This file contains the supplementary Table S1 that describes the characteristics and anti-proliferative activities of EGF816 on a number of patient-derived cell lines
This file shows the Supplementary figures. Figure S1 shows the chemical structure of EGF816 and its binding to EGFR T790M mutant. Figure S2 shows the tolerability of EGF816 in the in vivo xenograft models. Figure S3 shows the in vivo PK and PD after a single dose of EGF816. Figure S4 shows the selectivity profile of EGF816 in the kinome tree. Figure S5 shows the morphology of EGF816 resistance clones.
This file contains additional Materials and Methods that are not listed in the main text.
This file contains the supplementary figure legends. Figure S1 shows the chemical structure of EGF816 and its binding to EGFR T790M mutant. Figure S2 shows the tolerability of EGF816 in the in vivo xenograft models. Figure S3 shows the in vivo PK and PD after a single dose of EGF816. Figure S4 shows the selectivity profile of EGF816 in the kinome tree. Figure S5 shows the morphology of EGF816 resistance clones.
LONP1 is an AAA+ protease that maintains mitochondrial homeostasis by removing damaged or misfolded proteins. Elevated activity and expression of LONP1 promotes cancer cell proliferation and resistance to apoptosis-inducing reagents. Despite the importance of LONP1 in human biology and disease, very few LONP1 inhibitors have been described in the literature. Herein, we report the development of selective boronic acid-based LONP1 inhibitors using structure-based drug design as well as the first structures of human LONP1 bound to various inhibitors. Our efforts led to several nanomolar LONP1 inhibitors with little to no activity against the 20S proteasome that serve as tool compounds to investigate LONP1 biology.
Respiratory syncytial virus (RSV) infection can cause mucus overproduction and bronchiolitis in infants leading to severe disease and hospitalization. As a therapeutic strategy, immune modulatory agents may help prevent RSV-driven immune responses that cause severe airway disease. We developed a high throughput screen to identify compounds that reduced RSV-driven mucin 5AC (Muc5AC) expression and identified dexamethasone. Despite leading to a pronounced reduction in RSV-driven Muc5AC, dexamethasone increased RSV infection in vitro and delayed viral clearance in mice. This correlated with reduced expression of a subset of immune response genes and reduced lymphocyte infiltration in vivo. Interestingly, dexamethasone increased RSV infection levels without altering antiviral interferon signaling. In summary, the immunosuppressive activities of dexamethasone had favorable inhibitory effects on RSV-driven mucus production yet prevented immune defense activities that limit RSV infection in vitro and in vivo. These findings offer an explanation for the lack of efficacy of glucocorticoids in RSV-infected patients.
In drug discovery, structural knowledge of a target enables structure-based design approaches and thereby reduces the time and labor required to develop a therapy. Whilst molecular graphics frameworks coupled with computational analysis are now ubiquitous tools for the structural and computational biologist, sharing the detailed visualization and derived structural information with non-expert users still presents a challenge. Here we describe an intuitive virtual world for viewing, manipulating, and modifying chemical and macromolecular structures in a fully immersive and collaborative 3D environment. By reducing the barriers to viewing and interacting with structural data, structural analysis can be democratized to a general scientist, which in turn fosters novel collaboration, ideas, and findings in structural biology and structure-based drug discovery.
Abstract Non–small cell lung cancer patients carrying oncogenic EGFR mutations initially respond to EGFR-targeted therapy, but later elicit minimal response due to dose-limiting toxicities and acquired resistance. EGF816 is a novel, irreversible mutant-selective EGFR inhibitor that specifically targets EGFR-activating mutations arising de novo and upon resistance acquisition, while sparing wild-type (WT) EGFR. EGF816 potently inhibited the most common EGFR mutations L858R, Ex19del, and T790M in vitro, which translated into strong tumor regressions in vivo in several patient-derived xenograft models. Notably, EGF816 also demonstrated antitumor activity in an exon 20 insertion mutant model. At levels above efficacious doses, EGF816 treatment led to minimal inhibition of WT EGFR and was well tolerated. In single-dose studies, EGF816 provided sustained inhibition of EGFR phosphorylation, consistent with its ability for irreversible binding. Furthermore, combined treatment with EGF816 and INC280, a cMET inhibitor, resulted in durable antitumor efficacy in a xenograft model that initially developed resistance to first-generation EGFR inhibitors via cMET activation. Thus, we report the first preclinical characterization of EGF816 and provide the groundwork for its current evaluation in phase I/II clinical trials in patients harboring EGFR mutations, including T790M. Cancer Res; 76(6); 1591–602. ©2016 AACR.
