SHP2 (PTPN11) is a non-receptor protein tyrosine phosphatase and scaffold protein that functions in multiple signal transduction pathways. Genetic and pharmacologic evidence supports a role for SHP2 in driving the proliferation of cancer cells dependent upon a range of activated RTKs, certain RAS and BRAF mutations, and NF1 loss-of-function mutations. In addition, dominant activating mutations in PTPN11 fuel pathogenic RAS/MAPK signaling and underlie certain human RASopathies (40% of Noonan syndrome and 80% of LEOPARD syndrome) and cancers (35% of JMML and up to 5% of many other cancers). These mutants destabilize an autoinhibited conformation of SHP2, which can also be activated by binding to diphosphotyrosine motifs in vivo or to synthetic diphosphopeptides in vitro. Multiple selective, allosteric inhibitors that stabilize this autoinhibited state and potently inhibit wild-type (WT) SHP2 have recently been reported, but the impact of these inhibitors on mutant forms of the protein is less well established. Here we investigate the activity of a diverse set of over fifty allosteric SHP2 inhibitors on multiple cancer-associated activating mutants of SHP2, both in the presence and absence of an activating diphosphopeptide. The rank order of potencies of the inhibitors remains identical for all mutants, although a decrease in potency relative to WT is seen in some mutants, which is magnified further in the presence of activating peptide. These results conform to a simple equilibrium model, where inhibitors show a reduction in potency against activated mutants that is proportional to the energetic magnitude of the activating mutation. Surprisingly, some common activating mutations of SHP2 (e.g., D61G) have a relatively modest energetic effect, and exhibit similar sensitivity to allosteric inhibitors as WT SHP2. We follow up these biochemical results with cellular inhibition studies in HEK293 cells stably transfected with the respective SHP2 mutants. Collectively, these results suggest that potent allosteric SHP2 inhibitors will be effective at inhibiting the growth of cancers driven by a subset of activating mutations in SHP2. Citation Format: David Wildes, Naing Aay, Andreas Buckl, Daphne Hsieh, Ashutosh S. Jogalekar, Gert Kiss, Elena S. Koltun, Abby Marquez, Kevin T. Mellem, Jason Romero, Mae Saldajeno-Concar, Christopher J. Schulze, Chris M. Semko, Walter Won, Robert J. Nichols, Carlos Stahlhut, Christos Tzitzilonis, Adrian L. Gill, Jacqueline A. Smith. Allosteric inhibition of SHP2 variants containing cancer-associated activating mutations [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2018; 2018 Apr 14-18; Chicago, IL. Philadelphia (PA): AACR; Cancer Res 2018;78(13 Suppl):Abstract nr 4877.
Abstract Genetic and pharmacologic evidence has shown that SHP2, a non-receptor protein tyrosine phosphatase (PTP) and scaffold protein encoded by the PTPN11 gene, is a convergent signal transduction node that integrates growth factor signals from multiple receptors to promote activation of RAS and its downstream effectors. Guided by structural insights from X-ray data, we describe a strategy aimed at the identification of a highly potent and selective allosteric SHP2 inhibitor series. Our efforts led to the discovery of RMC-4550, a potent and selective SHP2 inhibitor which exhibits a high quality, drug-like preclinical profile. RMC-4550 inhibits purified, activated full length human SHP2 with an IC50 of 1.55 nM, and has cellular IC50 of 39 nM in PC9 cells with a pERK readout. RMC-4550 has no detectable inhibitory activity up to 10 µM against the catalytic domain of SHP2, a panel of 14 additional protein phosphatases, and a panel of 468 protein kinases. RMC-4550 exhibits low to moderate cross species in vitro intrinsic clearance (3.6-24 µL/min/million cells) in hepatocytes, a high passive permeability (458 nm/s) and efflux ratio of 1. The ADME properties translate into favorable pharmacokinetic profiles in preclinical species. RMC-4550 has moderate to high bioavailability and has a half-life amenable for once daily oral administration. In the EGFR-driven KYSE-520 human esophageal cancer xenograft model, we observed a dose dependent efficacy consistent with target modulation, assessed by phospho-ERK inhibition in tumors. RMC-4550 is well tolerated at doses that achieved maximal and sustained efficacy in this model. RMC-4550 was synthesized in 5 linear (6 total) steps from the readily accessible or commercially available intermediates. The chemical structure and synthesis of RMC-4550, along with detailed structure-activity relationships will be presented. In summary, RMC-4550 exemplifies a novel class of potent allosteric inhibitors of SHP2 with an excellent drug like property profile. Citation Format: Elena S. Koltun, Naing Aay, Andreas Buckl, Ashutosh S. Jogalekar, Gert Kiss, Abby Marquez, Kevin T. Mellem, Kasia Mordec, Mae Saldajeno-Concar, Chris M. Semko, Nidhi Tibrewal, Christos Tzitzilonis, Walter Won, Jacqueline A. Smith, Susan E. Wilson, Robert J. Nichols, Zhengping Wang, David Wilds, Mallika Singh, Adrian L. Gill. RMC-4550, an allosteric inhibitor of SHP2: Synthesis, structure, and anti-tumor activity [abstract]. In: Proceedings of the American Association for Cancer Research Annual Meeting 2018; 2018 Apr 14-18; Chicago, IL. Philadelphia (PA): AACR; Cancer Res 2018;78(13 Suppl):Abstract nr 4878.
