Binding of human recombinant mutant soluble ectodomain of FGFR2IIIc to c subtype of FGFRs: implications for
Zhong Liu1, Ge Liu1, Guang-Lin Zhang1
1Institute of Biomedicine, Guangdong Provincial Key Laboratory of Bioengineering Medicine, National Engineering Research Center of Genetic Medicine, Jinan University, Guangzhou 510632, China.
Abstract:
FGFRs are considered essential targets for cancer therapy. We previously reported that msFGFR2c, a Ser252Trp mutant soluble ectodomain of FGFR2IIIc, inhibited tumor growth by blocking FGF signaling pathway. However, the underlying molecular mechanism is still obscure. In this study, we reported that msFGFR2c but not wild-type soluble ectodomain of FGFR2IIIc (wsFGFR2c) could selectively bind to c subtype of FGFRs in the presence of FGF-2. Thermodynamic analysis demonstrated that msFGFR2c bound to wsFGFR2c in the presence of FGF-2 with a K value of 6.61 × 105 M-1. Molecular dynamics simulations revealed that the mutated residue Trp252 of msFGFR2c preferred a π-π interaction with His254 of wsFGFR2c. Concomitantly, Arg255 of msFGFR2c and Glu250 of wsFGFR2c adjusted their conformations and formed three H-bonds. These two interactions therefore stabilized the final structure of wsFGFR2c and msFGFR2c heterocomplex. In FGFR2IIIc-positive/high FGF-2-secreted BT-549 cells, msFGFR2c significantly inhibited the proliferation and induced apoptosis by the blockage of FGF-2-activated FGFRs phosphorylation, also the growth and angiogenesis of its xenograft tumors implanted in chick embryo chorioallantoic membrane model. While weaker the above inhibitory effects of msFGFR2c were observed on FGFR2IIIc-negative/low FGF-2-secreted MCF-7 and MDA-MB-231 cell lines in vitro and in vivo. Moreover, msFGFR2c significantly inhibited the proliferation of FGFR1IIIc-positive NCI-H1299 lung cancer cells by the suppression of FGF-2-induced FGFR1 activation and suppressed the growth of NCI-H1299 transplanted tumors in nude mice. In sum, msFGFR2c is a potential anti-tumor agent targeting FGFR2c/FGFR1c-positive tumor cells. These findings also provide a molecular basis for msFGFR2c to disrupt the activation of FGF signaling.
Insights
A novel mutant soluble FGFR2c ectodomain (msFGFR2c) selectively targets FGFR2c/FGFR1c-positive cancer cells. It inhibits tumor growth by disrupting FGF signaling, offering a potential new cancer therapy.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Fibroblast Growth Factor Receptors (FGFRs) are crucial targets in cancer therapy.
- A previously developed mutant soluble FGFR2c ectodomain (msFGFR2c) showed tumor growth inhibition, but its mechanism was unclear.
Purpose of the Study:
- To elucidate the molecular mechanism by which msFGFR2c inhibits tumor growth.
- To investigate the selective binding and interaction of msFGFR2c with FGFR subtypes.
- To evaluate the anti-tumor efficacy of msFGFR2c in various cancer models.
Main Methods:
- Thermodynamic analysis to quantify msFGFR2c binding to wild-type soluble FGFR2c (wsFGFR2c).
- Molecular dynamics simulations to reveal interaction interfaces between msFGFR2c and wsFGFR2c.
- In vitro cell proliferation and apoptosis assays.
- In vivo xenograft tumor models in chick embryo and nude mice.
Main Results:
- msFGFR2c selectively binds to FGFR2c in the presence of FGF-2, forming a stable heterocomplex via specific π-π and hydrogen bond interactions.
- msFGFR2c significantly inhibited proliferation and induced apoptosis in FGFR2IIIc-positive/high FGF-2-secreting BT-549 cells, and suppressed tumor growth and angiogenesis.
- msFGFR2c also demonstrated anti-proliferative effects on FGFR1IIIc-positive lung cancer cells (NCI-H1299) and suppressed tumor growth in vivo.
- Weaker inhibitory effects were observed in FGFR2IIIc-negative/low FGF-2-secreting cell lines.
Conclusions:
- msFGFR2c acts as a potent anti-tumor agent by selectively targeting FGFR2c/FGFR1c-positive tumor cells.
- The study provides a molecular understanding of how msFGFR2c disrupts FGF signaling pathway activation.
- msFGFR2c represents a promising therapeutic candidate for FGFR-driven cancers.
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