An allosteric inhibitor, EAI045, is reported that is selective for certain drug-resistant EGFR mutants, but spares the wild-type receptor; combination therapy of EAI045 with EGFR-dimerization-blocking antibodies is effective in mouse models of lung cancer driven by mutant versions of EGFR that are resistant to all previously developed inhibitors. Currently available small-molecule inhibitors targeting epidermal growth factor receptor (EGFR) and other receptor tyrosine kinases bind the ATP site of the kinase, and therefore typically inhibit a number of 'off-target' kinases owing to the high conservation of this site. In addition, the common binding site of these drugs leads to shared susceptibility to resistance-conferring mutations in EGFR. Here, Michael Eck and colleagues describe an allosteric inhibitor, EAI045, that is selective for certain drug-resistant EGFR mutants but spares the wild-type receptor. Although EAI045 is not effective in blocking EGFR-driven cell proliferation as a single agent, it has synergistic inhibitory activity when combined with an antibody that blocks EGFR dimerization. This combination therapy is effective in mouse models of lung cancer driven by mutant versions of EGFR that are resistant to all previously developed inhibitors. The epidermal growth factor receptor (EGFR)-directed tyrosine kinase inhibitors (TKIs) gefitinib, erlotinib and afatinib are approved treatments for non-small cell lung cancers harbouring activating mutations in the EGFR kinase1,2, but resistance arises rapidly, most frequently owing to the secondary T790M mutation within the ATP site of the receptor3,4. Recently developed mutant-selective irreversible inhibitors are highly active against the T790M mutant5,6, but their efficacy can be compromised by acquired mutation of C797, the cysteine residue with which they form a key covalent bond7. All current EGFR TKIs target the ATP-site of the kinase, highlighting the need for therapeutic agents with alternative mechanisms of action. Here we describe the rational discovery of EAI045, an allosteric inhibitor that targets selected drug-resistant EGFR mutants but spares the wild-type receptor. The crystal structure shows that the compound binds an allosteric site created by the displacement of the regulatory C-helix in an inactive conformation of the kinase. The compound inhibits L858R/T790M-mutant EGFR with low-nanomolar potency in biochemical assays. However, as a single agent it is not effective in blocking EGFR-driven proliferation in cells owing to differential potency on the two subunits of the dimeric receptor, which interact in an asymmetric manner in the active state8. We observe marked synergy of EAI045 with cetuximab, an antibody therapeutic that blocks EGFR dimerization9,10, rendering the kinase uniformly susceptible to the allosteric agent. EAI045 in combination with cetuximab is effective in mouse models of lung cancer driven by EGFR(L858R/T790M) and by EGFR(L858R/T790M/C797S), a mutant that is resistant to all currently available EGFR TKIs. More generally, our findings illustrate the utility of purposefully targeting allosteric sites to obtain mutant-selective inhibitors.
Over the past decade, first and second generation EGFR inhibitors have significantly improved outcomes for lung cancer patients with activating mutations in EGFR. However, both resistance through a secondary T790M mutation at the gatekeeper residue and dose-limiting toxicities from wild-type (WT) EGFR inhibition ultimately limit the full potential of these therapies to control mutant EGFR-driven tumors and new therapies are urgently needed. Herein, we describe our approach toward the discovery of 47 (EGF816, nazartinib), a novel, covalent mutant-selective EGFR inhibitor with equipotent activity on both oncogenic and T790M-resistant EGFR mutations. Through molecular docking studies we converted a mutant-selective high-throughput screening hit (7) into a number of targeted covalent EGFR inhibitors with equipotent activity across mutants EGFR and good WT-EGFR selectivity. We used an abbreviated in vivo efficacy study for prioritizing compounds with good tolerability and efficacy that ultimately led to the selection of 47 as the clinical candidate.
Abstract Epidermal growth factor receptor (EGFR) is a validated therapeutic target for lung cancer. First and second generation EGFR inhibitors (e.g., gefitinib, erlotinib and afatinib) have revolutionized treatment paradigms of non-small cell lung cancer (NSCLC) patients with oncogenic EGFR mutations. The use of EGFR tyrosine kinase inhibitors (TKI) provides superior efficacy compared to chemotherapy in patients with EGFR L858R or exon 19 deletion tumors. However, resistance inevitably develops after 8-12 months of treatment; most commonly via a secondary T790M point mutation at the gatekeeper residue of EGFR. Furthermore, responses are hindered due to treatment intolerance in the form of rash and diarrhea that are mediated by simultaneous inhibition of wild-type (WT) EGFR at doses required for mutant EGFR suppression. To overcome these limitations, we initiated a project to identify mutant-selective EGFR inhibitors that potently inhibit both activating and T790M resistance EGFR mutations while sparing WT EGFR. In this presentation, we report our medicinal chemistry approach and optimization that led to the discovery of EGF816, a selective and potent covalent mutant-selective EGFR inhibitor with single digit nanomolar cellular target modulation on both activating and T790M resistance mutations. In addition, we will also report validated clinical efficacy data from the first patient treated with EGF816. Citation Format: Gerald Lelais, Robert Epple, Pierre-Yves Michellys, Thomas H. Marsilje, Yun Long, Matthew McNeill, Bei Chen, Wenshuo Lu, Badry Bursulaya, Michael DiDonato, Yong Jia, Shailaja Kasibhatla, Chun Li, Igor Matushansky, Steven Bender. Discovery of a potent covalent mutant-selective EGFR inhibitor - the journey from high throughput screening to EGF816. [abstract]. In: Proceedings of the 106th Annual Meeting of the American Association for Cancer Research; 2015 Apr 18-22; Philadelphia, PA. Philadelphia (PA): AACR; Cancer Res 2015;75(15 Suppl):Abstract nr 2585. doi:10.1158/1538-7445.AM2015-2585
