Composite Tissue Engineering on Polycaprolactone Nanofiber Scaffolds

被引:59
作者
Reed, Courtney R. [1 ]
Han, Li [2 ]
Andrady, Anthony [2 ]
Caballero, Montserrat [1 ]
Jack, Megan C. [3 ]
Collins, James B. [4 ]
Saba, Salim C. [1 ]
Loboa, Elizabeth G. [5 ]
Cairns, Bruce A. [3 ]
van Aalst, John A. [1 ]
机构
[1] Univ N Carolina, Div Plast Surg, Chapel Hill, NC 27599 USA
[2] Res Triangle Int, Engn Unit, Chapel Hill, NC USA
[3] Univ N Carolina, Dept Surg, Chapel Hill, NC 27599 USA
[4] Univ N Carolina, Sch Med, Chapel Hill, NC 27599 USA
[5] Univ N Carolina, N Carolina State Univ, Joint Dept Bioengn, Chapel Hill, NC 27599 USA
关键词
nanofiber scaffolds; nanotechnology; composite tissue engineering; keratinocytes; fibroblasts; osteoinduction; fat-derived stem cells; periosteum; periosteal cells; NORMAL HUMAN KERATINOCYTES; CULTURED HUMAN EPITHELIUM; GROWTH-FACTOR EXPRESSION; BLOOD STEM-CELLS; IN-VITRO; OSTEOGENIC DIFFERENTIATION; ORGANOTYPIC CULTURES; PERIOSTEAL CELLS; BONE; ANGIOGENESIS;
D O I
10.1097/SAP.0b013e31818e48bf
中图分类号
R61 [外科手术学];
学科分类号
摘要
Tissue engineering has largely focused on single tissue-type reconstruction (such as bone): however, the basic unit Of healing in any clinically relevant scenario is a compound tissue type (such Lis bone, periosteum, and skin). Nanofibers are submicron fibrils that mimic the extracellular matrix, promoting cellular adhesion, proliferation, and migration. Stern cell manipulation on nanofiber scaffolds holds significant promise for future tissue engineering. This work represents our initial efforts to create the building blocks for composite tissue reflecting the basic unit of healing, Polycaprolactone (PCL) nanofibers were electrospun using standard techniques. Human foreskin fibroblasts, murine keratinocytes, and periosteal cells (4-mm punch biopsy) harvested front children undergoing palate repair were grown in appropriate media oil PCL nanofibers. Human fat-derived mesenchymal stem cells were osteoinduced on PCL nanofibers. Cell growth was assessed with fluorescent viability staining; cocultured cells were differentiated using antibodies to fibroblast- and keratinocyte-specific Surface markers. Osteoinduction was assessed with Alizarin red S. PCL nanofiber scaffolds supported robust growth of fibroblasts, keratinocytes. and periosteal cells. Cocultured periosteal cells (with fibroblasts) and keratinocytes showed improved longevity of the keratinocytes, though growth of these cell types was randomly distributed throughout the scaffold. Robust osteoinduction was noted on PCL nanofibers. Composite tissue engineering using PCL nanofiber scaffolds is possible, though the major obstacles to the trilaminar construct are maintaining an appropriate interface between the tissue types and neovascularization of the composite structure.
引用
收藏
页码:505 / 512
页数:8
相关论文
共 50 条
  • [31] Fabrication and characterization of biodegradable composite scaffolds for Tissue Engineering
    Serra, T.
    Navarro, M.
    Planell, J. A.
    INNOVATIVE DEVELOPMENTS ON VIRTUAL AND PHYSICAL PROTOTYPING, 2012, : 67 - 72
  • [32] Polymer-based composite scaffolds for tissue engineering
    Gloria, Antonio
    De Santis, Roberto
    Ambrosio, Luigi
    JOURNAL OF APPLIED BIOMATERIALS & BIOMECHANICS, 2010, 8 (02) : 57 - 67
  • [33] Cellulose-Based Scaffolds for Tissue Engineering
    Afshang, Amir
    Jalali, Somayeh
    Amiryaghoubi, Nazanin
    IRANIAN JOURNAL OF CHEMISTRY & CHEMICAL ENGINEERING-INTERNATIONAL ENGLISH EDITION, 2024, 43 (02): : 499 - 521
  • [34] Exosomes and exosome composite scaffolds in periodontal tissue engineering
    Wang, Tingyu
    Zhou, Yanxing
    Zhang, Wenwen
    Xue, Yuanye
    Xiao, Ziteng
    Zhou, Yanfang
    Peng, Xinsheng
    FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY, 2024, 11
  • [35] Promotion of human mesenchymal stem cell differentiation on bioresorbable polycaprolactone/biphasic calcium phosphate composite scaffolds for bone tissue engineering
    Shin, Young Min
    Park, Jong-Seok
    Jeong, Sung In
    An, Sung-Jun
    Gwon, Hui-Jeong
    Lim, Youn-Mook
    Nho, Young-Chang
    Kim, Chong-Yeal
    BIOTECHNOLOGY AND BIOPROCESS ENGINEERING, 2014, 19 (02) : 341 - 349
  • [36] Fabrication of polycaprolactone/zirconia nanofiber scaffolds using electrospinning technique
    Thakare, V. G.
    Joshi, P. A.
    Godse, R. R.
    Bhatkar, V. B.
    Wadegaokar, P. A.
    Omanwar, S. K.
    JOURNAL OF POLYMER RESEARCH, 2017, 24 (12)
  • [37] Promotion of human mesenchymal stem cell differentiation on bioresorbable polycaprolactone/biphasic calcium phosphate composite scaffolds for bone tissue engineering
    Young Min Shin
    Jong-Seok Park
    Sung In Jeong
    Sung-Jun An
    Hui-Jeong Gwon
    Youn-Mook Lim
    Young-Chang Nho
    Chong-Yeal Kim
    Biotechnology and Bioprocess Engineering, 2014, 19 : 341 - 349
  • [38] Polymeric Scaffolds for Tissue Engineering
    Li, Xiaoming
    Akasaka, Tsukasa
    Dunne, Nicholas
    INTERNATIONAL JOURNAL OF POLYMER SCIENCE, 2014, 2014
  • [39] Regenerated cellulose nanofiber reinforced chitosan hydrogel scaffolds for bone tissue engineering
    Maharjan, Bikendra
    Park, Jeesoo
    Kaliannagounder, Vignesh Krishnamoorthi
    Awasthi, Ganesh Prasad
    Joshi, Mahesh Kumar
    Park, Chan Hee
    Kim, Cheol Sang
    CARBOHYDRATE POLYMERS, 2021, 251 (251)
  • [40] Tissue engineering of annulus fibrosus using electrospun fibrous scaffolds with aligned polycaprolactone fibers
    Koepsell, Laura
    Remund, Tyler
    Bao, Jing
    Neufeld, Daniel
    Fong, Hao
    Deng, Ying
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2011, 99A (04) : 564 - 575