Biomanufacturing of biomimetic three-dimensional nanofibrous multicellular constructs for tissue regeneration

被引:5
|
作者
Zhou, Yu [1 ]
Zhao, Qilong [2 ]
Wang, Min [1 ]
机构
[1] Univ Hong Kong, Dept Mech Engn, Pokfulam Rd, Hong Kong, Peoples R China
[2] Chinese Acad Sci, Inst Biomed & Hlth Engn, Shenzhen Inst Adv Technol, Shenzhen 518055, Peoples R China
基金
中国国家自然科学基金;
关键词
Biomanufacturing; Biomimetic; Electrospinning; Cell electrospraying; Tissue engineering; SCAFFOLDS; BIOMATERIALS; ALIGNMENT; COLLAGEN; RELEASE; VEGF;
D O I
10.1016/j.colsurfb.2023.113189
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Biomanufacturing of functional tissue analogues is of great importance in regenerative medicine. However, this is still highly challenging due to extreme difficulties in recreating/recapitulating complicated anatomies of body tissues that have both well-defined three-dimensional (3D) multicellular organizations and bioactive nanofibrous extracellular matrix (ECM). In the current investigation, a biomanufacturing approach via concurrent emulsion electrospinning and coaxial cell electrospraying was developed, which could fabricate 3D nanofibrous multi-cellular constructs that resemble both the multicellular organizations and bioactive nanofibrous microenviron-ments of body tissues. In the proof-of-concept study, endothelial cells (ECs) and smooth muscle cells (SMCs) were placed in respective layers of multilayer-structured constructs. The two different construct layers consisted of nanofibers providing different topographies (randomly oriented nanofibers or aligned nanofibers) and contained different growth factors (vascular endothelial growth factor or platelet-derived growth factor). The ECs and SMCs in the different construct layers showed high cell densities (> 4 x105 cells/cm2 after 4-day incubation) and high cell viabilities (> 95%). Owing to the contact guidance/stimulation by different fibrous topographies and sequential release of different growth factors, ECs and SMCs exhibited distinct morphologies (uniformly stretched plaque-shaped or directionally elongated) and displayed enhanced proliferative activities. Our bio-manufacturing approach is shown to be effective and efficient in reconstituting/replicating cell-ECM organiza-tions as well as their interactions similar to those in body tissues such as blood vessels, indicating the great promise to produce a range of tissue analogues with biomimetic structures and functions for modeling or regenerating body tissues.
引用
收藏
页数:10
相关论文
共 50 条
  • [31] Three-dimensional bioprinting biphasic multicellular living scaffold facilitates osteochondral defect regeneration
    Yu, Xingge
    Gholipourmalekabadi, Mazaher
    Wang, Xudong
    Yuan, Changyong
    Lin, Kaili
    INTERDISCIPLINARY MATERIALS, 2024, 3 (05): : 738 - 756
  • [32] Fabrication of Biomimetic Bone Tissue Using Mesenchymal Stem Cell-Derived Three-Dimensional Constructs Incorporating Endothelial Cells
    Sasaki, Jun-Ichi
    Hashimoto, Masanori
    Yamaguchi, Satoshi
    Itoh, Yoshihiro
    Yoshimoto, Itsumi
    Matsumoto, Takuya
    Imazato, Satoshi
    PLOS ONE, 2015, 10 (06):
  • [33] In vivo periodontal tissue regeneration by periodontal ligament stem cells and endothelial cells in three-dimensional cell sheet constructs
    Panduwawala, C. P.
    Zhan, X.
    Dissanayaka, W. L.
    Samaranayake, L. P.
    Jin, L.
    Zhang, C.
    JOURNAL OF PERIODONTAL RESEARCH, 2017, 52 (03) : 408 - 418
  • [34] Decellularized Three-Dimensional Biomimetic Scaffolds as In Vitro Model For Tendon And Meniscus Regeneration
    Sormani, Jordana M.
    Dognani, Melissa I.
    Vetucci, Viviann R.
    de Souza Faloni, Ana Paula
    Trovatti, Eliane
    Amaral, Andre C.
    FASEB JOURNAL, 2022, 36
  • [35] Fabrication of homogenous three-dimensional biomimetic tissue for mass spectrometry imaging
    Song, Xiaowei
    He, Jiuming
    Li, Chao
    Sun, Chenglong
    Pang, Xuechao
    Zhang, Jin
    Zang, Qingce
    Luo, Zhigang
    Li, Xin
    Zhang, Ruiping
    Abliz, Zeper
    JOURNAL OF MASS SPECTROMETRY, 2019, 54 (05): : 378 - 388
  • [36] Decellularized kidney capsule as a three-dimensional scaffold for tissue regeneration
    Khazaei, Mohammad Rasool
    Ibrahim, Rawa
    Faris, Rayan
    Bozorgi, Azam
    Khazaei, Mozafar
    Rezakhani, Leila
    CELL AND TISSUE BANKING, 2024, 25 (02) : 721 - 734
  • [37] Three-Dimensional Printing of Nanomaterial Scaffolds for Complex Tissue Regeneration
    O'Brien, Christopher M.
    Holmes, Benjamin
    Faucett, Scott
    Zhang, Lijie Grace
    TISSUE ENGINEERING PART B-REVIEWS, 2015, 21 (01) : 103 - 114
  • [38] Designed Three-Dimensional Collagen Scaffolds for Skin Tissue Regeneration
    Ahn, SeungHyun
    Yoon, Hyeon
    Kim, GeunHyung
    Kim, YunYoung
    Lee, SuHee
    Chun, Wook
    TISSUE ENGINEERING PART C-METHODS, 2010, 16 (05) : 813 - 820
  • [39] Challenges and solutions for fabrication of three-dimensional cocultures of neural cell-loaded biomimetic constructs
    Robles, Ulises A. Aregueta
    Martens, Penny J.
    Poole-Warren, Laura A.
    BIOINTERPHASES, 2021, 16 (01)
  • [40] Application of dental stem cells in three-dimensional tissue regeneration
    Hsiao, Hui-Yi
    Nien, Chung-Yi
    Hong, Hsiang-Hsi
    Cheng, Ming-Huei
    Yen, Tzung-Hai
    WORLD JOURNAL OF STEM CELLS, 2021, 13 (11): : 1610 - 1624