3D Bioprinting of Model Tissues That Mimic the Tumor Microenvironment

被引:19
作者
Bojin, Florina [1 ,2 ]
Robu, Andreea [3 ]
Bejenariu, Maria Iulia [4 ]
Ordodi, Valentin [2 ]
Olteanu, Emilian [1 ,5 ]
Cean, Ada [2 ]
Popescu, Roxana [1 ]
Neagu, Monica [1 ,6 ]
Gavriliuc, Oana [1 ,2 ]
Neagu, Adrian [1 ,6 ,7 ]
Arjoca, Stelian [1 ,6 ]
Paunescu, Virgil [1 ,2 ]
机构
[1] Victor Babes Univ Med & Pharm Timisoara, Dept Funct Sci, Timisoara 300041, Romania
[2] OncoGen Inst, Timisoara 300723, Romania
[3] Politehn Univ Timisoara, Dept Automat & Appl Informat, Timisoara 300223, Romania
[4] Politehn Univ Timisoara, Fac Mech Engn, Timisoara 300222, Romania
[5] Victor Babes Univ Med & Pharm Timisoara, Dept Microscop Morphol Morphopathol, ANAPATMOL Res Ctr, Timisoara 300041, Romania
[6] Victor Babes Univ Med & Pharm Timisoara, Ctr Modeling Biol Syst & Data Anal, Timisoara 300041, Romania
[7] Univ Missouri, Dept Phys & Astron, Columbia, MO 65211 USA
关键词
breast cancer; tumor-associated fibroblasts; peripheral blood mononuclear cells; extrusion bioprinting; FIBROBLASTS; ORIGIN; IMPACT; CELLS;
D O I
10.3390/mi12050535
中图分类号
O65 [分析化学];
学科分类号
070302 ; 081704 ;
摘要
The tumor microenvironment (TME) influences cancer progression. Therefore, engineered TME models are being developed for fundamental research and anti-cancer drug screening. This paper reports the biofabrication of 3D-printed avascular structures that recapitulate several features of the TME. The tumor is represented by a hydrogel droplet uniformly loaded with breast cancer cells (10(6) cells/mL); it is embedded in the same type of hydrogel containing primary cells-tumor-associated fibroblasts isolated from the peritumoral environment and peripheral blood mononuclear cells. Hoechst staining of cryosectioned tissue constructs demonstrated that cells remodeled the hydrogel and remained viable for weeks. Histological sections revealed heterotypic aggregates of malignant and peritumoral cells; moreover, the constituent cells proliferated in vitro. To investigate the interactions responsible for the experimentally observed cellular rearrangements, we built lattice models of the bioprinted constructs and simulated their evolution using Metropolis Monte Carlo methods. Although unable to replicate the complexity of the TME, the approach presented here enables the self-assembly and co-culture of several cell types of the TME. Further studies will evaluate whether the bioprinted constructs can evolve in vivo in animal models. If they become connected to the host vasculature, they may turn into a fully organized TME.
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页数:17
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