3D gastrointestinal models and organoids to study metabolism in human colon cancer

被引:23
|
作者
Silva-Almeida, Catarina [1 ]
Ewart, Marie-Ann [1 ]
Wilde, Colin [1 ]
机构
[1] AvantiCell Sci Ltd, GibbsYard Bldg, Auchincruive KA6 5HW, Ayr, Scotland
基金
欧盟地平线“2020”;
关键词
Organoids; 3D models; Colorectal; Cancer; Metabolism; HUMAN COLORECTAL-CANCER; PLURIPOTENT STEM-CELLS; MAS NMR-SPECTROSCOPY; EPITHELIAL ORGANOIDS; AEROBIC GLYCOLYSIS; CULTURE MODELS; TUMOR; MARKER; NICHE; IDENTIFICATION;
D O I
10.1016/j.semcdb.2019.05.019
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Recent advances in the field of cancer metabolism raised awareness for the importance of the tumour microenvironment in tumour growth and progression. The initial theory by Heinrich Warburg was that cancer cells had a deficient oxidative respiration and thus had to perform aerobic glycolysis to produce energy. However, further research suggested that there is a metabolic reprogramming within the tumour microenvironment, controlled by communication between tumour and stromal cells. The importance of this communication exposes the need to use complex models in cancer research. Until recently, classic cell models included immortalized 2D cell lines or patient-derived tumour xenografts. Despite having contributed to many discoveries, these models present many limitations. Improved models are now being developed using 3D cell culture technology. These models are more physiologically relevant allowing the co-culture of different cells types and establishing a gradient concentration of solutes. Recent developments in organoid technology contributed largely to the expansion of 3D cell technology. Organoids can be developed from different tissues including tumours, representing the cell population and spatial organization of the tissue of origin. In the field of cancer metabolism, the interaction of different cell types, the stroma, and the different solutes and oxygen concentrations are crucial parameters. Current models to study metabolism either include only one cell population or are unable to represent solute/oxygen gradients or to collect samples in a proficient manner. The characteristics of organoid culture thus makes them a potent model to use in metabolic studies, drug development, disease model or even personalized medicine.
引用
收藏
页码:98 / 104
页数:7
相关论文
共 50 条
  • [31] Microfluidic 3D models of cancer
    Sung, Kyung Eun
    Beebe, David J.
    ADVANCED DRUG DELIVERY REVIEWS, 2014, 79-80 : 68 - 78
  • [32] Bioprinting of 3D breast epithelial spheroids for human cancer models
    Swaminathan, Swathi
    Hamid, Qudus
    Sun, Wei
    Clyne, Alisa Morss
    BIOFABRICATION, 2019, 11 (02)
  • [33] 3D Organoids for Regenerative Endodontics
    Li, Fang-Chi
    Kishen, Anil
    BIOMOLECULES, 2023, 13 (06)
  • [34] Prospects for 3D bioprinting of organoids
    Preety Rawal
    Dinesh M. Tripathi
    Seeram Ramakrishna
    Savneet Kaur
    Bio-Design and Manufacturing, 2021, 4 : 627 - 640
  • [35] Prospects for 3D bioprinting of organoids
    Preety Rawal
    Dinesh M.Tripathi
    Seeram Ramakrishna
    Savneet Kaur
    Bio-Design and Manufacturing, 2021, (03) : 627 - 640
  • [36] Prospects for 3D bioprinting of organoids
    Preety Rawal
    Dinesh MTripathi
    Seeram Ramakrishna
    Savneet Kaur
    Bio-Design and Manufacturing, 2021, 4 (03) : 627 - 640
  • [37] 3D human hepatic organoids for testing Fibrosis, Cholestasis and Phospholipidosis
    Leite, B.
    Roosens, T.
    Belli, M.
    El Taghdouini, A.
    Mannaerts, I.
    Najimi, M.
    Sokal, E.
    Noor, F.
    Chesne, C.
    Bois, F. Y.
    Benfenati, E.
    Van Grunsven, L. A.
    TOXICOLOGY LETTERS, 2016, 258 : S129 - S129
  • [38] Studying Human Neurodevelopment and Diseases Using 3D Brain Organoids
    Tian, Ai
    Muffat, Julien
    Li, Yun
    JOURNAL OF NEUROSCIENCE, 2020, 40 (06): : 1186 - 1193
  • [39] Prospects for 3D bioprinting of organoids
    Rawal, Preety
    Tripathi, Dinesh M.
    Ramakrishna, Seeram
    Kaur, Savneet
    BIO-DESIGN AND MANUFACTURING, 2021, 4 (03) : 627 - 640
  • [40] Self-Organizing 3D Human Trunk Neuromuscular Organoids
    Martins, Jorge-Miguel Faustino
    Fischer, Cornelius
    Urzi, Alessia
    Vidal, Ramon
    Kunz, Severine
    Ruffault, Pierre-Louis
    Kabuss, Loreen
    Hube, Iris
    Gazzerro, Elisabeta
    Birchmeier, Carmen
    Spuler, Simone
    Sauer, Sascha
    Gouti, Mina
    CELL STEM CELL, 2020, 26 (02) : 172 - +