The construction of three-dimensional composite fibrous macrostructures with nanotextures for biomedical applications

被引:45
|
作者
Song, Juqing [1 ,2 ]
Gao, Huichang [1 ,2 ]
Zhu, Guanglin [1 ,2 ]
Cao, Xiaodong [1 ,2 ]
Shi, Xuetao [2 ]
Wang, Yingjun [1 ]
机构
[1] South China Univ Technol, Natl Engn Res Ctr Tissue Restorat & Reconstruct, Guangzhou 510641, Guangdong, Peoples R China
[2] South China Univ Technol, Sch Mat Sci & Engn, Dept Biomed Engn, Guangzhou 510641, Guangdong, Peoples R China
基金
中国国家自然科学基金;
关键词
three-dimensional macrostructures; composite nanofibres; electrospinning; POTENTIAL APPLICATION; STEM-CELLS; NANOFIBROUS SCAFFOLDS; POLYMER NANOFIBERS; DRUG-DELIVERY; ELECTROSPUN; POLYANILINE; FABRICATION; FIBERS; DIFFERENTIATION;
D O I
10.1088/1758-5090/8/3/035009
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
The development of modern biomedical nanotechnology requires three-dimensional macrostructures with nanotextures to meet the requirements for practical applications in intricate biological systems. Additionally, the restoration and regeneration of some specific body tissues and organs rely on the function of conductive polymers, which can provide electrical cues for cells. In this study, we fabricated three-dimensional composite nanofibre macrostructures of polycaprolactone (PCL) with different concentrations of polyaniline (PANi) by employing an improved electrospinning technology with a specially designed collector. The 3D structures possessed cap-like macrostructures with centimetre-scale thickness and interconnected pore nanotextures with nanometre-scale nanofibres. To estimate the biocompatibility of the 3D PCL/PANi composite nanofibre macrostructures, mouse myoblasts (C2C12 cells) were cultured as model cells. The initial responses of C2C12 cells to the 3D PCL/PANi composite macrostructures were significantly superior to those to pure PCL, that is, the cells exhibited typical myoblast-like morphologies with obvious pseudopodia and the moderate incorporation (less than 2.0 wt%) of conductive PANi facilitated cell proliferation, which indicated that PANi has appreciable cell affinity. Moreover, the addition of conductive PANi to the 3D composite nanofibre macrostructures considerably enhanced myoblast differentiation and myotube maturation. These results suggest that electrospun 3D PCL/PANi composite nanofibre macrostructures would have promising applications in tissue engineering.
引用
收藏
页数:14
相关论文
共 50 条
  • [11] Three-Dimensional Graphene-Based Macrostructures for Electrocatalysis
    Cui, Huijuan
    Guo, Yibo
    Zhou, Zhen
    SMALL, 2021, 17 (22)
  • [12] Three-dimensional multilayered fibrous constructs for wound healing applications
    Reis, Tiago C.
    Castleberry, Steven
    Rego, Ana M. B.
    Aguiar-Ricardo, Ana
    Hammond, Paula T.
    BIOMATERIALS SCIENCE, 2016, 4 (02) : 319 - 330
  • [13] Three-dimensional graphene-based macrostructures for sustainable energy applications and climate change mitigation
    Chowdhury, Shamik
    Balasubramanian, Rajasekhar
    PROGRESS IN MATERIALS SCIENCE, 2017, 90 : 224 - 275
  • [14] Diverse Applications of Three-Dimensional Printing in Biomedical Engineering: A Review
    Agarwal, Prachi
    Arora, Gargi
    Panwar, Amit
    Mathur, Vidhi
    Srinivasan, Varadharajan
    Pandita, Deepti
    Vasanthan, Kirthanashri S. S.
    3D PRINTING AND ADDITIVE MANUFACTURING, 2023, 10 (05) : 1140 - 1163
  • [15] Environmental applications of metal-organic framework-based three-dimensional macrostructures: a review
    Chen, Cheng
    Shen, Liguo
    Wang, Boya
    Lu, Xinchun
    Raza, Saleem
    Xu, Jiujing
    Li, Bisheng
    Lin, Hongjun
    Chen, Banglin
    CHEMICAL SOCIETY REVIEWS, 2025, 54 (05)
  • [16] Biomedical applications of three-dimensional bioprinted craniofacial tissue engineering
    Charbe, Nitin Bharat
    Tambuwala, Murtaza
    Palakurthi, Sushesh Srivatsa
    Warokar, Amol
    HronniC-JahjefendiC, Altijana
    Bakshi, Hamid
    Zacconi, Flavia
    Mishra, Vijay
    Khadse, Saurabh
    Aljabali, Alaa A.
    El-Tanani, Mohamed
    Serrano-Aroca, Angel
    Palakurthi, Srinath
    BIOENGINEERING & TRANSLATIONAL MEDICINE, 2023, 8 (01)
  • [17] The Current Versatility of Polyurethane Three-Dimensional Printing for Biomedical Applications
    Griffin, Michelle
    Castro, Nathan
    Bas, Onur
    Saifzadeh, Siamak
    Butler, Peter
    Hutmacher, Dietmar Werner
    TISSUE ENGINEERING PART B-REVIEWS, 2020, 26 (03) : 272 - 283
  • [18] Size effects of graphene oxide nanosheets on the construction of three-dimensional graphene-based macrostructures as adsorbents
    Shen, Yi
    Zhu, Xiaoying
    Chen, Baoliang
    JOURNAL OF MATERIALS CHEMISTRY A, 2016, 4 (31) : 12106 - 12118
  • [19] Biomedical Applications of Tissue Clearing and Three-Dimensional Imaging in Health and Disease
    Gomez-Gaviro, Maria Victoria
    Sanderson, Daniel
    Ripoll, Jorge
    Desco, Manuel
    ISCIENCE, 2020, 23 (08)
  • [20] THREE-DIMENSIONAL MICRO AND NANOCHIPS FABRICATED BY FEMTOSEDOND LASER FOR BIOMEDICAL APPLICATIONS
    Sugioka, Koji
    Cheng, Ya
    Midorikawa, Katsumi
    PHOTON-BASED NANOSCIENCE AND NANOBIOTECHNOLOGY, 2006, 239 : 307 - 332