Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Steve Price is active.

Publication


Featured researches published by Steve Price.


Nature | 2013

Mechanism of MEK inhibition determines efficacy in mutant KRAS- versus BRAF-driven cancers

Georgia Hatzivassiliou; Jacob R. Haling; Huifen Chen; Kyung Song; Steve Price; Robert Heald; Joanne Frances Mary Hewitt; Mark Zak; Ariana Peck; Christine Orr; Mark Merchant; Klaus P. Hoeflich; Jocelyn Chan; Shiuh-Ming Luoh; Daniel J. Anderson; Mary J. C. Ludlam; Christian Wiesmann; Mark Ultsch; Lori Friedman; Shiva Malek; Marcia Belvin

KRAS and BRAF activating mutations drive tumorigenesis through constitutive activation of the MAPK pathway. As these tumours represent an area of high unmet medical need, multiple allosteric MEK inhibitors, which inhibit MAPK signalling in both genotypes, are being tested in clinical trials. Impressive single-agent activity in BRAF-mutant melanoma has been observed; however, efficacy has been far less robust in KRAS-mutant disease. Here we show that, owing to distinct mechanisms regulating MEK activation in KRAS- versus BRAF-driven tumours, different mechanisms of inhibition are required for optimal antitumour activity in each genotype. Structural and functional analysis illustrates that MEK inhibitors with superior efficacy in KRAS-driven tumours (GDC-0623 and G-573, the former currently in phase I clinical trials) form a strong hydrogen-bond interaction with S212 in MEK that is critical for blocking MEK feedback phosphorylation by wild-type RAF. Conversely, potent inhibition of active, phosphorylated MEK is required for strong inhibition of the MAPK pathway in BRAF-mutant tumours, resulting in superior efficacy in this genotype with GDC-0973 (also known as cobimetinib), a MEK inhibitor currently in phase III clinical trials. Our study highlights that differences in the activation state of MEK in KRAS-mutant tumours versus BRAF-mutant tumours can be exploited through the design of inhibitors that uniquely target these distinct activation states of MEK. These inhibitors are currently being evaluated in clinical trials to determine whether improvements in therapeutic index within KRAS versus BRAF preclinical models translate to improved clinical responses in patients.


Journal of Medicinal Chemistry | 2013

Discovery of 2-{3-[2-(1-Isopropyl-3-methyl-1H-1,2–4-triazol-5-yl)-5,6-dihydrobenzo[f]imidazo[1,2-d][1,4]oxazepin-9-yl]-1H-pyrazol-1-yl}-2-methylpropanamide (GDC-0032): A β-Sparing Phosphoinositide 3-Kinase Inhibitor with High Unbound Exposure and Robust in Vivo Antitumor Activity

Chudi Ndubaku; Timothy P. Heffron; Steven Staben; Matthew Baumgardner; Nicole Blaquiere; Erin K. Bradley; Richard James Bull; Steven Do; Jennafer Dotson; Danette Dudley; Kyle A. Edgar; Lori Friedman; Richard Goldsmith; Robert Heald; Aleksandr Kolesnikov; Leslie Lee; Cristina Lewis; Michelle Nannini; Jim Nonomiya; Jodie Pang; Steve Price; Wei Wei Prior; Laurent Salphati; Steve Sideris; Jeffery J. Wallin; Lan Wang; Binqing Wei; Deepak Sampath; Alan G. Olivero

Dysfunctional signaling through the phosphoinositide 3-kinase (PI3K)/AKT/mTOR pathway leads to uncontrolled tumor proliferation. In the course of the discovery of novel benzoxepin PI3K inhibitors, we observed a strong dependency of in vivo antitumor activity on the free-drug exposure. By lowering the intrinsic clearance, we derived a set of imidazobenzoxazepin compounds that showed improved unbound drug exposure and effectively suppressed growth of tumors in a mouse xenograft model at low drug dose levels. One of these compounds, GDC-0032 (11l), was progressed to clinical trials and is currently under phase I evaluation as a potential treatment for human malignancies.


