patent No. [WO 2010/117266, 2010117266]
[5]
Brown W.E., 1985, US Pat., Patent No. [4518430, No. 4518430]
[6]
DEPENDENCE OF APATITE FORMATION ON SILICA-GEL ON ITS STRUCTURE - EFFECT OF HEAT-TREATMENT [J].
CHO, SB ;
NAKANISHI, K ;
KOKUBO, T ;
SOGA, N ;
OHTSUKI, C ;
NAKAMURA, T ;
KITSUGI, T ;
YAMAMURO, T .
JOURNAL OF THE AMERICAN CERAMIC SOCIETY, 1995, 78 (07) :1769-1774
[7]
Tissue cells feel and respond to the stiffness of their substrate [J].
Discher, DE ;
Janmey, P ;
Wang, YL .
SCIENCE, 2005, 310 (5751) :1139-1143
[8]
Nanosized and nanocrystalline calcium orthophosphates [J].
Dorozhkin, Sergey V. .
ACTA BIOMATERIALIA, 2010, 6 (03) :715-734
[9]
Calcium orthophosphate-based biocomposites and hybrid biomaterials [J].
Dorozhkin, Sergey V. .
JOURNAL OF MATERIALS SCIENCE, 2009, 44 (09) :2343-2387
[10]
Elliott J.C., 1994, Studies in Inorganic Chemistry, P1