Self-assembly of electrospun nanofibers into gradient honeycomb structures

被引:41
作者
Yao, Tianyu [1 ]
Chen, Honglin [1 ]
Samal, Pinak [1 ]
Giselbrecht, Stefan [1 ]
Baker, Matthew B. [1 ]
Moroni, Lorenzo [1 ]
机构
[1] Maastricht Univ, MERLN Inst Technol Inspired Regenerat Med, Complex Tissue Regenerat Dept, NL-6229 ER Maastricht, Netherlands
关键词
Electrospun; Self-assembly; Gradient; Honeycomb; POLYMER NANOFIBERS; PORE-SIZE; INTRACELLULAR DELIVERY; DIFFERENTIATION; FIBERS; FABRICATION; SURFACE; CELLS; SCAFFOLDS; PATTERNS;
D O I
10.1016/j.matdes.2019.107614
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The self-assembly approach is a technically simple, rapid, and direct way to realize selective deposition of electrospun nanofibers. In the present study, we aimed to fabricate gradient polycaprolactone (PCL) honeycomb meshes by electrospinning. We demonstrated for the first time the ability to effectively fabricate a self-assembled gradient honeycomb pattern in electrospun meshes. Different honeycomb patterns were successfully fabricated by controlling the electrospinning conditions. The working distance was found to be the most important factor for the formation of gradient honeycomb structures. At a smaller working distance of 12 cm, gradients honeycomb patterns were successfully fabricated. The pore diameter of the obtained gradient honeycomb structures spanned a range from 800 mu m to 300 mu m. The average depth of gradient honeycomb was 123 +/- 56 mu m. These findings are interesting and particularly useful for us to optimize the design of gradients honeycomb scaffolds for interface tissue regeneration. (c) 2019 The Authors. Published by Elsevier Ltd.
引用
收藏
页数:8
相关论文
共 57 条
[21]   Biomimetic tendon extracellular matrix composite gradient scaffold enhances ligament-to-bone junction reconstruction [J].
Liu, Huanhuan ;
Yang, Long ;
Zhang, Erchen ;
Zhang, Rui ;
Cai, Dandan ;
Zhu, Shouan ;
Ran, Jisheng ;
Bunpetch, Varitsara ;
Cai, Youzhi ;
Heng, Boon Chin ;
Hu, Yejun ;
Dai, Xuesong ;
Chen, Xiao ;
Ouyang, Hongwei .
ACTA BIOMATERIALIA, 2017, 56 :129-140
[22]   Controlling numbers and sizes of beads in electrospun nanofibers [J].
Liu, Yong ;
He, Ji-Huan ;
Yu, Jian-yong ;
Zeng, Hong-mei .
POLYMER INTERNATIONAL, 2008, 57 (04) :632-636
[23]   High prevalence of knee osteoarthritis, pain, and functional limitations in female soccer players twelve years after anterior cruciate ligament injury [J].
Lohmander, LS ;
Östenberg, A ;
Englund, M ;
Roos, H .
ARTHRITIS AND RHEUMATISM, 2004, 50 (10) :3145-3152
[24]   Biomimetic materials for tissue engineering [J].
Ma, Peter X. .
ADVANCED DRUG DELIVERY REVIEWS, 2008, 60 (02) :184-198
[25]   Graded/Gradient Porous Biomaterials [J].
Miao, Xigeng ;
Sun, Dan .
MATERIALS, 2010, 3 (01) :26-47
[26]   The transition from stiff to compliant materials in squid beaks [J].
Miserez, Ali ;
Schneberk, Todd ;
Sun, Chengjun ;
Zok, Frank W. ;
Waite, J. Herbert .
SCIENCE, 2008, 319 (5871) :1816-1819
[27]   Fabrication of a silver-ragwort-leaf-like super-hydrophobic micro/nanoporous fibrous mat surface by electrospinning [J].
Miyauchi, Yasuhiro ;
Ding, Bin ;
Shiratori, Seimei .
NANOTECHNOLOGY, 2006, 17 (20) :5151-5156
[28]   Bioinspired pH-responsive polymers for the intracellular delivery of biomolecular drugs [J].
Murthy, N ;
Campbell, J ;
Fausto, N ;
Hoffman, AS ;
Stayton, PS .
BIOCONJUGATE CHEMISTRY, 2003, 14 (02) :412-419
[29]   Design and synthesis of pH-responsive polymeric carriers that target uptake and enhance the intracellular delivery of oligonucleotides [J].
Murthy, N ;
Campbell, J ;
Fausto, N ;
Hoffman, AS ;
Stayton, PS .
JOURNAL OF CONTROLLED RELEASE, 2003, 89 (03) :365-374
[30]   Electrospun Honeycomb as Nests for Controlled Osteoblast Spatial Organization [J].
Nedjari, Salima ;
Eap, Sandy ;
Hebraud, Anne ;
Wittmer, Corinne R. ;
Benkirane-Jessel, Nadia ;
Schlatter, Guy .
MACROMOLECULAR BIOSCIENCE, 2014, 14 (11) :1580-1589