Role of Interleukins and New Perspectives in Mechanisms of Resistance to Chemotherapy in Gastric Cancer
Abstract
1. Introduction
2. The Role of Interleukins in the Mechanism of Chemoresistance in Gastric Cancer
2.1. Interleukin 6
2.2. Interleukin 8
2.3. Interleukin 11
2.4. Interleukin 24
2.5. Interleukin 33

| Author | Year | Interleukin | Feature | Test Chemotherapy | Result | Reference |
|---|---|---|---|---|---|---|
| I.Ham et al. | 2019 | IL-6 | increased production | 5-fluorouracil Cisplatin | promotion of chemoresistance | [23] |
| W.Kuai et al. | 2012 | IL-8 | increased production | Oxaliplatin | promotion of chemoresistance | [29] |
| J.Zhai et al. | 2019 | IL-8 | increased production | Cisplatin | promotion of chemoresistance | [30] |
| S. Limpakan et al. | 2019 | IL-8 | decreased production | 5-fluorouracil oxaliplatin cisplatin irinotecan | increased chemosensitivity | [31] |
| H.Jiang et al. | 2022 | IL-8 | Increased production | 5-fluorouracil oxaliplatin paxlitaxel | reduction in chemotherapy resistance | [32] |
| J.Ma et al. | 2019 | IL-11 | increased production | cisplatin doxorubicine etoposide | Increased chemoresistance | [37] |
| Z.Mao et al. | 2013 | IL-24 | increased production | Cisplatin | promotion of chemosensitivity | [45] |
| X.L.Ye et al. | 2015 | IL-33 | increased production | 5-fluorouracil oxaliplatin cisplatin docetaxel | promotion of chemoresistance | [52] |
3. The Role of Interleukins in the Development of Gastric Cancer—A New Perspective in the Mechanism of Chemoresistance
3.1. Interleukin 1 Beta
3.2. Interleukin 2
3.3. Interleukin 4
3.4. Interleukin 10
3.5. Interleukin 17A and Interleukin 17F
| Author | Year | Interleukin | SNPs | Result | Reference |
|---|---|---|---|---|---|
| Gonzales et al. | 2007 | IL-1B | polymorphisms in IL-1B | No significant association | [63] |
| Xue et al. | 2010 | IL-1B | IL1B-511 IL1RN | Increased GC risk | [65] |
| Xue et al. | 2010 | IL-1B | IL1B-31 IL1B+3954 | No significant association | [65] |
| Song et al. | 2021 | IL-1B | IL-1B rs1143634 | Decreased GC risk | [64] |
| Shin et al. | 2008 | IL-2 | IL-2-330 | No significant association | [69] |
| Wu et al. | 2009 | IL-2 | IL-2 G-330T rs2069762 | Increased GC risk | [68] |
| Omar et al. | 2003 | IL-4 | IL-4 590 C/T rs2243250 | No significant association | [74] |
| Lai et al. | 2005 | IL-4 | IL-4 590 rs2243250 | No significant association | [73] |
| Gonzales et al. | 2007 | IL-4 | IL-4 590 C>T rs2243250 | No significant association | [63] |
| Wu et al. | 2009 | IL-4 | IL-4T-168C rs2070874 | Increased GC risk | [68] |
| Yun et al. | 2017 | IL-4 | IL-4 rs2243250 | Increased GC risk | [75] |
| Martinez- Campos et al. | 2019 | IL-4 | IL-4-590C/T rs2243250 | No significant association | [76] |
| He et al. | 2019 | IL-4 | IL-4 rs2243248 IL-4 rs2070874 IL-4R rs2057768 IL-4R rs2107356 IL-4R rs1805015 IL-4R rs1801275 | No significant association | [77] |
| Martinez- Campos et al. | 2019 | IL-10 | IL-10–819C/T rs1800871 | Significant association | [76] |
| Martinez- Campos et al. | 2019 | IL-10 | IL-10–592C/A rs1800872 IL-10–1082A/G rs1800896 | No significant association | [76] |
| Liu et al. | 2015 | IL-17A | IL-17A rs2275913 | Increased GC risk | [88] |
| Liu et al. | 2015 | IL-17F | IL-17F rs763780 | Increased GC risk | [88] |
| Author | Year | Interleukin | Result | Reference |
|---|---|---|---|---|
| Noto et al. | 2022 | IL-4 | No significant association | [78] |
| Chen et al. | 2019 | IL-10 | Increased GC proliferation | [83] |
| Tang et al. | 2021 | IL-10 | Poor prognosis Decreased OS | [82] |
| Note et al. | 2022 | IL-13 | Promotes metaplasia | [78] |
| Wang et al. | 2014 | IL-17A | Promotes invasion | [89] |
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Janiczek-Polewska, M.; Szylberg, Ł.; Malicki, J.; Marszałek, A. Role of Interleukins and New Perspectives in Mechanisms of Resistance to Chemotherapy in Gastric Cancer. Biomedicines 2022, 10, 1600. https://doi.org/10.3390/biomedicines10071600
Janiczek-Polewska M, Szylberg Ł, Malicki J, Marszałek A. Role of Interleukins and New Perspectives in Mechanisms of Resistance to Chemotherapy in Gastric Cancer. Biomedicines. 2022; 10(7):1600. https://doi.org/10.3390/biomedicines10071600
Chicago/Turabian StyleJaniczek-Polewska, Marlena, Łukasz Szylberg, Julian Malicki, and Andrzej Marszałek. 2022. "Role of Interleukins and New Perspectives in Mechanisms of Resistance to Chemotherapy in Gastric Cancer" Biomedicines 10, no. 7: 1600. https://doi.org/10.3390/biomedicines10071600
APA StyleJaniczek-Polewska, M., Szylberg, Ł., Malicki, J., & Marszałek, A. (2022). Role of Interleukins and New Perspectives in Mechanisms of Resistance to Chemotherapy in Gastric Cancer. Biomedicines, 10(7), 1600. https://doi.org/10.3390/biomedicines10071600

