Cell structure, stiffness and permeability of freeze-dried collagen scaffolds in dry and hydrated states

被引:61
|
作者
Varley, M. C. [1 ]
Neelakantan, S. [1 ]
Clyne, T. W. [2 ]
Dean, J. [2 ]
Brooks, R. A. [3 ]
Markaki, A. E. [1 ]
机构
[1] Univ Cambridge, Dept Engn, Trumpington St, Cambridge CB2 1PZ, England
[2] Univ Cambridge, Dept Mat Sci & Met, 27 Charles Babbage Rd, Cambridge CB3 0FS, England
[3] Addenbrookes Hosp, Div Trauma & Orthopaed Surg, Hills Rd, Cambridge CB2 2QQ, England
基金
英国工程与自然科学研究理事会; 欧洲研究理事会;
关键词
Collagen scaffolds; Cell structure; Cell interconnectivity; Specific surface area; Young's modulus; Specific permeability; GLYCOSAMINOGLYCAN SCAFFOLDS; GAG SCAFFOLDS; FIBER NETWORKS; MECHANICAL-PROPERTIES; FIBROUS BIOMATERIALS; BONE REGENERATION; POROUS SCAFFOLD; PORE STRUCTURE; BEHAVIOR; ARCHITECTURE;
D O I
10.1016/j.actbio.2016.01.041
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Scaffolds for tissue engineering applications should be highly permeable to support mass transfer requirements while providing a 3-D template for the encapsulated biological cells. High porosity and cell interconnectivity result in highly compliant scaffolds. Overstraining occurs easily with such compliant materials and can produce misleading results. In this paper, the cell structure of freeze-dried collagen scaffolds, in both dry and hydrated states, was characterised using X-ray tomography and 2-photon con focal microscopy respectively. Measurements have been made of the scaffold's Young's modulus using conventional mechanical testing and a customised see-saw testing configuration. Specific permeability was measured under constant pressure gradient and compared with predictions. The collagen scaffolds investigated here have a coarse cell size (similar to 100-150 mu m) and extensive connectivity between adjacent cells (similar to 10-30 mu m) in both dry and hydrated states. The Young's modulus is very low, of the order of 10 kPa when dry and 1 kPa when hydrated. There is only a single previous study concerning the specific permeability of (hydrated) collagen scaffolds, despite its importance in nutrient diffusion, waste removal and cell migration. The experimentally measured value reported here (5 x 10(-10) m(2)) is in good agreement with predictions based on Computational Fluid Dynamics simulation and broadly consistent with the Carman-Kozeny empirical estimate. It is however about three orders of magnitude higher than the single previously-reported value and this discrepancy is attributed at least partly to the high pressure gradient imposed in the previous study. Statement of Significance The high porosity and interconnectivity of tissue engineering scaffolds result in highly compliant structures (ie large deflections under low applied loads). Characterisation is essential if these scaffolds are to be systematically optimised. Scaffold overstraining during characterisation can lead to misleading results. In this study, the stiffness (in dry and hydrated states) and specific permeability of freeze-dried collagen scaffolds have been measured using techniques customised for low stiffness structures. The scaffold cell structure is investigated using X-ray computed tomography, which has been applied previously to visualise such materials, without extracting any structural parameters or simulating fluid flow. These are carried out in this work. 2-photon confocal microscopy is used for the first time to study the structure in hydrated state. (C) 2016 Acta Materialia Inc. Published by Elsevier Ltd.
引用
收藏
页码:166 / 175
页数:10
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