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
  • [21] Biomedical Applications of Nanofiber Scaffolds in Tissue Engineering
    Hussain, Taqadus
    Garg, Tarun
    Goyal, Amit K.
    Rath, Goutam
    JOURNAL OF BIOMATERIALS AND TISSUE ENGINEERING, 2014, 4 (08) : 600 - 623
  • [22] Multifunctional nanofiber scaffolds for tissue engineering.
    Khan, SS
    Fertala, A
    Ko, FK
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2003, 226 : U436 - U436
  • [23] Effect of thickness of nanofiber scaffolds in tissue engineering
    Ghasemi-Mobarake, L.
    Morshed, M.
    Nasr-Isfahani, M. H.
    Fesharaki, M. A.
    Karbalayi, K.
    Baharvand, H.
    TISSUE ENGINEERING, 2007, 13 (07): : 1680 - 1680
  • [24] Nanofiber-based scaffolds for tissue engineering
    Ashammakhi, N.
    Ndreu, A.
    Yang, Y.
    Ylikauppila, H.
    Nikkola, L.
    EUROPEAN JOURNAL OF PLASTIC SURGERY, 2012, 35 (02) : 135 - 149
  • [25] Nanofiber-based scaffolds for tissue engineering
    N. Ashammakhi
    A. Ndreu
    Y. Yang
    H. Ylikauppila
    L. Nikkola
    European Journal of Plastic Surgery, 2012, 35 (2) : 135 - 149
  • [26] Nanofiber-based Scaffolds for Tissue Engineering
    Kobayashi, Hisatoshi
    Yokoyama, Yoshiro
    Yoshikawa, Chiaki
    Igarashi, Satoshi
    Hattori, Shinya
    Honda, Takako
    Koyama, Hiroyuki
    Takato, Tsuyoshi
    BIOMATERIALS IN ASIA: IN COMMEMORATION OF THE 1ST ASIAN BIOMATERIALS CONGRESS, 2008, : 182 - +
  • [27] Polycaprolactone/oligomer compound scaffolds for cardiac tissue engineering
    Reddy, Chaganti Srinivasa
    Venugopal, Jayarama Reddy
    Ramakrishna, Seeram
    Zussman, Eyal
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2014, 102 (10) : 3713 - 3725
  • [28] Polycaprolactone-MXene Nanofibrous Scaffolds for Tissue Engineering
    Diedkova, Kateryna
    Pogrebnjak, Alexander D.
    Kyrylenko, Sergiy
    Smyrnova, Kateryna
    Buranich, Vladimir V.
    Horodek, Pawel
    Zukowski, Pawel
    Koltunowicz, Tomasz N.
    Galaszkiewicz, Piotr
    Makashina, Kristina
    Bondariev, Vitaly
    Sahul, Martin
    Caplovicova, Maria
    Husak, Yevheniia
    Simka, Wojciech
    Korniienko, Viktoriia
    Stolarczyk, Agnieszka
    Blacha-Grzechnik, Agata
    Balitskyi, Vitalii
    Zahorodna, Veronika
    Baginskiy, Ivan
    Riekstina, Una
    Gogotsi, Oleksiy
    Gogotsi, Yury
    Pogorielov, Maksym
    ACS APPLIED MATERIALS & INTERFACES, 2023, 15 (11) : 14033 - 14047
  • [29] Composite scaffolds in tissue engineering
    Safinsha, S.
    Ali, Mubarak M.
    MATERIALS TODAY-PROCEEDINGS, 2020, 24 : 2318 - 2329
  • [30] Structuring electrospun polycaprolactone nanofiber tissue scaffolds by femtosecond laser ablation
    Choi, Hae Woon
    Johnson, Jed K.
    Nam, Jin
    Farson, Dave F.
    Lannutti, John
    JOURNAL OF LASER APPLICATIONS, 2007, 19 (04) : 225 - 231