Biological Evaluation of Flexible Polyurethane/Poly L-Lactic Acid Composite Scaffold as a Potential Filler for Bone Regeneration

被引:6
|
作者
Lui, Yuk Fai [1 ]
Ip, Wing Yuk [1 ]
机构
[1] Univ Hong Kong, Dept Orthopaed & Traumatol, Hong Kong, Hong Kong, Peoples R China
来源
MATERIALS | 2017年 / 10卷 / 09期
关键词
biomaterial; bone graft substitute; bone filler; GRAFT SUBSTITUTES; ILIAC CREST; MORPHOGENETIC PROTEIN; CALCIUM-PHOSPHATE; INDUCED MEMBRANE; CELL-ADHESION; STEM-CELLS; DEFECTS; REPAIR; RECONSTRUCTION;
D O I
10.3390/ma10091042
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Degradable bone graft substitute for large-volume bone defects is a continuously developing field in orthopedics. With the advance in biomaterial in past decades, a wide range of new materials has been investigated for their potential in this application. When compared to common biopolymers within the field such as PLA or PCL, elastomers such as polyurethane offer some unique advantages in terms of flexibility. In cases of bone defect treatments, a flexible soft filler can help to establish an intimate contact with surrounding bones to provide a stable bone-material interface for cell proliferation and ingrowth of tissue. In this study, a porous filler based on segmented polyurethane incorporated with poly L-lactic acid was synthesized by a phase inverse salt leaching method. The filler was put through in vitro and in vivo tests to evaluate its potential in acting as a bone graft substitute for critical-sized bone defects. In vitro results indicated there was a major improvement in biological response, including cell attachment, proliferation and alkaline phosphatase expression for osteoblast-like cells when seeded on the composite material compared to unmodified polyurethane. In vivo evaluation on a critical-sized defect model of New Zealand White (NZW) rabbit indicated there was bone ingrowth along the defect area with the introduction of the new filler. A tight interface formed between bone and filler, with osteogenic cells proliferating on the surface. The result suggested polyurethane/poly L-lactic acid composite is a material with the potential to act as a bone graft substitute for orthopedics application.
引用
收藏
页数:19
相关论文
共 50 条
  • [21] Porous poly(L-lactic acid) sheet prepared by stretching with starch particles as filler for tissue engineering
    Ju, Dandan
    Han, Lijing
    Li, Zonglin
    Chen, Yunjing
    Wang, Qingjiang
    Bian, Junjia
    Dong, Lisong
    CARBOHYDRATE POLYMERS, 2016, 142 : 222 - 229
  • [22] Poly(lactic-co-glycolic acid) and SBA-15 Composite Scaffolds for Bone Regeneration
    Wu, Zhong
    Hu, Siyuan
    Lim, Thou
    Guo, Gang
    Liu, Jie
    Li, Shaohua
    JOURNAL OF BIOMATERIALS AND TISSUE ENGINEERING, 2017, 7 (10) : 934 - 942
  • [23] Novel three-dimensional scaffolds of poly(L-lactic acid) microfibers using electrospinning and mechanical expansion: fabrication and bone regeneration
    Shim, In Kyong
    Jung, Mi Ra
    Kim, Kyung Hwa
    Seol, Yang Jo
    Park, Yoon Jeong
    Park, Won Ho
    Lee, Seung Jin
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART B-APPLIED BIOMATERIALS, 2010, 95B (01) : 150 - 160
  • [24] Poly-L-lactic acid/hydroxyapatite hybrid membrane for bone tissue regeneration
    Sui, Gang
    Yang, Xiaoping
    Mei, Fang
    Hu, Xiaoyang
    Chen, Guoqiang
    Deng, Xuliang
    Ryu, Seungkon
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2007, 82A (02) : 445 - 454
  • [25] Bone Regeneration with BMP-2 Gene-modified Mesenchymal Stem Cells Seeded on Nano-hydroxyapatite/Collagen/Poly(L-Lactic Acid) Scaffolds
    Dong, Jin-Lei
    Li, Lian-Xin
    Mu, Wei-Dong
    Wang, Yong-Hui
    Zhou, Dong-Sheng
    Hao, Wei
    Zou, De-Bo
    Hu, Kun
    Li, Ji
    Cui, Fu-Zhai
    JOURNAL OF BIOACTIVE AND COMPATIBLE POLYMERS, 2010, 25 (06) : 547 - 566
  • [26] In vitro investigation of nanohydroxyapatite/poly(L-lactic acid) spindle composites used for bone tissue engineering
    Yan, W.
    Zhang, C. Y.
    Xia, L. L.
    Zhang, T.
    Fang, Q. F.
    JOURNAL OF MATERIALS SCIENCE-MATERIALS IN MEDICINE, 2016, 27 (08)
  • [27] Growth on poly(L-lactic acid) porous scaffold preserves CD73 and CD90 immunophenotype markers of rat bone marrow mesenchymal stromal cells
    Zamparelli, Alessandra
    Zini, Nicoletta
    Cattini, Luca
    Spaletta, Giulia
    Dallatana, Davide
    Bassi, Elena
    Barbaro, Fulvio
    Iafisco, Michele
    Mosca, Salvatore
    Parrilli, Annapaola
    Fini, Milena
    Giardino, Roberto
    Sandri, Monica
    Sprio, Simone
    Tampieri, Anna
    Maraldi, Nadir M.
    Toni, Roberto
    JOURNAL OF MATERIALS SCIENCE-MATERIALS IN MEDICINE, 2014, 25 (10) : 2421 - 2436
  • [28] Amorphous calcium phosphate/poly(D,L-lactic acid) composite nanofibers: Electrospinning preparation and biomineralization
    Ma, Zhao
    Chen, Feng
    Zhu, Ying-Jie
    Cui, Ting
    Liu, Xuan-Yong
    JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2011, 359 (02) : 371 - 379
  • [29] The in-vitro biological properties of 3D printed poly lactic acid/akermanite composite porous scaffold for bone tissue engineering
    Arastouei, Masoud
    Khodaei, Mohammad
    Atyabi, Seyed Mohammad
    Nodoushan, Milad Jafari
    MATERIALS TODAY COMMUNICATIONS, 2021, 27
  • [30] Amorphous calcium phosphate, hydroxyapatite and poly(D,L-lactic acid) composite nanofibers: Electrospinning preparation, mineralization and in vivo bone defect repair
    Zhang, Hao
    Fu, Qi-Wei
    Sun, Tuan-Wei
    Chen, Feng
    Qi, Chao
    Wu, Jin
    Cai, Zhu-Yun
    Qian, Qi-Rong
    Zhu, Ying-Jie
    COLLOIDS AND SURFACES B-BIOINTERFACES, 2015, 136 : 27 - 36