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Featured researches published by Lawrence R. McGee.


Journal of Medicinal Chemistry | 2014

Discovery of AMG 232, a Potent, Selective, and Orally Bioavailable MDM2–p53 Inhibitor in Clinical Development

Daqing Sun; Zhihong Li; Yosup Rew; Michael W. Gribble; Michael D. Bartberger; Hilary P. Beck; Jude Canon; Ada Chen; Xiaoqi Chen; David Chow; Jeffrey Deignan; Jason Duquette; John Eksterowicz; Benjamin Fisher; Brian M. Fox; Jiasheng Fu; Ana Z. Gonzalez; Felix Gonzalez-Lopez de Turiso; Jonathan B. Houze; Xin Huang; Min Jiang; Lixia Jin; Frank Kayser; Jiwen Liu; Mei-Chu Lo; Alexander M. Long; Brian Lucas; Lawrence R. McGee; Joel McIntosh; Jeff Mihalic

We recently reported the discovery of AM-8553 (1), a potent and selective piperidinone inhibitor of the MDM2-p53 interaction. Continued research investigation of the N-alkyl substituent of this series, focused in particular on a previously underutilized interaction in a shallow cleft on the MDM2 surface, led to the discovery of a one-carbon tethered sulfone which gave rise to substantial improvements in biochemical and cellular potency. Further investigation produced AMG 232 (2), which is currently being evaluated in human clinical trials for the treatment of cancer. Compound 2 is an extremely potent MDM2 inhibitor (SPR KD = 0.045 nM, SJSA-1 EdU IC50 = 9.1 nM), with remarkable pharmacokinetic properties and in vivo antitumor activity in the SJSA-1 osteosarcoma xenograft model (ED50 = 9.1 mg/kg).


Journal of Molecular Biology | 2009

INT131: A Selective Modulator of PPARγ

Alykhan Motani; Zhulun Wang; Jennifer Weiszmann; Lawrence R. McGee; Gary Lee; Qingxiang Liu; Jocelyn Staunton; Zexu Fang; Helen Fuentes; Michelle Lindstrom; Jinsong Liu; Donna H.T. Biermann; Juan C. Jaen; Nigel Walker; R. Marc Learned; Jin-Long Chen; Yang Li

Summary The nuclear hormone receptor peroxisome proliferator-activated receptor γ (PPARγ; NR1C3) plays a central role in adipogenesis and is the molecular target of the thiazolidinedione class of antidiabetic drugs. To overcome the well-known shortcomings of thiazolidinediones, we have identified INT131 (formerly T131 and AMG131) as a potent selective ligand for PPARγ that is structurally and pharmacologically distinct from glitazone agonists. In vitro biochemical and cell-based functional assays showed that INT131 mediates a distinct pattern of coregulator recruitment to PPARγ. In adipocytes, INT131 showed minimal stimulation of adipocyte differentiation and partially activated PPARγ target genes involved in adipogenesis and, at the same time, showed more agonistic activity on another set of target genes that may influence insulin sensitivity directly. These unique properties of INT131 may provide a mechanistic basis for its distinct pharmacological profile. In vivo , increases in glucose tolerance were observed in Zucker ( fa/fa ) rats following a 14-day oral treatment with INT131. Although the maximal efficacies of INT131 and rosiglitazone were similar with respect to improvements in glucose tolerance, INT131 had less effect on heart and lung weights, weight gain, hemodilution, and plasma volume. Thus, INT131 appears to selectively modulate PPARγ responses in an in vivo preclinical model, showing antidiabetic efficacy while exhibiting an improved hemodynamic and cardiovascular adverse effect profile compared to the full agonist rosiglitazone. X-ray crystallography revealed that INT131 interacts with PPARγ through a distinct binding mode, forming primarily hydrophobic contacts with the ligand-binding pocket without direct hydrogen-bonding interactions to key residues in helix 12 that are characteristic of full agonists. Mutagenesis studies on Tyr473 in helix 12 demonstrated this residue as essential for rosiglitazone-induced receptor activation, but nonessential for INT131 function in vitro , providing one possible molecular determinant for INT131s distinct pharmacology. INT131 is currently being evaluated in a clinical setting as a therapeutic agent for the treatment of type 2 diabetes.


Journal of Medicinal Chemistry | 2014

Selective and potent morpholinone inhibitors of the MDM2-p53 protein-protein interaction.

