Overcoming drug resistance of cancer cells by targeting the FGF1/FGFR1 axis with honokiol or FGF ligand trap

被引:0
|
作者
Szymczyk, Jakub [1 ]
Sochacka, Martyna [2 ]
Biadun, Martyna [1 ]
Sluzalska, Katarzyna Dominika [1 ]
Witkowska, Danuta [3 ]
Zakrzewska, Malgorzata [1 ]
机构
[1] Univ Wroclaw, Fac Biotechnol, Dept Prot Engn, Wroclaw, Poland
[2] Univ Wroclaw, Fac Biotechnol, Dept Prot Biotechnol, Wroclaw, Poland
[3] Univ Opole, Inst Hlth Sci, Opole, Poland
关键词
FGF1; FGFR1; drug resistance; honokiol; ligand trap; cancer; anti-cancer drugs; taltobulin; BREAST-CANCER; CARCINOMA; METASTASIS; INHIBITION; APOPTOSIS; STRATEGY; DOMAIN;
D O I
10.3389/fphar.2024.1459820
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Background: Chemoresistance of cancer cells, resulting from various mechanisms, is a significant obstacle to the effectiveness of modern cancer therapies. Targeting fibroblast growth factors (FGFs) and their receptors (FGFRs) is becoming crucial, as their high activity significantly contributes to cancer development and progression by driving cell proliferation and activating signaling pathways that enhance drug resistance. Methods: We investigated the potential of honokiol and FGF ligand trap in blocking the FGF1/FGFR1 axis to counteract drug resistance. Using PEAQ-ITC, we verified direct interaction of honokiol with the FGFR1 kinase domain. We then demonstrated the effect of FGF1/FGFR1 inhibition on taltobulin resistance in cells expressing FGFR1. Finally, we generated drug-resistant clones by prolonged exposure of cells with negligible FGFR levels to taltobulin alone, taltobulin and honokiol, or taltobulin and FGF ligand trap. Results: We demonstrated for the first time a direct interaction of honokiol with the FGFR1 kinase domain, resulting in inhibition of downstream signaling pathways. We revealed that both honokiol and FGF ligand trap prevent FGF1-dependent protection against taltobulin in cancer cells expressing FGFR1. In addition, we showed that cells obtained by long-term exposure to taltobulin are resistant to both taltobulin and other microtubule-targeting drugs, and exhibit elevated levels of FGFR1 and cyclin D. We also found that the presence of FGF-ligand trap prevents the development of long-term resistance to taltobulin. Conclusion: Our results shed light on how blocking the FGF1/FGFR1 axis by honokiol and FGF ligand trap could help develop more effective cancer therapies, potentially preventing the emergence of drug-resistant relapses.
引用
收藏
页数:10
相关论文
共 50 条
  • [41] Efficacy and Selectivity of FGF2-Saporin Cytosolically Delivered by PCI in Cells Overexpressing FGFR1
    Vikan, Aurora K.
    Kostas, Michal
    Haugsten, Ellen Margrethe
    Selbo, Pal K.
    Wesche, Jorgen
    CELLS, 2021, 10 (06)
  • [42] FGF21 promotes angiogenesis through endocytosis dependent activation of FGFR1 in endothelial cells
    Cao Sheng
    ANGIOGENESIS, 2014, 17 (01) : 300 - 300
  • [43] Increased gene copy number and amplification of FGF2 and FGFR1 in metastatic colorectal cancer
    Lieu, Christopher Hanyoung
    Varella-Garcia, Marileila
    Xu, Liang Guo
    Jiang, Zhi-Qin
    Eckhardt, S. Gail
    Messersmith, Wells A.
    Maru, Dipen M.
    Kopetz, Scott
    JOURNAL OF CLINICAL ONCOLOGY, 2013, 31 (04)
  • [44] FGFR1 regulates proliferation and metastasis by targeting CCND1 in FGFR1 amplified lung cancer
    Yang, Ying
    Lu, Tingting
    Li, Ziming
    Lu, Shun
    CELL ADHESION & MIGRATION, 2020, 14 (01) : 82 - 95
  • [45] FGFR1β is a driver isoform of FGFR1 alternative splicing in breast cancer cells
    Zhao, M.
    Zhuo, M-L
    Zheng, X.
    Su, X.
    Meric-Bernstam, F.
    CANCER RESEARCH, 2019, 79 (04)
  • [46] Regulation of renal phosphate transport by FGF23 is mediated by FGFR1 and FGFR4
    Gattineni, Jyothsna
    Alphonse, Priyatharshini
    Zhang, Qiuyu
    Mathews, Nisha
    Bates, Carlton M.
    Baum, Michel
    AMERICAN JOURNAL OF PHYSIOLOGY-RENAL PHYSIOLOGY, 2014, 306 (03) : F351 - F358
  • [47] A PPARγ-FGF1 axis is required for adaptive adipose remodelling and metabolic homeostasis
    Jonker, Johan W.
    Suh, Jae Myoung
    Atkins, Annette R.
    Ahmadian, Maryam
    Li, Pingping
    Whyte, Jamie
    He, Mingxiao
    Juguilon, Henry
    Yin, Yun-Qiang
    Phillips, Colin T.
    Yu, Ruth T.
    Olefsky, Jerrold M.
    Henry, Robert R.
    Downes, Michael
    Evans, Ronald M.
    NATURE, 2012, 485 (7398) : 391 - U143
  • [48] Unraveling the Heparan Sulfate Proteoglycan FGF1 Axis in Organismal Energy Metabolism
    Pessentheiner, Ariane
    Yu, Chung-Jui
    Maciej-Hulme, Marissa
    Thomas, Nathan
    Liu, Shihao
    Trieger, Greg
    Downes, Michael
    Evans, Ronald M.
    Godula, Kamil
    Gordts, Philip
    GLYCOBIOLOGY, 2023, 33 (11) : 990 - 990
  • [49] A PPARγ–FGF1 axis is required for adaptive adipose remodelling and metabolic homeostasis
    Johan W. Jonker
    Jae Myoung Suh
    Annette R. Atkins
    Maryam Ahmadian
    Pingping Li
    Jamie Whyte
    Mingxiao He
    Henry Juguilon
    Yun-Qiang Yin
    Colin T. Phillips
    Ruth T. Yu
    Jerrold M. Olefsky
    Robert R. Henry
    Michael Downes
    Ronald M. Evans
    Nature, 2012, 485 : 391 - 394
  • [50] Proliferative effects of FGF1 on ovarian cancer cells correlate with FGFR4 over expression and are mediated by MAPK/ERK signaling
    Zaid, Tarrik
    Thompson, Melissa S.
    Wong, Kwong-kwok
    Yeung, Tsz-Lun Yeung
    Yeung, Zachary
    Yates, Melinda S.
    Birrer, Michael J.
    Mok, Samuel C.
    CANCER RESEARCH, 2010, 70