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Featured researches published by Esther Cheng Yin Lee.


Bioorganic & Medicinal Chemistry Letters | 2013

The design and synthesis of a potent glucagon receptor antagonist with favorable physicochemical and pharmacokinetic properties as a candidate for the treatment of type 2 diabetes mellitus.

Angel Guzman-Perez; Jeffrey A. Pfefferkorn; Esther Cheng Yin Lee; Benjamin D. Stevens; Gary E. Aspnes; Jianwei Bian; Mary Theresa Didiuk; Kevin J. Filipski; Dianna E. Moore; Christian Perreault; Matthew F. Sammons; Meihua Tu; Janice A. Brown; Karen Atkinson; John Litchfield; Beijing Tan; Brian Samas; William J. Zavadoski; Christopher T. Salatto; Judith L. Treadway

A novel and potent small molecule glucagon receptor antagonist for the treatment of diabetes mellitus is reported. This candidate, (S)-3-[4-(1-{3,5-dimethyl-4-[4-(trifluoromethyl)-1H-pyrazol-1-yl]phenoxy}butyl)benzamido]propanoic acid, has lower molecular weight and lipophilicity than historical glucagon receptor antagonists, resulting in excellent selectivity in broad-panel screening, lower cytotoxicity, and excellent overall in vivo safety in early pre-clinical testing. Additionally, it displays low in vivo clearance and excellent oral bioavailability in both rats and dogs. In a rat glucagon challenge model, it was shown to reduce the glucagon-elicited glucose excursion in a dose-dependent manner and at a concentration consistent with its rat in vitro potency. Its properties make it an excellent candidate for further investigation.


Bioorganic & Medicinal Chemistry Letters | 2015

Recent progress in the development of small-molecule glucagon receptor antagonists

Matthew F. Sammons; Esther Cheng Yin Lee

The endocrine hormone glucagon stimulates hepatic glucose output via its action at the glucagon receptor (GCGr) in the liver. In the diabetic state, dysregulation of glucagon secretion contributes to abnormally elevated hepatic glucose output. The inhibition of glucagon-induced hepatic glucose output via antagonism of the GCGr using small-molecule ligands is a promising mechanism for improving glycemic control in the diabetic state. Clinical data evaluating the therapeutic potential of small-molecule GCGr antagonists is currently emerging. Recently disclosed clinical data demonstrates the potential efficacy and possible therapeutic limitations of small-molecule GCGr antagonists. Recent pre-clinical work on the development of GCGr antagonists is also summarized.


Bioorganic & Medicinal Chemistry Letters | 2012

A novel series of glucagon receptor antagonists with reduced molecular weight and lipophilicity.

Kevin J. Filipski; Jianwei Bian; David Christopher Ebner; Esther Cheng Yin Lee; Jian-Cheng Li; Matthew F. Sammons; Stephen W. Wright; Benjamin D. Stevens; Mary Theresa Didiuk; Meihua Tu; Christian Perreault; Janice A. Brown; Karen Atkinson; Beijing Tan; Christopher T. Salatto; John Litchfield; Jeffrey A. Pfefferkorn; Angel Guzman-Perez

A novel series of glucagon receptor antagonists has been discovered. These pyrazole ethers and aminopyrazoles have lower molecular weight and increased polarity such that the molecules fall into better drug-like property space. This work has culminated in compounds 44 and 50 that were shown to have good pharmacokinetic attributes in dog, in contrast to rats, in which clearance was high; and compound 49, which demonstrated a dose-dependent reduction in glucose excursion in a rat glucagon challenge experiment.


ACS Medicinal Chemistry Letters | 2013

Chemical Probe Identification Platform for Orphan GPCRs Using Focused Compound Screening: GPR39 as a Case Example.

Markus Boehm; David Hepworth; Paula M. Loria; Lisa D. Norquay; Kevin J. Filipski; Janice E. Chin; Kimberly O'keefe Cameron; Martin B. Brenner; Peter Bonnette; Shawn Cabral; Edward L. Conn; David Christopher Ebner; Denise Gautreau; John R. Hadcock; Esther Cheng Yin Lee; Alan M. Mathiowetz; Michelle Morin; Lucy Rogers; Aaron Smith; Maria VanVolkenburg; Philip A. Carpino

