Development of covalent inhibitors that can overcome resistance to first-generation FGFR kinase inhibitors

Authors
Tan, LiWang, JunTanizaki, JunkoHuang, ZhifengAref, Amir R.Rusan, MariaZhu, Su-JieZhang, YiyunErcan, DaliaLiao, Rachel G.Capelletti, MarziaZhou, WenjunHur, WooyoungKim, NamDooSim, TaeboGaudet, SuzanneBarbie, David A.Yeh, Jing-Ruey JoannaYun, Cai-HongHammerman, Peter S.Mohammadi, MoosaJaenne, Pasi A.Gray, Nathanael S.
Issue Date
2014-11-11
Publisher
NATL ACAD SCIENCES
Citation
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, v.111, no.45, pp.E4869 - E4877
Abstract
The human FGF receptors (FGFRs) play critical roles in various human cancers, and several FGFR inhibitors are currently under clinical investigation. Resistance usually results from selection for mutant kinases that are impervious to the action of the drug or from up-regulation of compensatory signaling pathways. Preclinical studies have demonstrated that resistance to FGFR inhibitors can be acquired through mutations in the FGFR gatekeeper residue, as clinically observed for FGFR4 in embryonal rhabdomyosarcoma and neuroendocrine breast carcinomas. Here we report on the use of a structure-based drug design to develop two selective, next-generation covalent FGFR inhibitors, the FGFR irreversible inhibitors 2 (FIIN-2) and 3 (FIIN-3). To our knowledge, FIIN-2 and FIIN-3 are the first inhibitors that can potently inhibit the proliferation of cells dependent upon the gatekeeper mutants of FGFR1 or FGFR2, which confer resistance to first-generation clinical FGFR inhibitors such as NVP-BGJ398 and AZD4547. Because of the conformational flexibility of the reactive acrylamide substituent, FIIN-3 has the unprecedented ability to inhibit both the EGF receptor (EGFR) and FGFR covalently by targeting two distinct cysteine residues. We report the cocrystal structure of FGFR4 with FIIN-2, which unexpectedly exhibits a "DFG-out" covalent binding mode. The structural basis for dual FGFR and EGFR targeting by FIIN3 also is illustrated by crystal structures of FIIN-3 bound with FGFR4 V550L and EGFR L858R. These results have important implications for the design of covalent FGFR inhibitors that can overcome clinical resistance and provide the first example, to our knowledge, of a kinase inhibitor that covalently targets cysteines located in different positions within the ATP-binding pocket.
Keywords
FACTOR RECEPTOR 4; GROWTH-FACTOR RECEPTORS; LUNG-CANCER; SELECTIVE INHIBITOR; DRUG-RESISTANCE; REGULATES PROLIFERATION; THERAPEUTIC TARGET; GENE FUSIONS; WILD-TYPE; BCR-ABL; FACTOR RECEPTOR 4; GROWTH-FACTOR RECEPTORS; LUNG-CANCER; SELECTIVE INHIBITOR; DRUG-RESISTANCE; REGULATES PROLIFERATION; THERAPEUTIC TARGET; GENE FUSIONS; WILD-TYPE; BCR-ABL; drug discovery; cancer drug resistance; kinase inhibitor; structure-based drug design
ISSN
0027-8424
URI
https://pubs.kist.re.kr/handle/201004/126122
DOI
10.1073/pnas.1403438111
Appears in Collections:
KIST Article > 2014
Files in This Item:
There are no files associated with this item.
Export
RIS (EndNote)
XLS (Excel)
XML

qrcode

Items in DSpace are protected by copyright, with all rights reserved, unless otherwise indicated.

BROWSE