Journal of Medicinal Chemistry | 2012

Discovery of Novel PI3-Kinase δ Specific Inhibitors for the Treatment of Rheumatoid Arthritis: Taming CYP3A4 Time-Dependent Inhibition

Brian Safina; Stewart Baker; Matt Baumgardner; Paul M. Blaney; Bryan K. Chan; Yung-Hsiang Chen; Matthew W. Cartwright; Georgette Castanedo; Christine Chabot; Arnaud J. Cheguillaume; Paul Goldsmith; David Michael Goldstein; Bindu Goyal; Timothy Colin Hancox; Raj K. Handa; Pravin S. Iyer; Jasmit Kaur; Rama K. Kondru; Jane R. Kenny; Sussie Lerche Krintel; Jun Li; John D. Lesnick; Matthew C. Lucas; Cristina Lewis; Sophie Mukadam; Jeremy Murray; Alan John Nadin; Jim Nonomiya; Fernando Padilla; Wylie Solang Palmer

PI3Kδ is a lipid kinase and a member of a larger family of enzymes, PI3K class IA(α, β, δ) and IB (γ), which catalyze the phosphorylation of PIP2 to PIP3. PI3Kδ is mainly expressed in leukocytes, where it plays a critical, nonredundant role in B cell receptor mediated signaling and provides an attractive opportunity to treat diseases where B cell activity is essential, e.g., rheumatoid arthritis. We report the discovery of novel, potent, and selective PI3Kδ inhibitors and describe a structural hypothesis for isoform (α, β, γ) selectivity gained from interactions in the affinity pocket. The critical component of our initial pharmacophore for isoform selectivity was strongly associated with CYP3A4 time-dependent inhibition (TDI). We describe a variety of strategies and methods for monitoring and attenuating TDI. Ultimately, a structure-based design approach was employed to identify a suitable structural replacement for further optimization.


Bioorganic & Medicinal Chemistry Letters | 2007

Identification and optimisation of a series of substituted 5-pyridin-2-yl-thiophene-2-hydroxamic acids as potent histone deacetylase (HDAC) inhibitors

Steve Price; Walter Bordogna; Richard J. Bull; David E. Clark; Peter Crackett; Hazel Joan Dyke; Matthew Gill; Neil Victor Harris; Julia Gorski; Julia Lloyd; Peter Lockey; Julia Mullett; Alan Geoffrey Roach; Fabien Roussel; Anne White

Further investigation of a series of thienyl-based hydroxamic acids that included ADS100380 and ADS102550 led to the identification of the 5-pyridin-2-yl-thiophene-2-hydroxamic acid 3c, which possessed modest HDAC inhibitory activity. Substitution at the 5- and 6-positions of the pyridyl ring of compound 3c provided compounds 5a-g, 7a, b, 9, and 13a. Compound 5b demonstrated improved potency, in vitro DMPK profile, and rat oral bioavailability, compared to ADS102550. Functionalisation of the pendent phenyl group of compounds 5b, 5e and 13a provided analogues that possessed excellent enzyme inhibition and anti-proliferative activity.


Journal of Medicinal Chemistry | 2012

Discovery of Novel Allosteric Mitogen-Activated Protein Kinase Kinase (MEK) 1,2 Inhibitors Possessing Bidentate Ser212 Interactions.

Robert Heald; Philip Stephen Jackson; Pascal Savy; Mark M. Jones; Emanuela Gancia; Brenda Burton; Richard Newman; Jason Boggs; Emily Chan; Jocelyn Chan; Edna F. Choo; Mark Merchant; Patrick Rudewicz; Mark Ultsch; Christian Wiesmann; Qin Yue; Marcia Belvin; Steve Price

Using structure-based design, two novel series of highly potent biaryl amine mitogen-activated protein kinase kinase (MEK) inhibitors have been discovered. These series contain an H-bond acceptor, in a shifted position compared with previously disclosed compounds, and an adjacent H-bond donor, resulting in a bidentate interaction with the Ser212 residue of MEK1. The most potent compound identified, 1 (G-894), is orally active in in vivo pharmacodynamic and tumor xenograft models.