Ana Z. Gonzalez; John Eksterowicz; Michael D. Bartberger; Hilary P. Beck; Jude Canon; Ada Chen; David Chow; Jason Duquette; Brian M. Fox; Jiasheng Fu; Xin Huang; Jonathan B. Houze; Lixia Jin; Yihong Li; Zhihong Li; Yun Ling; Mei-Chu Lo; Alexander M. Long; Lawrence R. McGee; Joel McIntosh; Dustin L. McMinn; Jonathan D. Oliner; Tao Osgood; Yosup Rew; Anne Y. Saiki; Paul Shaffer; Sarah Wortman; Peter Yakowec; Xuelei Yan; Qiuping Ye

We previously reported the discovery of AMG 232, a highly potent and selective piperidinone inhibitor of the MDM2-p53 interaction. Our continued search for potent and diverse analogues led to the discovery of novel morpholinone MDM2 inhibitors. This change to a morpholinone core has a significant impact on both potency and metabolic stability compared to the piperidinone series. Within this morpholinone series, AM-8735 emerged as an inhibitor with remarkable biochemical potency (HTRF IC50 = 0.4 nM) and cellular potency (SJSA-1 EdU IC50 = 25 nM), as well as pharmacokinetic properties. Compound 4 also shows excellent antitumor activity in the SJSA-1 osteosarcoma xenograft model with an ED50 of 41 mg/kg. Lead optimization toward the discovery of this inhibitor as well as key differences between the morpholinone and the piperidinone series will be described herein.


Journal of Medicinal Chemistry | 2014

Novel Inhibitors of the MDM2-p53 Interaction Featuring Hydrogen Bond Acceptors as Carboxylic Acid Isosteres.

Ana Z. Gonzalez; Zhihong Li; Hilary P. Beck; Jude Canon; Ada Chen; David Chow; Jason Duquette; John Eksterowicz; Brian M. Fox; Jiasheng Fu; Xin Huang; Jonathan B. Houze; Lixia Jin; Yihong Li; Yun Ling; Mei-Chu Lo; Alexander M. Long; Lawrence R. McGee; Joel McIntosh; Jonathan D. Oliner; Tao Osgood; Yosup Rew; Anne Y. Saiki; Paul Shaffer; Sarah Wortman; Peter Yakowec; Xuelei Yan; Qiuping Ye; Dongyin Yu; Xiaoning Zhao

We previously reported the discovery of potent and selective morpholinone and piperidinone inhibitors of the MDM2-p53 interaction. These inhibitors have in common a carboxylic acid moiety that engages in an electrostatic interaction with MDM2-His96. Our continued search for potent and diverse inhibitors led to the discovery of novel replacements for these acids uncovering new interactions with the MDM2 protein. In particular, using pyridine or thiazole as isosteres of the carboxylic acid moiety resulted in very potent analogues. From these, AM-6761 (4) emerged as a potent inhibitor with remarkable biochemical (HTRF IC50 = 0.1 nM) and cellular potency (SJSA-1 EdU IC50 = 16 nM), as well as favorable pharmacokinetic properties. Compound 4 also shows excellent antitumor activity in the SJSA-1 osteosarcoma xenograft model with an ED50 of 11 mg/kg. Optimization efforts toward the discovery of these inhibitors as well as the new interactions observed with the MDM2 protein are described herein.


Bioorganic & Medicinal Chemistry Letters | 2009

Imidazo-pyrazine derivatives as potent CXCR3 antagonists

Xiaohui Du; Darin Gustin; Xiaoqi Chen; Jason Duquette; Lawrence R. McGee; Zhulun Wang; Karen Ebsworth; Kirk Henne; Bryan Lemon; Ji Ma; Shichang Miao; Emmanuel Sabalan; Timothy J. Sullivan; George Tonn; Tassie L. Collins; Julio C. Medina

A general way of improving the potency of CXCR3 antagonists with fused hetero-bicyclic cores was identified. Optimization efforts led to the discovery of a series of imidazo-pyrazine derivatives with improved pharmacokinetic properties in addition to increased potency. The efficacy of the lead compound 21 is evaluated in a mouse lung inflammation model.


Journal of Medicinal Chemistry | 2015

Discovery and in vivo evaluation of (S)-N-(1-(7-fluoro-2-(pyridin-2-yl)quinolin-3-yl)ethyl)-9H-purin-6-amine (AMG319) and related PI3Kδ inhibitors for inflammation and autoimmune disease.

Timothy D. Cushing; Xiaolin Hao; Youngsook Shin; Kristin L. Andrews; Matthew Frank Brown; Mario G. Cardozo; Yi Chen; Jason Duquette; Ben Fisher; Felix Gonzalez-Lopez de Turiso; Xiao He; Kirk R. Henne; Yi-Ling Hu; Randall W. Hungate; Michael G. Johnson; Ron C. Kelly; Brian Lucas; John D. McCarter; Lawrence R. McGee; Julio C. Medina; Tisha San Miguel; Deanna Mohn; Vatee Pattaropong; Liping H. Pettus; Andreas Reichelt; Robert M. Rzasa; Jennifer Seganish; Andrew Tasker; Robert C. Wahl; Sharon Wannberg

The development and optimization of a series of quinolinylpurines as potent and selective PI3Kδ kinase inhibitors with excellent physicochemical properties are described. This medicinal chemistry effort led to the identification of 1 (AMG319), a compound with an IC50 of 16 nM in a human whole blood assay (HWB), excellent selectivity over a large panel of protein kinases, and a high level of in vivo efficacy as measured by two rodent disease models of inflammation.