Orphan G protein-coupled receptors (oGPCRs) are a class of integral membrane proteins for which endogenous ligands or transmitters have not yet been discovered. Transgenic animal technologies have uncovered potential roles for many of these oGPCRs, providing new targets for the treatment of various diseases. Understanding signaling pathways of oGPCRs and validating these receptors as potential drug targets requires the identification of chemical probe compounds to be used in place of endogenous ligands to interrogate these receptors. A novel chemical probe identification platform was created in which GPCR-focused libraries were screened against sets of oGPCR targets, with a goal of discovering fit-for-purpose chemical probes for the more druggable members of the set. Application of the platform to a set of oGPCRs resulted in the discovery of the first reported small molecule agonists for GPR39, a receptor implicated in the regulation of insulin secretion and preservation of beta cells in the pancreas. Compound 1 stimulated intracellular calcium mobilization in recombinant and native cells in a GPR39-specific manner but did not potentiate glucose-stimulated insulin secretion in human islet preparations.


Bioorganic & Medicinal Chemistry Letters | 2014

Identification of a novel conformationally constrained glucagon receptor antagonist

Esther Cheng Yin Lee; Meihua Tu; Benjamin D. Stevens; Jianwei Bian; Gary E. Aspnes; Christian Perreault; Matthew F. Sammons; Stephen W. Wright; John Litchfield; Amit S. Kalgutkar; Raman Sharma; Mary Theresa Didiuk; David Christopher Ebner; Kevin J. Filipski; Janice A. Brown; Karen Atkinson; Jeffrey A. Pfefferkorn; Angel Guzman-Perez

Identification of orally active, small molecule antagonists of the glucagon receptor represents a novel treatment paradigm for the management of type 2 diabetes mellitus. The present work discloses novel glucagon receptor antagonists, identified via conformational constraint of current existing literature antagonists. Optimization of lipophilic ligand efficiency (LLE or LipE) culminated in enantiomers (+)-trans-26 and (-)-trans-27 which exhibit good physicochemical and in vitro drug metabolism profiles. In vivo, significant pharmacokinetic differences were noted with the two enantiomers, which were primarily driven through differences in clearance rates. Enantioselective oxidation by cytochrome P450 was ruled out as a causative factor for pharmacokinetic differences.


Drug Metabolism and Disposition | 2014

Metabolites in Safety Testing Assessment in Early Clinical Development: A Case Study with a Glucokinase Activator

Raman Sharma; John Litchfield; Karen Atkinson; Heather Eng; Neeta B. Amin; William S. Denney; John C. Pettersen; Theunis C. Goosen; Li Di; Esther Cheng Yin Lee; Jeffrey A. Pfefferkorn; Deepak Dalvie; Amit S. Kalgutkar

The present article summarizes Metabolites in Safety Testing (MIST) studies on a glucokinase activator, N,N-dimethyl-5-((2-methyl-6-((5-methylpyrazin-2-yl)carbamoyl)benzofuran-4-yl)oxy)pyrimidine-2-carboxamide (PF-04937319), which is under development for the treatment of type 2 diametes mellitus. Metabolic profiling in rat, dog, and human hepatocytes revealed that PF-04937319 is metabolized via oxidative (major) and hydrolytic pathways (minor). N-Demethylation to metabolite M1 [N-methyl-5-((2-methyl-6-((5-methylpyrazin-2-yl)carbamoyl)benzofuran-4-yl)oxy)pyrimidine-2-carboxamide] was the major metabolic fate of PF-04937319 in human (but not rat or dog) hepatocytes, and was catalyzed by CYP3A and CYP2C isoforms. Qualitative examination of circulating metabolites in humans at the 100- and 300-mg doses from a 14-day multiple dose study revealed unchanged parent drug and M1 as principal components. Because M1 accounted for 65% of the drug-related material at steady state, an authentic standard was synthesized and used for comparison of steady-state exposures in humans and the 3-month safety studies in rats and dogs at the no-observed-adverse-effect level. Although circulating levels of M1 were very low in beagle dogs and female rats, adequate coverage was obtained in terms of total maximal plasma concentration (∼7.7× and 1.8×) and area under the plasma concentration-time curve (AUC; 3.6× and 0.8× AUC) relative to the 100- and 300-mg doses, respectively, in male rats. Examination of primary pharmacology revealed M1 was less potent as a glucokinase activator than the parent drug (compound PF-04937319: EC50 = 0.17 μM; M1: EC50 = 4.69 μM). Furthermore, M1 did not inhibit major human P450 enzymes (IC50 > 30 μM), and was negative in the Salmonella Ames assay, with minimal off-target pharmacology, based on CEREP broad ligand profiling. Insights gained from this analysis should lead to a more efficient and focused development plan for fulfilling MIST requirements with PF-04937319.