Bioorganic & Medicinal Chemistry Letters | 2012

Potent and selective inhibitors of PI3Kδ: obtaining isoform selectivity from the affinity pocket and tryptophan shelf.

Daniel P. Sutherlin; Stewart J. Baker; Angelina Bisconte; Paul Blaney; Anthony Brown; Bryan K. Chan; David Chantry; Georgette Castanedo; Paul Depledge; Paul Goldsmith; David Michael Goldstein; Timothy Colin Hancox; Jasmit Kaur; David Knowles; Rama K. Kondru; John Lesnick; Matthew C. Lucas; Cristina Lewis; Jeremy Murray; Alan Nadin; Jim Nonomiya; Jodie Pang; Neil Anthony Pegg; Steve Price; Karin Reif; Brian Safina; Laurent Salphati; Steven Staben; Eileen Mary Seward; Stephen J. Shuttleworth

A potent inhibitor of PI3Kδ that is ≥ 200 fold selective for the remaining three Class I PI3K isoforms and additional kinases is described. The hypothesis for selectivity is illustrated through structure activity relationships and crystal structures of compounds bound to a K802T mutant of PI3Kγ. Pharmacokinetic data in rats and mice support the use of 3 as a useful tool compound to use for in vivo studies.


Journal of Medicinal Chemistry | 2016

The Rational Design of Selective Benzoxazepin Inhibitors of the α-Isoform of Phosphoinositide 3-Kinase Culminating in the Identification of (S)-2-((2-(1-Isopropyl-1H-1,2,4-triazol-5-yl)-5,6-dihydrobenzo[f]imidazo[1,2-d][1,4]oxazepin-9-yl)oxy)propanamide (GDC-0326)

Timothy P. Heffron; Robert Heald; Chudi Ndubaku; Binqing Wei; Martin Augistin; Steven Do; Kyle A. Edgar; Charles Eigenbrot; Lori Friedman; Emanuela Gancia; Philip Stephen Jackson; G. Jones; Aleksander Kolesnikov; Leslie Lee; John D. Lesnick; Cristina Lewis; Neville McLean; Mario Mörtl; Jim Nonomiya; Jodie Pang; Steve Price; Wei Wei Prior; Laurent Salphati; Steve Sideris; Steven Staben; Stefan Steinbacher; Vickie Tsui; Jeffrey Wallin; Deepak Sampath; Alan G. Olivero

Inhibitors of the class I phosphoinositide 3-kinase (PI3K) isoform PI3Kα have received substantial attention for their potential use in cancer therapy. Despite the particular attraction of targeting PI3Kα, achieving selectivity for the inhibition of this isoform has proved challenging. Herein we report the discovery of inhibitors of PI3Kα that have selectivity over the other class I isoforms and all other kinases tested. In GDC-0032 (3, taselisib), we previously minimized inhibition of PI3Kβ relative to the other class I insoforms. Subsequently, we extended our efforts to identify PI3Kα-specific inhibitors using PI3Kα crystal structures to inform the design of benzoxazepin inhibitors with selectivity for PI3Kα through interactions with a nonconserved residue. Several molecules selective for PI3Kα relative to the other class I isoforms, as well as other kinases, were identified. Optimization of properties related to drug metabolism then culminated in the identification of the clinical candidate GDC-0326 (4).


Bioorganic & Medicinal Chemistry Letters | 2010

Identification and hit-to-lead exploration of a novel series of histamine H4 receptor inverse agonists.

Sue Cramp; Hazel Joan Dyke; Christopher Higgs; David E. Clark; Matthew Gill; Pascal Savy; Neil Jennings; Steve Price; Peter Lockey; Dennis Norman; Soraya S. Porres; Francis X. Wilson; Alison Jones; Nigel Ramsden; Raffaella Mangano; Dan Leggate; Marie Andersson; Richard Hale

The identification and hit-to-lead exploration of a novel, potent and selective series of histamine H(4) receptor inverse agonists is described. The initial hit, 3A (IC(50) 19 nM) was identified by means of a ligand-based virtual screening approach. Subsequent medicinal chemistry exploration yielded 18I which possessed increased potency (R-enantiomer IC(50) 1 nM) as well as enhanced microsomal stability.