A series of novel, highly potent, selective, and ATP-competitive mammalian target of rapamycin (mTOR) inhibitors based on a benzoxazepine scaffold have been identified. Lead optimization resulted in the discovery of inhibitors with low nanomolar activity and greater than 1000-fold selectivity over the closely related PI3K kinases. Compound 28 (XL388) inhibited cellular phosphorylation of mTOR complex 1 (p-p70S6K, pS6, and p-4E-BP1) and mTOR complex 2 (pAKT (S473)) substrates. Furthermore, this compound displayed good pharmacokinetics and oral exposure in multiple species with moderate bioavailability. Oral administration of compound 28 to athymic nude mice implanted with human tumor xenografts afforded significant and dose-dependent antitumor activity.
With structural guidance, tropane-derived HTS hits were modified to optimize for HSP90 inhibition and a desirable in vivo profile. Through an iterative SAR development process 12i (XL888) was discovered and shown to reduce HSP90 client protein content in PD studies. Furthermore, efficacy experiments performed in a NCI-N87 mouse xenograft model demonstrated tumor regression in some dosing regimens.
The ERK/MAP kinase cascade is a key mechanism subject to dysregulation in cancer and is constitutively activated or highly upregulated in many tumor types. Mutations associated with upstream pathway components RAS and Raf occur frequently and contribute to the oncogenic phenotype through activation of MEK and then ERK. Inhibitors of MEK have been shown to effectively block upregulated ERK/MAPK signaling in a range of cancer cell lines and have further demonstrated early evidence of efficacy in the clinic for the treatment of cancer. Guided by structural insight, a strategy aimed at the identification of an optimal diphenylamine-based MEK inhibitor with an improved metabolism and safety profile versus PD-0325901 led to the discovery of development candidate 1-({3,4-difluoro-2-[(2-fluoro-4-iodophenyl)amino]phenyl}carbonyl)-3-[(2S)-piperidin-2-yl]azetidin-3-ol (XL518, GDC-0973) (1). XL518 exhibits robust in vitro and in vivo potency and efficacy in preclinical models with sustained duration of action and is currently in early stage clinical trials.
CDC7 is a serine/threonine kinase that has been shown to be required for the initiation and maintenance of DNA replication. Up-regulation of CDC7 is detected in multiple tumor cell lines, with inhibition of CDC7 resulting in cell cycle arrest. In this paper, we disclose the discovery of a potent and selective CDC7 inhibitor, XL413 (14), which was advanced into Phase 1 clinical trials. Starting from advanced lead 3, described in a preceding communication, we optimized the CDC7 potency and selectivity to demonstrate in vitro CDC7 dependent cell cycle arrest and in vivo tumor growth inhibition in a Colo-205 xenograft model.
We report the discovery of a series of 4-aryl-2-aminoalkylpyrimidine derivatives as potent and selective JAK2 inhibitors. High throughput screening of our in-house compound library led to the identification of hit 1, from which optimization resulted in the discovery of highly potent and selective JAK2 inhibitors. Advanced lead 10d demonstrated a significant dose-dependent pharmacodynamic and antitumor effect in a mouse xenograft model. Based upon the desirable profile of 10d (XL019) it was advanced into clinical trials.
Targeting glycosphingolipid synthesis has emerged as a novel approach for treating metabolic diseases. 32 (EXEL-0346) represents a new class of glucosylceramide synthase (GCS) inhibitors. This report details the elaboration of hit 8 with the goal of achieving and maintaining maximum GCS inhibition in vivo. 32 inhibited GCS with an IC(50) of 2 nM and achieved maximum hepatic GCS inhibition after four or five daily doses in rodents. Robust improvements in glucose tolerance in DIO mice and ZDF rats were observed after 2 weeks of q.d. dosing. Four weeks of dosing resulted in decreased plasma triglycerides and reduced hepatic fat deposition. Thus, 32 provides insight into the amount of metabolic regulation that can be restored following achievement of maximal target knockdown.
A series of substituted benzofuropyrimidinones with pan-PIM activities and excellent selectivity against a panel of diverse kinases is described. Initial exploration identified aryl benzofuropyrimidinones that were potent, but had cell permeability limitation. Using X-ray crystal structures of the bound PIM-1 complexes with 3, 5m, and 6d, we were able to guide the SAR and identify the alkyl benzofuropyrimidinone (6l) with good PIM potencies, permeability, and oral exposure.
A novel series of potent inhibitors of glucosylceramide synthase are described. The optimization of biochemical and cellular potency as well as ADME properties led to compound 23c. Broad tissue distribution was obtained following oral administration to mice. Thus 23c could be another useful tool compound for studying the effects of GCS inhibition in vitro and in vivo.