EGFR is a major oncogene in NSCLC. Patients with the oncogenic mutations L858R and Ex19Del are responsive to the first generation pan-EGFR tyrosine kinase inhibitors (TKIs) erlotinib and gefitinib. The associated dose-limiting toxicities (DLTs) are severe rash and GI tolerability due to WT EGFR inhibition. However, therapy is universally limited by the development of acquired drug resistance where EGFR gatekeeper mutation T790M accounts for 50% of incidence. Second generation irreversible pan-EGFR TKI afatinib was developed to overcome T790M resistance. Though effective in animal models, the efficacy of afatinib on T790M patients is largely limited by its DLTs due to potent inhibition of WT EGFR. A strong medical need still exists for better tolerated therapy to treat NSCLC patients harboring EGFR mutations. Here we report the discovery and development of a potent third generation, irreversible mutant-selective EGFR TKI that is expected to improve/maintain efficacy on oncogenic EGFR mutant patients while demonstrating reduced side effects. EGF816 potently inhibits both activating (L858R and Ex19Del) and T790M resistant mutations in various cellular assays; it is selective against a large panel of kinases in both Ambit and BaF3 profiling, and more importantly is selective against WT EGFR. EGF816 is efficacious in mutant EGFR-driven xenograft models, is well tolerated in IND-enabling toxicology studies, and is entering phase 1 trials. Citation Format: Yong Jia, Jose Juarez, Mari Manuia, Gerald Lelais, Shailaja Kasibhatla, Oliver Long, Matthew McNeill, Michael DiDonato, Badry Bursulaya, Debbie Liao, Eric Murphy, Robert Epple, Thomas Marsilje, Nuzhat Pathan, Pierre-Yves Michellys, Steven Bender, Jennifer Harris. In vitro characterization of EGF816, a third-generation mutant-selective EGFR inhibitor. [abstract]. In: Proceedings of the 105th Annual Meeting of the American Association for Cancer Research; 2014 Apr 5-9; San Diego, CA. Philadelphia (PA): AACR; Cancer Res 2014;74(19 Suppl):Abstract nr 1734. doi:10.1158/1538-7445.AM2014-1734
Systematic SAR optimization of the GPR119 agonist lead 1, derived from an internal HTS campaign, led to compound 29. Compound 29 displays significantly improved in vitro activity and oral exposure, leading to GLP1 elevation in acutely dosed mice and reduced glucose excursion in an OGTT study in rats at doses ⩾10mg/kg.
Abstract Non-small cell lung cancer (NSCLC) patients with activating epidermal growth factor receptor (EGFR) mutations initially respond to EGFR tyrosine kinase inhibitors (TKI) but ultimately develop resistance to these therapies. The most common mechanism of resistance is a second site gate-keeper mutation within exon 20 of EGFR (T790M), followed by MET and other receptor tyrosine kinase amplification/activation. We developed a covalent mutant-selective EGFR inhibitor, EGF816 that potently inhibits both activating EGFR mutations as well as the T790M resistance mutation while sparing wild-type EGFR. EGF816 demonstrated strong tumor regressions in several EGFR activating and resistant tumor models in vivo. These include H1975 (L858R; T790M), HCC827 (exon 19 del) and H3255 (L858R) that are representative of the relevant clinical settings. In all of the models EGF816 inhibited tumor growth in a dose dependent manner and achieved regressions of established tumors at well tolerated doses. In single dose studies, EGF816 showed sustained inhibition of pEGFR, consistent with the irreversible binding mechanism of EGF816. EGF816 also performs exceptionally well in long term dosing studies providing durable responses in the preclinical models. Together, this data indicates that EGF816 exhibits excellent anti-tumor activity in the relevant patient derived tumor cell lines at well tolerated doses and is expected to provide long term duration of responses compared to current EGFR TKI therapy in the clinic. Citation Format: Shailaja Kasibhatla, Jie Li, Celin Tompkins, Mei-Ting Vaillancourt, Jennifer Anderson, AnneMarie Culazzo Pferdekamper, Chun Li, Oliver Long, Mathew McNeill, Robert Epple, Debbie Liao, Eric Murphy, Steve Bender, Yong Jia, Gerald Lelais. EGF816, a novel covalent inhibitor of mutant-selective epidermal growth factor receptor, overcomes T790M-mediated resistance in NSCLC. [abstract]. In: Proceedings of the 105th Annual Meeting of the American Association for Cancer Research; 2014 Apr 5-9; San Diego, CA. Philadelphia (PA): AACR; Cancer Res 2014;74(19 Suppl):Abstract nr 1733. doi:10.1158/1538-7445.AM2014-1733
L'invention concerne des composes, des compositions pharmaceutiques contenant de tels composes et des methodes d'utilisation de tels composes pour traiter ou prevenir des maladies ou des troubles associes a l'activite du GPR119.