Permeation of dimethyl sulfoxide into articular cartilage at subzero temperatures

被引:0
作者
Shao-zhi Zhang
Xiao-yi Yu
Guang-ming Chen
机构
[1] Zhejiang University,Institute of Refrigeration and Cryogenics
来源
Journal of Zhejiang University SCIENCE B | 2012年 / 13卷
关键词
Articular cartilage; Vitrification; Dimethyl sulfoxide; Permeation; Diffusion coefficient; Subzero temperature; TB13; R318.52;
D O I
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中图分类号
学科分类号
摘要
Osteochondral allografting has been proved to be a useful method to treat diseased or damaged areas of joint surfaces. Operational long-term stocks of grafts which supply a buffer between procurement and utilization would contribute to the commercialization or industrialization of this technology. Vitrification has been thought to be a promising method for successful preservation of articular cartilage (AC), but high concentration cryoprotectants (CPAs) are used which may cause high cellular toxicity. An effective way to reduce CPA toxicity is to increase CPA concentration gradually while the temperature is lowered. Understanding the mechanism of CPA permeation at subzero temperatures is important for designing the cryopreservation protocol. In this research, the permeation of dimethyl sulfoxide (Me2SO) in ovine AC at subzero temperatures was studied experimentally. Pretreated AC discs were exposed in Me2SO solutions for different time (0, 5, 15, 30, 50, 80, and 120 min) at three temperature levels (−10, −20, and −30 °C). The Me2SO concentration within the tissue was determined by ultraviolet (UV) spectrophotometry. The diffusion coefficients were estimated to be 0.85×10−6, 0.48×10−6, and 0.27×10−6 cm2/s at −10, −20, and −30 °C, respectively, and the corresponding activation energy was 29.23 kJ/mol. Numerical simulation was performed to compare two Me2SO addition protocols, and the results demonstrated that the total loading duration could be effectively reduced with the knowledge of permeation kinetics.
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页码:213 / 220
页数:7
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共 145 条
[1]  
Aubin P.P.(2001)Long-term followup of fresh femoral osteochondral allografts for posttraumatic knee defects Clin. Orthop. Relat. R 391 318-327
[2]  
Cheah H.K.(2010)Vitrification of porcine articular cartilage Cryobiology 60 217-221
[3]  
Davis A.M.(1991)Quantitation of dimethyl sulfoxide in solutions and tissues by high performance liquid chromatography Cryobiology 28 210-215
[4]  
Gross A.E.(2004)Cryoprotectant permeation through human articular cartilage Osteoarthr. Cartilage 12 787-792
[5]  
Brockbank K.G.M.(2009)Electrical conductivity measurements for the ternary systems of glycerol/sodium chloride/water and ethylene glycol/sodium chloride/water and their applications in cryopreservation Biopreserv. Biobank. 7 13-17
[6]  
Chen Z.Z.(1999)Articular cartilage transplantation-clinical results in the knee Clin. Orthop. Relat. R 360 159-168
[7]  
Song Y.C.(1970)Diffusion and distribution of dimethyl sulphoxide in the isolated guinea-pig taenia coli J. Physiol. 209 187-208
[8]  
Carpenter J.F.(2005)Cryoprotectant equilibration in tissues Cryobiology 51 85-91
[9]  
Dawson P.E.(2007)Dimethyl sulfoxide toxicity kinetics in intact articular cartilage Cell Tissue Bank. 8 125-133
[10]  
Carsi B.(2006)Comparison of fresh osteochondral autografts and allografts: a canine model Am. J. Sports Med. 34 1084-1093