Creating Biomimetic Anisotropic Architectures with Co-Aligned Nanofibers and Macrochannels by Manipulating Ice Crystallization

被引:94
作者
Fan, Linpeng [1 ]
Li, Jing-Liang [1 ]
Cai, Zengxiao [1 ]
Wang, Xungai [1 ]
机构
[1] Deakin Univ, Inst Frontier Mat, Geelong, Vic 3216, Australia
基金
澳大利亚研究理事会;
关键词
anisotropic 3D scaffolds; aligned nanofibers; aligned macrochannels and macropores; silk fibroin nanofibers; alginate nanofibers; gelatin nanofibers; neurites; vascularization; TISSUE ENGINEERING SCAFFOLDS; CELL; FABRICATION; TENDON; SILK; MORPHOGENESIS; INFILTRATION; REGENERATION; STATE;
D O I
10.1021/acsnano.8b01648
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The continuous evolution of tissue engineering scaffolds has been driven by the desire to recapitulate structural features and functions of the natural extracellular matrix (ECM). However, it is still an extreme challenge to create a three-dimensional (3D) scaffold with both aligned nanofibers and aligned interconnected macrochannels to mimic the ECM of anisotropic tissues. Here, we develop a facile strategy to create such a scaffold composed of oriented nanofibers and interconnected macrochannels in the same direction, with various natural polymers typically used for tissue regeneration. The orientation of nanofibers and interconnected macrochannels can be easily tuned by manipulating ice crystallization. The scaffold demonstrates both structural and functional features similar to the natural ECM of anisotropic tissues. Taking silk fibroin as an example, the scaffold with radially oriented nanofibers and interconnected macrochannels is more efficient for capturing cells and promoting the growth of both nonadherent embryonic dorsal root ganglion neurons (DRGs) and adherent human umbilical vein endothelial cells (HUVECs) compared to the widely used scaffold types. Interestingly, DRGs and neurites on the SF scaffold demonstrate a 3D growth mode similar to that of natural nerve tissues. Furthermore, the coaligned nanofibers and macrochannels of the scaffold can direct HUVECs to assemble into blood vessel-like structures and their collagen deposition in their arrangement direction. The strategy could inspire the design and development of multifunctional 3D scaffolds with desirable structural features for engineering different tissues.
引用
收藏
页码:5780 / 5790
页数:11
相关论文
共 39 条
[1]   Rational Design of Prevascularized Large 3D Tissue Constructs Using Computational Simulations and Biofabrication of Geometrically Controlled Microvessels [J].
Arrigoni, Chiara ;
Bongio, Matilde ;
Talo, Giuseppe ;
Bersini, Simone ;
Enomoto, Junko ;
Fukuda, Junji ;
Moretti, Matteo .
ADVANCED HEALTHCARE MATERIALS, 2016, 5 (13) :1617-1626
[2]   Fabrication of porous polysaccharide-based scaffolds using a combined freeze-drying/cross-linking process [J].
Autissier, Aude ;
Le Visage, Catherine ;
Pouzet, Cecile ;
Chaubet, Frederic ;
Letourneur, Didier .
ACTA BIOMATERIALIA, 2010, 6 (09) :3640-3648
[3]   Engineering hybrid polymer-protein super-aligned nanofibers via rotary jet spinning [J].
Badrossamay, Mohammad R. ;
Balachandran, Kartik ;
Capulli, Andrew K. ;
Golecki, Holly M. ;
Agarwal, Ashutosh ;
Goss, Josue A. ;
Kim, Hansu ;
Shin, Kwanwoo ;
Parker, Kevin Kit .
BIOMATERIALS, 2014, 35 (10) :3188-3197
[4]   The potential to improve cell infiltration in composite fiber-aligned electrospun scaffolds by the selective removal of sacrificial fibers [J].
Baker, Brendon M. ;
Gee, Albert O. ;
Metter, Robert B. ;
Nathan, Ashwin S. ;
Marklein, Ross A. ;
Burdick, Jason A. ;
Mauck, Robert L. .
BIOMATERIALS, 2008, 29 (15) :2348-2358
[5]   Nanofiber technology: Designing the next generation of tissue engineering scaffolds [J].
Barnes, Catherine P. ;
Sell, Scott A. ;
Boland, Eugene D. ;
Simpson, David G. ;
Bowlin, Gary L. .
ADVANCED DRUG DELIVERY REVIEWS, 2007, 59 (14) :1413-1433
[6]   Control of Nanoparticle Release Kinetics from 3D Printed Hydrogel Scaffolds [J].
Baumann, Bernhard ;
Jungst, Tomasz ;
Stichler, Simone ;
Feineis, Susanne ;
Wiltschka, Oliver ;
Kuhlmann, Matthias ;
Linden, Mika ;
Groll, Juergen .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2017, 56 (16) :4623-4628
[7]   A 3D vascularized bone remodeling model combining osteoblasts and osteoclasts in a CaP nanoparticle-enriched matrix [J].
Bongio, Matilde ;
Lopa, Silvia ;
Gilardi, Mara ;
Bersini, Simone ;
Moretti, Matteo .
NANOMEDICINE, 2016, 11 (09) :1073-1091
[8]   Substrate stress relaxation regulates cell spreading [J].
Chaudhuri, Ovijit ;
Gu, Luo ;
Darnell, Max ;
Klumpers, Darinka ;
Bencherif, Sidi A. ;
Weaver, James C. ;
Huebsch, Nathaniel ;
Mooney, David J. .
NATURE COMMUNICATIONS, 2015, 6
[9]   Regenerated Bombyx silk solutions studied with rheometry and FTIR [J].
Chen, X ;
Knight, DP ;
Shao, ZZ ;
Vollrath, F .
POLYMER, 2001, 42 (25) :9969-9974
[10]  
Cines DB, 1998, BLOOD, V91, P3527