Bioorganic & Medicinal Chemistry Letters | 2017

Amine promiscuity and toxicology analysis

Esther Cheng Yin Lee; Gregory S. Steeno; Anne Mai Wassermann; Liying Zhang; Falgun Shah; David A. Price

Drug discovery programs often face challenges to obtain sufficient duration of action of the drug (i.e. seek longer half-lives). If the pharmacodynamic response is driven by free plasma concentration of the drug then extending the plasma drug concentration is a valid approach. Half-life is dependent on the volume of distribution, which in turn can be dependent upon the ionization state of the molecule. Basic compounds tend to have a higher volume of distribution leading to longer half-lives. However, it has been shown that bases may also have higher promiscuity. In this work, we describe an analysis of in vitro pharmacological profiling and toxicology data investigating the role of primary, secondary, and tertiary amines in imparting promiscuity and thus off-target toxicity. Primary amines are found to be less promiscuous in in vitro assays and have improved profiles in in vivo toxicology studies compared to secondary and tertiary amines.


Bioorganic & Medicinal Chemistry Letters | 2016

Optimization of amide-based EP3 receptor antagonists.

Esther Cheng Yin Lee; Kentaro Futatsugi; Kevin B. Bahnck; Steven B. Coffey; David R. Derksen; Amit S. Kalgutkar; Paula M. Loria; Raman Sharma

Prostaglandin E receptor subtype 3 (EP3) antagonism may treat a variety of symptoms from inflammation to cardiovascular and metabolic diseases. Previously, most EP3 antagonists were large acidic ligands that mimic the substrate, prostaglandin E2 (PGE2). This manuscript describes the optimization of a neutral small molecule amide series with improved lipophilic efficiency (LipE) also known as lipophilic ligand efficiency (LLE) ((a) Nat. Rev. Drug Disc.2007, 6, 881; (b) Annu. Rep. Med. Chem.2010, 45, 380).


Journal of Medicinal Chemistry | 2018

Optimization of Metabolic and Renal Clearance in a Series of Indole Acid Direct Activators of 5′-Adenosine Monophosphate-Activated Protein Kinase (AMPK)

David J. Edmonds; Daniel W. Kung; Amit S. Kalgutkar; Kevin J. Filipski; David Christopher Ebner; Shawn Cabral; Aaron Smith; Gary E. Aspnes; Samit Kumar Bhattacharya; Kris A. Borzilleri; Janice A. Brown; Matthew F. Calabrese; Nicole Caspers; Emily Cokorinos; Edward L. Conn; Matthew S. Dowling; Heather Eng; Bo Feng; Dilinie P. Fernando; Nathan E. Genung; Michael Herr; Ravi G. Kurumbail; Sophie Y. Lavergne; Esther Cheng Yin Lee; Qifang Li; Sumathy Mathialagan; Russell A. Miller; Jane Panteleev; Jana Polivkova; Francis Rajamohan

Optimization of the pharmacokinetic (PK) properties of a series of activators of adenosine monophosphate-activated protein kinase (AMPK) is described. Derivatives of the previously described 5-aryl-indole-3-carboxylic acid clinical candidate (1) were examined with the goal of reducing glucuronidation rate and minimizing renal excretion. Compounds 10 (PF-06679142) and 14 (PF-06685249) exhibited robust activation of AMPK in rat kidneys as well as desirable oral absorption, low plasma clearance, and negligible renal clearance in preclinical species. A correlation of in vivo renal clearance in rats with in vitro uptake by human and rat renal organic anion transporters (human OAT/rat Oat) was identified. Variation of polar functional groups was critical to mitigate active renal clearance mediated by the Oat3 transporter. Modification of either the 6-chloroindole core to a 4,6-difluoroindole or the 5-phenyl substituent to a substituted 5-(3-pyridyl) group provided improved metabolic stability while minimizing propensity for active transport by OAT3.


Archive | 2012

Glucagon receptor modulators

Gary Erik Aspnes; Mary Theresa Didiuk; Kevin J. Filipski; Angel Guzman-Perez; Esther Cheng Yin Lee; Jeffrey A. Pfefferkorn; Benjamin D. Stevens; Meihua Mike Tu

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