Electrospun and 3D printed polymeric materials for one-stage critical-size long bone defect regeneration inspired by the Masquelet technique: Recent Advances

被引:0
作者
Ganguly, Payal [1 ]
Jones, Elena [1 ]
Panagiotopoulou, Vasiliki [2 ]
Jha, Animesh [3 ]
Blanchy, Marilys [4 ]
Antimisiaris, Sophia [2 ]
Anton, Martina [5 ]
Dhuiege, Benjamin [6 ]
Marotta, Mario [7 ]
Marjanovic, Nenad [8 ]
Panagiotopoulos, Elias [2 ]
Giannoudis, Peter V. [1 ,9 ]
机构
[1] Univ Leeds, Leeds Inst Rheumat & Musculoskeletal Med, Leeds, England
[2] Univ Campus Rio Patras, Panepistimio Patron UPAT, Rion 26504, Greece
[3] Univ Leeds, Sch Chem & Proc Engn, Leeds, England
[4] RESCOLL, Allee Geoffroy St Hilaire 8, F-33600 Pessac, France
[5] Klinikum Rechts Isar Tech Univ Munchen TUM MED, Ismaninger Str 22, D-81675 Munich, Germany
[6] Genesink GENE, 39 Ave Gaston Imbert Zi Rousset, F-13790 Rousset, France
[7] Acondicionamiento Tarrasense Assoc LEITAT, Carrer Innovacio 2, Terrassa 08225, Spain
[8] CSEM Ctr Suisse Elect & Microtech Sa Rech & Dev, Rue Jaquet Droz 1,, Neuchatel CH-2000, Switzerland
[9] Univ Leeds, Leeds Gen Infirm, Dept Trauma & Orthopaed Surg, Leeds, England
来源
INJURY-INTERNATIONAL JOURNAL OF THE CARE OF THE INJURED | 2022年 / 53卷
基金
欧盟地平线“2020”;
关键词
Electrospinning; 3d printing; Long bone defect; Polymer; Composite ceramic;
D O I
暂无
中图分类号
R4 [临床医学];
学科分类号
1002 ; 100602 ;
摘要
Critical-size long bone defects represent one of the major causes of fracture non-union and remain a sig-nificant challenge in orthopaedic surgery. Two-stage procedures such as a Masquelet technique demon-strate high level of success however their main disadvantage is the need for a second surgery, which is required to remove the non-resorbable cement spacer and to place the bone graft into the biological chamber formed by the 'induced membrane'. Recent research efforts have therefore been dedicated to-wards the design, fabrication and testing of resorbable implants that could mimic the biological functions of the cement spacer and the induced membrane. Amongst the various manufacturing techniques used to fabricate these implants, three-dimensional (3D) printing and electrospinning methods have gained a significant momentum due their high-level controllability, scalable processing and relatively low cost. This review aims to present recent advances in the evaluation of electrospun and 3D printed polymeric materials for critical-size, long bone defect reconstruction, emphasizing both their beneficial properties and current limitations. Furthermore, we present and discuss current state-of-the art techniques required for characterisation of the materials' physical, mechanical and biological characteristics. These represent the essential first steps towards the development of personalised implants for single-surgery, large defect reconstruction in weight-bearing bones.(c) 2022 Elsevier Ltd. All rights reserved.
引用
收藏
页码:S2 / S12
页数:11
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