3D Bioprinted GelMA/PEGDA Hybrid Scaffold for Establishing an In Vitro Model of Melanoma

被引:29
|
作者
Duan, Jiahui [1 ,2 ]
Cao, Yanyan [1 ,2 ,3 ]
Shen, Zhizhong [1 ,2 ]
Cheng, Yongqiang [1 ,2 ]
Ma, Zhuwei [1 ,2 ]
Wang, Lijing [1 ,2 ]
Zhang, Yating [1 ,2 ]
An, Yuchuan [1 ,2 ]
Sang, Shengbo [1 ,2 ]
机构
[1] Taiyuan Univ Technol, Minist Educ, Coll Informat & Comp, MicroNano Syst Res Ctr, Taiyuan 030024, Peoples R China
[2] Taiyuan Univ Technol, Minist Educ, Key Lab Adv Transducers & Intelligent Control Sys, Taiyuan 030024, Peoples R China
[3] Hebei North Univ, Coll Informat Sci & Engn, Zhangjiakou 075000, Peoples R China
基金
中国国家自然科学基金;
关键词
A375; cells; GelMA; PEGDA; luteolin; melanoma; in vitro; 3D bioprinting; GELATIN; LUTEOLIN; CANCER;
D O I
10.4014/jmb.2111.11003
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Due to the high incidence of malignant melanoma, the establishment of in vitro models that recapitulate the tumor microenvironment is of great biological and clinical importance for tumor treatment and drug research. In this study, 3D printing technology was used to prepare GelMA/ PEGDA composite scaffolds that mimic the microenvironment of human malignant melanoma cell (A375) growth and construct in vitro melanoma micro-models. The GelMA/PEGDA hybrid scaffold was tested by the mechanical property, cell live/dead assay, cell proliferation assay, cytoskeleton staining and drug loading assay. The growth of tumor cells in two- and three-dimensional culture systems and the anti-cancer effect of luteolin were evaluated using the live/dead staining method and the Cell Counting Kit-8 (CCK-8) method. The results showed a high aggregation of tumor cells on the 3D scaffold, which was suitable for long-term culture. Cytoskeleton staining and immunofluorescent protein staining were used to evaluate the degree of differentiation of tumor cells under 2D and 3D culture systems. The results indicated that 3D bioprinted scaffolds were more suitable for tumor cell expansion and differentiation, and the tumor cells were more aggressive. In addition, luteolin was time- and dose-dependent on tumor cells, and tumor cells in the 3D culture system were more resistant to the drug.
引用
收藏
页码:531 / 540
页数:10
相关论文
共 50 条
  • [31] Bioprinted 3D vascularized tissue model for drug toxicity analysis
    Massa, Solange
    Sakr, Mahmoud Ahmed
    Seo, Jungmok
    Bandaru, Praveen
    Arneri, Andrea
    Bersini, Simone
    Zare-Eelanjegh, Elaheh
    Jalilian, Elmira
    Cha, Byung-Hyun
    Antona, Silvia
    Enrico, Alessandro
    Gao, Yuan
    Hassan, Shabir
    Acevedo, Juan Pablo
    Dokmeci, Mehmet R.
    Zhang, Yu Shrike
    Khademhosseini, Ali
    Shin, Su Ryon
    BIOMICROFLUIDICS, 2017, 11 (04):
  • [32] 3D printing of complicated GelMA-coated Alginate/Tri-calcium silicate scaffold for accelerated bone regeneration
    Beheshtizadeh, Nima
    Farzin, Ali
    Rezvantalab, Sima
    Pazhouhnia, Zahra
    Lotfibakhshaiesh, Nasrin
    Ai, Jafar
    Noori, Alireza
    Azami, Mahmoud
    INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2023, 229 : 636 - 653
  • [33] In Vitro Three-Dimensional (3D) Models for Melanoma Immunotherapy
    Nomdedeu-Sancho, Gemma
    Gorkun, Anastasiya
    Mahajan, Naresh
    Willson, Kelsey
    Schaaf, Cecilia R.
    Votanopoulos, Konstantinos I.
    Atala, Anthony
    Soker, Shay
    CANCERS, 2023, 15 (24)
  • [34] Development of GelMA/PCL and dECM/PCL resins for 3D printing of acellular in vitro tissue scaffolds by stereolithography
    Elomaa, Laura
    Keshi, Eriselda
    Sauer, Igor Maximilian
    Weinhart, Marie
    MATERIALS SCIENCE AND ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2020, 112
  • [35] Decellularized fennel and dill leaves as possible 3D channel network in GelMA for the development of an in vitro adipose tissue model
    Grilli, Francesca
    Pitton, Matteo
    Altomare, Lina
    Fare, Silvia
    FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY, 2022, 10
  • [36] Biofabrication and Monitoring of a 3D Printed Skin Model for Melanoma
    Vazquez-Aristizabal, Paula
    Henriksen-Lacey, Malou
    Garcia-Astrain, Clara
    de Aberasturi, Dorleta Jimenez
    Langer, Judith
    Epelde, Claudia
    Litti, Lucio
    Liz-Marzan, Luis M.
    Izeta, Ander
    ADVANCED HEALTHCARE MATERIALS, 2024, 13 (27)
  • [37] Homogeneous and heterogeneous in vitro 3D models of melanoma
    O. F. Kandarakov
    M. V. Kalashnikova
    A. A. Vartanian
    A. V. Belyavsky
    Molecular Biology, 2015, 49 : 895 - 898
  • [38] The 3D Bioprinted Scaffolds for Wound Healing
    Antezana, Pablo Edmundo
    Municoy, Sofia
    Alvarez-Echazu, Maria Ines
    Santo-Orihuela, Pablo Luis
    Catalano, Paolo Nicolas
    Al-Tel, Taleb H.
    Kadumudi, Firoz Babu
    Dolatshahi-Pirouz, Alireza
    Orive, Gorka
    Desimone, Martin Federico
    PHARMACEUTICS, 2022, 14 (02)
  • [39] Developments and Opportunities for 3D Bioprinted Organoids
    Ren, Ya
    Yang, Xue
    Ma, Zhengjiang
    Sun, Xin
    Zhang, Yuxin
    Li, Wentao
    Yang, Han
    Qiang, Lei
    Yang, Zezheng
    Liu, Yihao
    Deng, Changxu
    Zhou, Liang
    Wang, Tianchang
    Lin, Jingsheng
    Li, Tao
    Wu, Tao
    Wang, Jinwu
    INTERNATIONAL JOURNAL OF BIOPRINTING, 2021, 7 (03) : 18 - 36
  • [40] VALIDATION OF AN IN VITRO 3D BONE CULTURE MODEL WITH PERFUSED AND MECHANICALLY STRESSED CERAMIC SCAFFOLD
    Bouet, G.
    Cruel, M.
    Laurent, C.
    Vico, L.
    Malaval, L.
    Marchat, D.
    EUROPEAN CELLS & MATERIALS, 2015, 29 : 250 - 267