Tailoring PLLA scaffolds for tissue engineering applications: Morphologies for 2D and 3D cell cultures

被引:0
|
作者
F. Carfì Pavia
V. La Carrubba
V. Brucato
G. Ghersi
机构
[1] Università di Palermo,Chemical Engineering Department
[2] Università di Palermo,Department of Cellular and Developmental Biology
关键词
Tissue engineering; Dermal reconstruction; Cell coculture; TIPS;
D O I
暂无
中图分类号
学科分类号
摘要
PLLA scaffold suitable for dermis regeneration were realized by Thermally Induced Phase Separation (TIPS) starting from a ternary solution PLLA/dioxane/water. The reconstruction of a complex tissues as the dermis implies the use of different cellular types (coculture), with different growth behaviour (2D vs. 3D). The scaffolds present an homogeneous porous surface to allow the keratinocytes 2D growth and a porous internal structure for the fibroblasts 3D growth. Our results show that the porosity of the surface can be tuned by changing the chemical nature of the sample holder (aluminium, teflon, polypropylene). A large variety of morphologies, in terms of average pore size and interconnection were obtained upon modifying the demixing time and temperature. WAXD analysis and DSC scanning tests showed only slight differences among the scaffolds prepared at the various conditions. Finally, a biocompatibility test was carried out by using human fibroblast and keratinocytes, indicating a good proliferation of the cells both on the surface and in the bulk of the scaffold.
引用
收藏
页码:717 / 720
页数:3
相关论文
共 50 条
  • [31] 3D printed polylactic acid nanocomposite scaffolds for tissue engineering applications
    Alam, Fahad
    Varadarajan, K. M.
    Kumar, S.
    POLYMER TESTING, 2020, 81
  • [32] Electrospinning nanofibers to 1D, 2D, and 3D scaffolds and their biomedical applications
    Zhong, Huiling
    Huang, Jun
    Wu, Jun
    Du, Jianhang
    NANO RESEARCH, 2022, 15 (02) : 787 - 804
  • [33] Electrospinning nanofibers to 1D, 2D, and 3D scaffolds and their biomedical applications
    Huiling Zhong
    Jun Huang
    Jun Wu
    Jianhang Du
    Nano Research, 2022, 15 : 787 - 804
  • [34] 3D printed foamed scaffolds for tissue engineering
    Esposito, Claudio
    Mazio, Claudia
    Cesarelli, Giuseppe
    Tammaro, Daniele
    Netti, Paolo Antonio
    Maffettone, Pier Luca
    TISSUE ENGINEERING PART A, 2023, 29 (13-14)
  • [35] 3D Printing of Microspheres for Tissue Engineering Scaffolds
    Lohfeld, S.
    Salash, J. R.
    McHugh, P. E.
    Detamore, M. S.
    TISSUE ENGINEERING PART A, 2015, 21 : S340 - S340
  • [36] 3D printing of PLGA scaffolds for tissue engineering
    Mironov, Anton V.
    Grigoryev, Aleksey M.
    Krotova, Larisa I.
    Skaletsky, Nikolaj N.
    Popov, Vladimir K.
    Sevastianov, Viktor I.
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2017, 105 (01) : 104 - 109
  • [37] 3D printing of bone tissue engineering scaffolds
    Wang, Chong
    Huang, Wei
    Zhou, Yu
    He, Libing
    He, Zhi
    Chen, Ziling
    He, Xiao
    Tian, Shuo
    Liao, Jiaming
    Lu, Bingheng
    Wei, Yen
    Wang, Min
    BIOACTIVE MATERIALS, 2020, 5 (01) : 82 - 91
  • [39] Mass transfer aspects of 3D cell cultures in tissue engineering
    Mekala, Naveen Kumar
    Baadhe, Rama Raju
    Potumarthi, Ravichandra
    ASIA-PACIFIC JOURNAL OF CHEMICAL ENGINEERING, 2014, 9 (03) : 318 - 329
  • [40] Synthetic scaffolds for 3D cell cultures and organoids: applications in regenerative medicine
    Marchini, Amanda
    Gelain, Fabrizio
    CRITICAL REVIEWS IN BIOTECHNOLOGY, 2022, 42 (03) : 468 - 486