Bioorganic & Medicinal Chemistry Letters | 2013

Identification of GNE-293, a potent and selective PI3Kδ inhibitor: navigating in vitro genotoxicity while improving potency and selectivity.

Brian Safina; Zachary Kevin Sweeney; Jun Li; Bryan K. Chan; Angelina Bisconte; Diane E. Carrera; Georgette Castanedo; Michael Flagella; Robert Heald; Cristina Lewis; Jeremy Murray; Jim Nonomiya; Jodie Pang; Steve Price; Karin Reif; Laurent Salphati; Eileen Mary Seward; Binqing Wei; Daniel P. Sutherlin

In an effort to identify potent and isoform selective inhibitors of PI3Kδ, GNE-293 (34) was identified. Inhibitor 2 was found to induce micronuclei formation in both the MNT and HCA in vitro assays. Compounds testing negative for genotoxicity were successfully identified through modifications of the 2-benzimidazole substituent and the methylene moiety to disrupt planarity. A variety of heteroatom linkers were explored to examine their effect on potency and isoform selectivity by restricting torsional angles to favor ligand interactions with PI3Kδs Trp760. These modifications also resulted in an improved in vivo pharmacokinetic profile.


Bioorganic & Medicinal Chemistry Letters | 2014

Structure based design of novel 6,5 heterobicyclic mitogen-activated protein kinase kinase (MEK) inhibitors leading to the discovery of imidazo[1,5-a] pyrazine G-479.

Kirk Robarge; Wendy Lee; Charles Eigenbrot; Mark Ultsch; Christian Wiesmann; Robert Heald; Steve Price; Joanne Frances Mary Hewitt; Philip Stephen Jackson; Pascal Savy; Brenda Burton; Edna F. Choo; Jodie Pang; Jason Boggs; April Yang; Xioaye Yang; Matthew Baumgardner

Use of the tools of SBDD including crystallography led to the discovery of novel and potent 6,5 heterobicyclic MEKis [J. Med. Chem.2012, 55, 4594]. The core change from a 5,6 heterobicycle to a 6,5 heterobicycle was driven by the desire for increased structural diversity and aided by the co-crystal structure of G-925 [J. Med. Chem.2012, 55, 4594]. The key design feature was the shift of the attachment of the five-membered heterocyclic ring towards the B ring while maintaining the key hydroxamate and anilino pharamcophoric elements in a remarkably similar position as in G-925. From modelling, changing the connection point of the five membered ring heterocycle placed the H-bond accepting nitrogen within a good distance and angle to the Ser212 [J. Med. Chem.2012, 55, 4594]. The resulting novel 6,5 benzoisothiazole MEKi G-155 exhibited improved potency versus aza-benzofurans G-925 and G-963 but was a potent inhibitor of cytochrome P450s 2C9 and 2C19. Lowering the logD by switching to the more polar imidazo[1,5-a] pyridine core significantly diminished 2C9/2C19 inhibition while retaining potency. The imidazo[1,5-a] pyridine G-868 exhibited increased potency versus the starting point for this work (aza-benzofuran G-925) leading to deprioritization of the azabenzofurans. The 6,5-imidazo[1,5-a] pyridine scaffold was further diversified by incorporating a nitrogen at the 7 position to give the imidazo[1,5-a] pyrazine scaffold. The introduction of the C7 nitrogen was driven by the desire to improve metabolic stability by blocking metabolism at the C7 and C8 positions (particularly the HLM stability). It was found that improving on G-868 (later renamed GDC-0623) required combining C7 nitrogen with a diol hydroxamate to give G-479. G-479 with polarity distributed throughout the molecule was improved over G-868 in many aspects.

Collaboration


Dive into the Steve Price's collaboration.

Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Top Co-Authors

Avatar
Researchain Logo
Decentralizing Knowledge