Modeling 5-FU-Induced Chemotherapy Selection of a Drug-Resistant Cancer Stem Cell Subpopulation

被引:0
|
作者
Hamzagic, Amra Ramovic [1 ,2 ]
Cvetkovic, Danijela [1 ,2 ]
Jankovic, Marina Gazdic [1 ,2 ]
Dimitrijevic, Nevena Milivojevic [3 ]
Nikolic, Dalibor [3 ,4 ]
Zivanovic, Marko [3 ]
Kastratovic, Nikolina [1 ,2 ]
Petrovic, Ivica [5 ]
Nikolic, Sandra [1 ,2 ]
Jovanovic, Milena [6 ]
Seklic, Dragana [3 ]
Filipovic, Nenad [4 ,7 ]
Ljujic, Biljana [1 ,2 ]
机构
[1] Univ Kragujevac, Fac Med Sci, Dept Genet, Kragujevac 34000, Serbia
[2] Univ Kragujevac, Fac Med Sci, Serbia Harm Reduct Biol & Chem Hazards, Kragujevac 34000, Serbia
[3] Univ Kragujevac, Inst Informat Technol Kragujevac, Liceja Knezevine Srbije 1A, Kragujevac 34000, Serbia
[4] Bioengn Res & Dev Ctr BioIRC, Prvoslava Stojanov 6, Kragujevac 34000, Serbia
[5] Univ Kragujevac, Fac Med Sci, Dept Pathophysiol, Kragujavac 34000, Serbia
[6] Univ Kragujevac, Fac Sci, Radoja Domanovica 12, Kragujevac 34000, Serbia
[7] Univ Kragujevac, Fac Engn, Sestre Janjic 6, Kragujevac 34000, Serbia
关键词
cancer stem cells; chemotherapy resistance; machine learning model; PREDICTION;
D O I
10.3390/curroncol31030091
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
(1) Background: Cancer stem cells (CSCs) are a subpopulation of cells in a tumor that can self-regenerate and produce different types of cells with the ability to initiate tumor growth and dissemination. Chemotherapy resistance, caused by numerous mechanisms by which tumor tissue manages to overcome the effects of drugs, remains the main problem in cancer treatment. The identification of markers on the cell surface specific to CSCs is important for understanding this phenomenon. (2) Methods: The expression of markers CD24, CD44, ALDH1, and ABCG2 was analyzed on the surface of CSCs in two cancer cell lines, MDA-MB-231 and HCT-116, after treatment with 5-fluorouracil (5-FU) using flow cytometry analysis. A machine learning model (ML)-genetic algorithm (GA) was used for the in silico simulation of drug resistance. (3) Results: As evaluated through the use of flow cytometry, the percentage of CD24-CD44+ MDA-MB-231 and CD44, ALDH1 and ABCG2 HCT-116 in a group treated with 5-FU was significantly increased compared to untreated cells. The CSC population was enriched after treatment with chemotherapy, suggesting that these cells have enhanced drug resistance mechanisms. (4) Conclusions: Each individual GA prediction model achieved high accuracy in estimating the expression rate of CSC markers on cancer cells treated with 5-FU. Artificial intelligence can be used as a powerful tool for predicting drug resistance.
引用
收藏
页码:1221 / 1234
页数:14
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