Engineered Nanotopography on the Microfibers of 3D-Printed PCL Scaffolds to Modulate Cellular Responses and Establish an In Vitro Tumor Model

被引:14
|
作者
Jing, Linzhi [1 ,2 ]
Wang, Xiang [1 ]
Leng, Bin [2 ]
Zhan, Ningping [2 ]
Liu, Hang [1 ,2 ]
Wang, Shifei [2 ]
Lu, Yuyun [2 ]
Sun, Jie [3 ]
Huang, Dejian [1 ,2 ]
机构
[1] Natl Univ Singapore Suzhou Res Inst, Suzhou 215123, Jiangsu, Peoples R China
[2] Natl Univ Singapore, Dept Food Sci & Technol, Singapore 117542, Singapore
[3] Xian Jiaotong Liverpool Univ, Dept Mechatron & Robot, Suzhou 215123, Jiangsu, Peoples R China
关键词
electrohydrodynamic jet printing; PCL; scaffold; nanotopography; in vitro 3D tumor model; ELECTROSPUN PLLA MICROFIBERS; FOCAL ADHESION; CANCER-CELLS; NANOSCALE; DIFFERENTIATION; CULTURE; TOOL;
D O I
10.1021/acsabm.0c01243
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Scaffold-based three-dimensional (3D) cell culture systems have gained increased interest in cell biology, tissue engineering, and drug screening fields as a replacement of two- dimensional (2D) monolayer cell culture and as a way to provide biomimetic extracellular matrix environments. In this study, microscale fibrous scaffolds were fabricated via electrohydrodynamic printing, and nanoscale features were created on the fiber surface by simply leaching gliadin of poly(epsilon-caprolactone) (PCL)/gliadin composites in ethanol solution. The microstructure of the printed scaffolds could be precisely controlled by printing parameters, and the surface nanotopography of the printed fiber could be tuned by varying the PCL/gliadin ratios. By seeding mouse embryonic fibroblast (NIH/3T3) cells and human nonsmall cell lung cancer (A549) cells on the printed scaffolds, the cellular responses showed that the fiber nanotopography on printed scaffolds efficiently favored cell adhesion, migration, proliferation, and tissue formation. Quantitative analysis of the transcript expression levels of A549 cells seeded on nanoporous scaffolds further revealed the upregulation of integrin-/31, focal adhesion kinase, Ki-67, E-cadherin, and epithelial growth factor receptors over what was observed in the cells grown on the pure PCL scaffold. Furthermore, a significant difference was found in the relevant biomarker expression on the developed scaffolds compared with that in the monolayer culture, demonstrating the potential of cancer cell-seeded scaffolds as 3D in vitro tumor models for cancer research and drug screening.
引用
收藏
页码:1381 / 1394
页数:14
相关论文
共 50 条
  • [1] 3D-printed PCL scaffolds for the cultivation of mesenchymal stem cells
    Steffens, Daniela
    Rezende, Rodrigo Alvarenga
    Santi, Bruna
    Alencar de Sena Pereira, Frederico David
    Inforcatti Neto, Paulo
    Lopes da Silva, Jorge Vicente
    Pranke, Patricia
    JOURNAL OF APPLIED BIOMATERIALS & FUNCTIONAL MATERIALS, 2016, 14 (01) : E19 - E25
  • [2] Development of meniscus-inspired 3D-printed PCL scaffolds engineered with chitosan/extracellular matrix hydrogel
    Asgarpour, Rahil
    Masaeli, Elahe
    Kermani, Shabnam
    POLYMERS FOR ADVANCED TECHNOLOGIES, 2021, 32 (12) : 4721 - 4732
  • [3] 3D-Printed PCL Scaffolds Combined with Juglone for Skin Tissue Engineering
    Ayran, Musa
    Dirican, Akif Yahya
    Saatcioglu, Elif
    Ulag, Songul
    Sahin, Ali
    Aksu, Burak
    Croitoru, Alexa-Maria
    Ficai, Denisa
    Gunduz, Oguzhan
    Ficai, Anton
    BIOENGINEERING-BASEL, 2022, 9 (09):
  • [4] In Vitro Osteosarcoma Models Based on 3D-Printed Composite Scaffolds to Reveal Cellular Responses, Molecular Mechanisms and Predictive Biomarkers
    Wang, Mei-Ling
    Chen, Xue-Yu
    Xu, Nian-Yuan
    Li, Jun
    Tang, Ruizhi
    Liu, Xi-Qiu
    ACS MATERIALS LETTERS, 2023, 6 (01): : 240 - 249
  • [5] 3D-Printed PCL/rGO Conductive Scaffolds for Peripheral Nerve Injury Repair
    Vijayavenkataraman, Sanjairaj
    Thaharah, Siti
    Zhang, Shun
    Lu, Wen Feng
    Fuh, Jerry Ying Hsi
    ARTIFICIAL ORGANS, 2019, 43 (05) : 515 - 523
  • [6] Effect of Icariin on Engineered 3D-Printed Porous Scaffolds for Cartilage Repair
    Kankala, Ranjith Kumar
    Lu, Feng-Jun
    Liu, Chen-Guang
    Zhang, Shan-Shan
    Chen, Ai-Zheng
    Wang, Shi-Bin
    MATERIALS, 2018, 11 (08)
  • [7] VORONOI DESIGN OF ADDITIVELY MANUFACTURED 3D-PRINTED PCL-HA SCAFFOLDS: COMPREHENSIVE IN VITRO AND IN VIVO CHARACTERIZATION
    Laubach, Markus
    Savi, Flavia Medeiros
    Herath, Buddhi
    Suresh, Sinduja
    Saifzadeh, Siamak
    Dargaville, Bronwin L.
    McGovern, Jacqui
    Wille, Marie-Luise
    Hutmacher, Dietmar W.
    TISSUE ENGINEERING PART A, 2023, 29 (11-12) : 422 - 423
  • [8] Quantitative analysis of the role of nanohydroxyapatite (nHA) on 3D-printed PCL/nHA composite scaffolds
    Kim, Myoung Hwan
    Yun, Chulhee
    Chalisserry, Elna Paul
    Lee, Yong Wook
    Kang, Hyun Wook
    Park, Sang-Hyug
    Jung, Won-Kyo
    Oh, Junghwan
    Nam, Seung Yun
    MATERIALS LETTERS, 2018, 220 : 112 - 115
  • [9] Engineering anatomically shaped vascularized bone grafts with hASCs and 3D-printed PCL scaffolds
    Temple, Joshua P.
    Hutton, Daphne L.
    Hung, Ben P.
    Huri, Pinar Yilgor
    Cook, Colin A.
    Kondragunta, Renu
    Jia, Xiaofeng
    Grayson, Warren L.
    JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2014, 102 (12) : 4317 - 4325
  • [10] Development of 3D-Printed PCL/ Baghdadite Nanocomposite Scaffolds for Bone Tissue Engineering Applications
    Emadi, Hosein
    Baghani, Mostafa
    Khodaei, Mohammad
    Baniassadi, Majid
    Tavangarian, Fariborz
    JOURNAL OF POLYMERS AND THE ENVIRONMENT, 2024, 32 (08) : 3668 - 3686