FGFR inhibitors: Effects on cancer cells, tumor microenvironment and whole-body homeostasis (Review)

Ингибиторы FGFR: влияние на раковые клетки, микроокружение опухоли и гомеостаз всего организма (обзор)
Masaru Katoh
2016-05-31

FGF-CSF1 signalingFGFR gene fusionsFGFR inhibitorsImmune checkpoint blockadeTumor microenvironment
Fibroblast growth factor (FGF)2, FGF4, FGF7 and FGF20 are representative paracrine FGFs binding to heparan-sulfate proteoglycan and fibroblast growth factor receptors (FGFRs), whereas FGF19, FGF21 and FGF23 are endocrine FGFs binding to Klotho and FGFRs. FGFR1 is relatively frequently amplified and overexpressed in breast and lung cancer, and FGFR2 in gastric cancer. BCR-FGFR1, CNTRL-FGFR1, CUX1-FGFR1, FGFR1OP-FGFR1, MYO18A-FGFR1 and ZMYM2-FGFR1 fusions in myeloproliferative neoplasms are non-receptor-type FGFR kinases, whereas FGFR1-TACC1, FGFR2-AFF3, FGFR2-BICC1, FGFR2-PPHLN1, FGFR3-BAIAP2L1 and FGFR3-TACC3 fusions in solid tumors are transmembrane-type FGFRs with C-terminal alterations. AZD4547, BGJ398 (infigratinib), Debio-1347 and dovitinib are FGFR1/2/3 inhibitors; BLU9931 is a selective FGFR4 inhibitor; FIIN-2, JNJ-42756493, LY2874455 and ponatinib are pan-FGFR inhibitors. AZD4547, dovitinib and ponatinib are multi-kinase inhibitors targeting FGFRs, colony stimulating factor 1 receptor (CSF1R), vascular endothelial growth factor (VEGF)R2, and others. The tumor microenvironment consists of cancer cells and stromal/immune cells, such as cancer-associated fibroblasts (CAFs), endothelial cells, M2-type tumor-associating macrophages (M2-TAMs), myeloid-derived suppressor cells (MDSCs) and regulatory T cells. FGFR inhibitors elicit antitumor effects directly on cancer cells, as well as indirectly through the blockade of paracrine signaling. The dual inhibition of FGF and CSF1 or VEGF signaling is expected to enhance the antitumor effects through the targeting of immune evasion and angiogenesis in the tumor microenvironment. Combination therapy using tyrosine kinase inhibitors (FGFR or CSF1R inhibitors) and immune checkpoint blockers (anti-PD-1 or anti-CTLA-4 monoclonal antibodies) may be a promising choice for cancer patients. The inhibition of FGF19-FGFR4 signaling is associated with a risk of liver toxicity, whereas the activation of FGF23-FGFR4 signaling is associated with a risk of heart toxicity. Endocrine FGF signaling affects the pathophysiology of cancer patients who are prescribed FGFR inhibitors. Whole-genome sequencing is necessary for the detection of promoter/enhancer alterations of FGFR genes and rare alterations of other genes causing FGFR overexpression. To sustain the health care system in an aging society, a benefit-cost analysis should be performed with a focus on disease-free survival and the total medical cost before implementing genome-based precision medicine for cancer patients.
1
Combining FGFR or CSF1R tyrosine kinase inhibitors with anti-PD-1 or anti-CTLA-4 immune checkpoint blockers may benefit cancer patients, whereas FGF19-FGFR4 inhibition is associated with liver-toxicity risk.
2
Dual inhibition of FGF with CSF1 or VEGF signaling is expected to strengthen antitumor activity by targeting immune evasion and angiogenesis.
3
FGFR inhibitors exert antitumor effects directly on cancer cells and indirectly by blocking paracrine FGF signaling within the tumor microenvironment.
4
FGFR1 amplification or overexpression is relatively frequent in breast and lung cancers, while FGFR2 amplification or overexpression occurs in gastric cancer.
5
Multiple FGFR1, FGFR2, and FGFR3 gene fusions drive myeloproliferative neoplasms or solid tumors through non-receptor or transmembrane FGFR kinase alterations.

FGFR inhibitors and their effects on cancer cells, the tumor microenvironment, and whole-body homeostasis

Antitumor mechanisms, therapeutic interactions, and systemic toxicity of FGFR inhibition, including effects on paracrine signaling, immune evasion, angiogenesis, and liver homeostasis

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2016-05-31
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Masaru Katoh
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