Bioorganic & Medicinal Chemistry | 2013

Discovery of INT131: A selective PPARγ modulator that enhances insulin sensitivity

Joshua P. Taygerly; Lawrence R. McGee; Steven M. Rubenstein; Jonathan B. Houze; Timothy D. Cushing; Yang Li; Alykhan Motani; Jin-Long Chen; Walter Frankmoelle; Guosen Ye; Marc Learned; Juan C. Jaen; Shichang Miao; Pieter B. M. W. M. Timmermans; Martin J. Thoolen; Patrick C. Kearney; John A. Flygare; Holger Beckmann; Jennifer Weiszmann; Michelle Lindstrom; Nigel Walker; Jinsong Liu; Donna H.T. Biermann; Zhulun Wang; Atsushi Hagiwara; Tetsuya Iida; Hisateru Aramaki; Yuki Kitao; Hisashi Shinkai; Noboru Furukawa

PPARγ is a member of the nuclear hormone receptor family and plays a key role in the regulation of glucose homeostasis. This Letter describes the discovery of a novel chemical class of diarylsulfonamide partial agonists that act as selective PPARγ modulators (SPPARγMs) and display a unique pharmacological profile compared to the thiazolidinedione (TZD) class of PPARγ full agonists. Herein we report the initial discovery of partial agonist 4 and the structure-activity relationship studies that led to the selection of clinical compound INT131 (3), a potent PPARγ partial agonist that displays robust glucose-lowering activity in rodent models of diabetes while exhibiting a reduced side-effects profile compared to marketed TZDs.


Journal of the American Chemical Society | 2012

An expeditious synthesis of the MDM2-p53 inhibitor AM-8553.

Brian Lucas; Benjamin Fisher; Lawrence R. McGee; Steven H. Olson; Julio C. Medina; Eugene Cheung

The development of the structurally complex MDM2/p53 inhibitor AM-8553 was impeded by the low yield of the initial synthesis. A second generation synthesis is described that features a Noyori dynamic kinetic resolution, a highly diastereoselective allylation, and a novel oxazoline-assisted piperidinone forming reaction to provide AM-8553 in 35.6% yield and 11 steps.


Journal of Medicinal Chemistry | 2012

Discovery and in Vivo Evaluation of Dual PI3Kβ/δ Inhibitors

Felix Gonzalez-Lopez de Turiso; Youngsook Shin; Matthew Frank Brown; Mario G. Cardozo; Yi Chen; David Fong; Xiaolin Hao; Xiao He; Kirk R. Henne; Yi-Ling Hu; Michael G. Johnson; Todd J. Kohn; Julia Winslow Lohman; Helen J. McBride; Lawrence R. McGee; Julio C. Medina; Daniela Metz; Kent Miner; Deanna Mohn; Vatee Pattaropong; Jennifer Seganish; Jillian L. Simard; Sharon Wannberg; Douglas A. Whittington; Gang Yu; Timothy D. Cushing

Structure-based rational design led to the synthesis of a novel series of potent PI3K inhibitors. The optimized pyrrolopyridine analogue 63 was a potent and selective PI3Kβ/δ dual inhibitor that displayed suitable physicochemical properties and pharmacokinetic profile for animal studies. Analogue 63 was found to be efficacious in animal models of inflammation including a keyhole limpet hemocyanin (KLH) study and a collagen-induced arthritis (CIA) disease model of rheumatoid arthritis. These studies highlight the potential therapeutic value of inhibiting both the PI3Kβ and δ isoforms in the treatment of a number of inflammatory diseases.


Bioorganic & Medicinal Chemistry Letters | 2013

Inhibiting NF-κB-inducing kinase (NIK): Discovery, structure-based design, synthesis, structure–activity relationship, and co-crystal structures

Kexue Li; Lawrence R. McGee; Ben Fisher; Athena Sudom; Jinsong Liu; Steven M. Rubenstein; Mohmed K. Anwer; Timothy D. Cushing; Youngsook Shin; Merrill Ayres; Fei Lee; John Eksterowicz; Paul Faulder; Bohdan Waszkowycz; Olga Plotnikova; Ellyn Farrelly; Shou-Hua Xiao; Guoqing Chen; Zhulun Wang

The discovery, structure-based design, synthesis, and optimization of NIK inhibitors are described. Our work began with an HTS hit, imidazopyridinyl pyrimidinamine 1. We utilized homology modeling and conformational analysis to optimize the indole scaffold leading to the discovery of novel and potent conformationally constrained inhibitors such as compounds 25 and 28. Compounds 25 and 31 were co-crystallized with NIK kinase domain to provide structural insights.

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