S53P4 bioactive glass scaffolds induce BMP expression and integrative bone formation in a critical-sized diaphysis defect treated with a single-stage d induce d membrane technique

被引:23
作者
Eriksson, E. [1 ]
Bjorkenheim, R. [2 ,3 ]
Stromberg, G. [2 ,3 ]
Ainola, M. [4 ]
Uppstu, P. [5 ]
Aalto-Setala, L. [6 ]
Leino, V-M [8 ]
Hupa, L. [6 ]
Pajarinen, J. [2 ,3 ,7 ]
Lindfors, N. C. [1 ,2 ,3 ]
机构
[1] Univ Helsinki, Fac Med, Helsinki, Finland
[2] Univ Helsinki, Dept Musculoskeletal & Plast Surg, Helsinki, Finland
[3] Helsinki Univ Hosp, Helsinki, Finland
[4] Univ Helsinki, Fac Med, Translat Immunol Res Program, Helsinki, Finland
[5] Abo Akad Univ, Fac Sci & Engn, Polymer Technol Res Grp, Turku, Finland
[6] Abo Akad Univ, Johan Gadolin Proc Chem Ctr, Turku, Finland
[7] Paijat Hame Cent Hosp, Dept Surg, Lahti, Finland
[8] Univ Helsinki, Dept Phys, Helsinki, Finland
关键词
Bone morphogenic proteins; Induced membrane; Critical-sized diaphysis defect; Bone substitute; AUTOGENOUS BONE; DIAMOND CONCEPT; NON-UNIONS; FRACTURE; MANAGEMENT; REPAIR; SUBSTITUTES; FEMUR; BIOMATERIALS; REGENERATION;
D O I
10.1016/j.actbio.2021.03.035
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Surgical management of critical-sized diaphyseal defects involves multiple challenges, and up to 10% result in delayed or non-union. The two-staged induced membrane technique is successfully used to treat these defects, but it is limited by the need of several procedures and bone graft. Repeated procedures increase costs and morbidity, while grafts are subject to donor-site complications and scarce availability. To transform this two-staged technique into one graft-independent procedure, we developed amorphous porous scaffolds sintered from the clinically used bioactive glass S53P4. This work constitutes the first evaluation of such scaffolds in vivo in a critical-sized diaphyseal defect in the weight-bearing rabbit femur. We provide important knowledge and prospects for future development of sintered S53P4 scaffolds as a bone substitute. Critical-sized diaphysis defects are complicated by inherent sub-optimal healing conditions. The two staged induced membrane technique has been used to treat these challenging defects since the 1980's. It involves temporary implantation of a membrane-inducing spacer and subsequent bone graft defect filling. A single-staged, graft-independent technique would reduce both socio-economic costs and patient morbidity. Our aim was to enable such single-staged approach through development of a strong bioactive glass scaffold that could replace both the spacer and the graft filling. We constructed amorphous porous scaffolds of the clinically used bioactive glass S53P4 and evaluated them in vivo using a critical sized defect model in the weight-bearing femur diaphysis of New Zealand White rabbits. S53P4 scaffolds and standard polymethylmethacrylate spacers were implanted for 2, 4, and 8 weeks. Induced membranes were confirmed histologically, and their osteostimulative activity was evaluated through RT-qPCR of bone morphogenic protein 2, 4, and 7 (BMPs). Bone formation and osseointegration were examined using histology, scanning electron microscopy, energy-dispersive X-ray analysis, and micro-computed tomography imaging. Scaffold integration, defect union and osteosynthesis were assessed manually and with X-ray projections. We demonstrated that S53P4 scaffolds induce osteostimulative membranes and produce osseointegrative new bone formation throughout the scaffolds. We also demonstrated successful stable scaffold integration with early defect union at 8 weeks postoperative in critical-sized segmental diaphyseal defects with implanted sintered amorphous S53P4 scaffolds. This study presents important considerations for future research and the potential of the S53P4 bioactive glass as a bone substitute in large diaphyseal defects. Statement of significance Surgical management of critical-sized diaphyseal defects involves multiple challenges, and up to 10% result in delayed or non-union. The two-staged induced membrane technique is successfully used to treat these defects, but it is limited by the need of several procedures and bone graft. Repeated procedures increase costs and morbidity, while grafts are subject to donor-site complications and scarce availability. To transform this two-staged technique into one graft-independent procedure, we developed amorphous porous scaffolds sintered from the clinically used bioactive glass S53P4. This work constitutes the first evaluation of such scaffolds in vivo in a critical-sized diaphyseal defect in the weight-bearing rabbit femur. We provide important knowledge and prospects for future development of sintered S53P4 scaffolds as a bone substitute. (c) 2021 The Author(s). Published by Elsevier Ltd on behalf of Acta Materialia Inc. This is an open access article under the CC BY-NC-ND license ( http://creativecommons.org/licenses/by-nc-nd/4.0/ )
引用
收藏
页码:463 / 476
页数:14
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