In vitro and in vivo effect of polycaprolactone nanofiber coating on polyethylene glycol diacrylate scaffolds for intervertebral disc repair

被引:14
作者
Khandaker, M. [1 ]
Kotturi, H. [2 ]
Progri, H. [1 ]
Tummala, S. [1 ]
Nikfarjam, S. [2 ]
Rao, P. [1 ]
Hosna, A. [1 ]
Arasu, D. T. [2 ]
Williams, W. [3 ]
Haleem, A. M. [3 ,4 ]
机构
[1] Univ Cent Oklahoma, Dept Engn & Phys, Edmond, OK 73034 USA
[2] Univ Cent Oklahoma, Dept Biol, Edmond, OK USA
[3] Univ Oklahoma, Dept Comparat Med, Hlth Sci Ctr, Edmond, OK USA
[4] Cairo Univ, Dept Orthoped, Coll Med, Cairo, Egypt
基金
美国国家卫生研究院;
关键词
electrospun nanofiber; hydrogel; polycaprolactone; polyethylene glycol diacrylate; intervertebral disc; tissue engineering; OSTEOCHONDRAL REPAIR; CARTILAGE; CELL; HYDROGELS; BONE; REGENERATION; PEGDA; MATRIX;
D O I
10.1088/1748-605X/abfd12
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Polyethylene glycol diacrylate (PEGDA) is an important class of photosensitive polymer with many tissue engineering applications. This study compared PEGDA and polycaprolactone (PCL) nanofiber matrix (NFM) coated PEGDA, referred to as PCL-PEGDA, scaffolds for their application in multiple tissue repair such as articular cartilage, nucleus pulposus of the intervertebral disc (IVD). We examined each scaffold morphology, porosity, swelling ratio, degradation, mechanical strength, and in vitro cytocompatibility properties. A defect was created in Sprague Dawley rat tail IVD by scraping native cartilage tissue and disc space, then implanting the scaffolds in the disc space for 4 weeks to evaluate in vivo efficacy of multi-tissue repair. Maintenance of disc height and creation of a new cell matrix was assessed to evaluate each scaffold's ability to repair the tissue defect. Although both PEGDA and PCL-PEGDA scaffolds showed similar porosity similar to 73%, we observed distinct topographical characteristics and a higher effect of degradation on the water-absorbing capacity for PEGDA compared to PCL-PEGDA. Mechanical tests showed higher compressive strength and modulus of PCL-PEGDA compared to PEGDA. In vitro cell studies show that the PCL NFM layer covering PEGDA improved osteoblast cell adhesion, proliferation, and migration into the PEGDA layer. In vivo studies concluded that the PEGDA scaffold alone was not ideal for implantation in rat caudal disc space without PCL nanofiber coating due to low compressive strength and modulus. In vivo results confirm that the PCL-PEGDA scaffold-maintained disc space and created a proteoglycan and collagen-rich new tissue matrix in the defect site after 4 weeks of scaffold implantation. We concluded that our developed PCL-PEGDA has the potential to be used in multi-tissue defect site repair.
引用
收藏
页数:17
相关论文
共 58 条
[41]   Controlling Fluid Diffusion and Release through Mixed-Molecular-Weight Poly(ethylene) Glycol Diacrylate (PEGDA) Hydrogels [J].
O'Donnell, Kieran ;
Boyd, Adrian ;
Meenan, Brian J. .
MATERIALS, 2019, 12 (20)
[42]   Effect of porosities of bilayered porous scaffolds on spontaneous osteochondral repair in cartilage tissue engineering [J].
Pan, Zhen ;
Duan, Pingguo ;
Liu, Xiangnan ;
Wang, Huiren ;
Cao, Lu ;
He, Yao ;
Dong, Jian ;
Ding, Jiandong .
REGENERATIVE BIOMATERIALS, 2015, 2 (01) :9-19
[43]   Mesenchymal Stem/Stromal Cells seeded on cartilaginous endplates promote Intervertebral Disc Regeneration through Extracellular Matrix Remodeling [J].
Pereira, Catarina Leite ;
Teixeira, Graciosa Q. ;
Ribeiro-Machado, Claudia ;
Caldeira, Joana ;
Costa, Madalena ;
Figueiredo, Francisco ;
Fernandes, Rui ;
Aguiar, Paulo ;
Grad, Sibylle ;
Barbosa, Mario A. ;
Goncalves, Raquel M. .
SCIENTIFIC REPORTS, 2016, 6
[44]  
Rethwisch DG, 2018, MAT SCI ENG AN INTRO
[45]   Back pain exacerbations and lost productive time costs in United States workers [J].
Ricci, Judith A. ;
Stewart, Walter F. ;
Chee, Elsbeth ;
Leotta, Carol ;
Foley, Kathleen ;
Hochberg, Marc C. .
SPINE, 2006, 31 (26) :3052-3060
[46]   Human Cartilage Repair with a Photoreactive Adhesive-Hydrogel Composite [J].
Sharma, Blanka ;
Fermanian, Sara ;
Gibson, Matthew ;
Unterman, Shimon ;
Herzka, Daniel A. ;
Cascio, Brett ;
Coburn, Jeannine ;
Hui, Alexander Y. ;
Marcus, Norman ;
Gold, Garry E. ;
Elisseeff, Jennifer H. .
SCIENCE TRANSLATIONAL MEDICINE, 2013, 5 (167)
[47]   Evaluation of the value of frozen tissue section used as "gold standard" for immunohistochemistry [J].
Shi, Shan-Rong ;
Liu, Cheng ;
Pootrakul, Llana ;
Tang, Laurie ;
Young, Andrew ;
Chen, Ryan ;
Cote, Richard J. ;
Taylor, Clive R. .
AMERICAN JOURNAL OF CLINICAL PATHOLOGY, 2008, 129 (03) :358-366
[48]   Nanofibrous yet injectable polycaprolactone-collagen bone tissue scaffold with osteoprogenitor cells and controlled release of bone morphogenetic protein-2 [J].
Subramanian, Gayathri ;
Bialorucki, Callan ;
Yildirim-Ayan, Eda .
MATERIALS SCIENCE & ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2015, 51 :16-27
[49]   Bioactive electrospun scaffold for annulus fibrosus repair and regeneration [J].
Vadala, Gianluca ;
Mozetic, Pamela ;
Rainer, Alberto ;
Centola, Matteo ;
Loppini, Mattia ;
Trombetta, Marcella ;
Denaro, Vincenzo .
EUROPEAN SPINE JOURNAL, 2012, 21 :S20-S26
[50]   Reinforcement of hydrogels using three-dimensionally printed microfibres [J].
Visser, Jetze ;
Melchels, Ferry P. W. ;
Jeon, June E. ;
van Bussel, Erik M. ;
Kimpton, Laura S. ;
Byrne, Helen M. ;
Dhert, Wouter J. A. ;
Dalton, Paul D. ;
Hutmacher, Dietmar W. ;
Malda, Jos .
NATURE COMMUNICATIONS, 2015, 6