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Dive into the research topics where Matthew Frank Brown is active.

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Featured researches published by Matthew Frank Brown.


Journal of Medicinal Chemistry | 2010

Discovery of CP-690,550: A Potent and Selective Janus Kinase (JAK) Inhibitor for the Treatment of Autoimmune Diseases and Organ Transplant Rejection

Mark Edward Flanagan; Todd Andrew Blumenkopf; Matthew Frank Brown; Jeffrey M. Casavant; Chang Shang-Poa; Jonathan L. Doty; Eileen A. Elliott; Michael B. Fisher; Michael Hines; Craig R. Kent; Elizabeth M. Kudlacz; Brett M. Lillie; Kelly S. Magnuson; Sandra P. McCurdy; Michael John Munchhof; Bret D. Perry; Perry S. Sawyer; Timothy J. Strelevitz; Chakrapani Subramanyam; Jianmin Sun; David A. Whipple; Paul S. Changelian

There is a critical need for safer and more convenient treatments for organ transplant rejection and autoimmune disorders such as rheumatoid arthritis. Janus tyrosine kinases (JAK1, JAK3) are expressed in lymphoid cells and are involved in the signaling of multiple cytokines important for various T cell functions. Blockade of the JAK1/JAK3-STAT pathway with a small molecule was anticipated to provide therapeutic immunosuppression/immunomodulation. The Pfizer compound library was screened against the catalytic domain of JAK3 resulting in the identification of a pyrrolopyrimidine-based series of inhibitors represented by CP-352,664 (2a). Synthetic analogues of 2a were screened against the JAK enzymes and evaluated in an IL-2 induced T cell blast proliferation assay. Select compounds were evaluated in rodent efficacy models of allograft rejection and destructive inflammatory arthritis. Optimization within this chemical series led to identification of CP-690,550 1, a potential first-in-class JAK inhibitor for treatment of autoimmune diseases and organ transplant rejection.


Journal of Biological Chemistry | 2003

CP-481,715, a Potent and Selective CCR1 Antagonist with Potential Therapeutic Implications for Inflammatory Diseases

Ronald P. Gladue; Laurie Tylaska; Paul D. Lira; John Charles Kath; Christopher Stanley Poss; Matthew Frank Brown; Timothy Joseph Paradis; Maryrose J. Conklyn; Kevin T. Ogborne; Molly A. McGlynn; Brett M. Lillie; Amy P DiRico; Erin N Mairs; Eric McElroy; William H. Martin; Ingrid A. Stock; Richard M. Shepard; Henry J. Showell; Kuldeep Neote

The chemokines CCL3 and CCL5, as well as their shared receptor CCR1, are believed to play a role in the pathogenesis of several inflammatory diseases including rheumatoid arthritis, multiple sclerosis, and transplant rejection. In this study we describe the pharmacological properties of a novel small molecular weight CCR1 antagonist, CP-481,715 (quinoxaline-2-carboxylic acid [4(R)-carbamoyl-1(S)-(3-fluorobenzyl)-2(S),7-dihydroxy-7-methyloctyl]amide). Radiolabeled binding studies indicate that CP-481,715 binds to human CCR1 with a Kd of 9.2 nm and displaces 125I-labeled CCL3 from CCR1-transfected cells with an IC50 of 74 nm. CP-481,715 lacks intrinsic agonist activity but fully blocks the ability of CCL3 and CCL5 to stimulate receptor signaling (guanosine 5′-O-(thiotriphosphate) incorporation; IC50 = 210 nm), calcium mobilization (IC50 = 71 nm), monocyte chemotaxis (IC50 = 55 nm), and matrix metalloproteinase 9 release (IC50 = 54 nm). CP-481,715 retains activity in human whole blood, inhibiting CCL3-induced CD11b up-regulation and actin polymerization (IC50 = 165 and 57 nm, respectively) on monocytes. Furthermore, it behaves as a competitive and reversible antagonist. CP-481,715 is >100-fold selective for CCR1 as compared with a panel of G-protein-coupled receptors including related chemokine receptors. Evidence for its potential use in human disease is suggested by its ability to inhibit 90% of the monocyte chemotactic activity present in 11/15 rheumatoid arthritis synovial fluid samples. These data illustrate that CP-481,715 is a potent and selective antagonist for CCR1 with therapeutic potential for rheumatoid arthritis and other inflammatory diseases.


Journal of Medicinal Chemistry | 2014

Chemical and computational methods for the characterization of covalent reactive groups for the prospective design of irreversible inhibitors.

Mark Edward Flanagan; Joseph A. Abramite; Dennis P. Anderson; Ann Aulabaugh; Upendra P. Dahal; Adam M. Gilbert; Chao Li; Justin Ian Montgomery; Stacey R. Oppenheimer; Tim Ryder; Brandon P. Schuff; Daniel P. Uccello; Gregory S. Walker; Yan Wu; Matthew Frank Brown; Jinshan M. Chen; Matthew Merrill Hayward; Mark C. Noe; R. Scott Obach; Laurence Philippe; Veerabahu Shanmugasundaram; Michael J. Shapiro; Jeremy T. Starr; Justin G. Stroh; Ye Che

Interest in drugs that covalently modify their target is driven by the desire for enhanced efficacy that can result from the silencing of enzymatic activity until protein resynthesis can occur, along with the potential for increased selectivity by targeting uniquely positioned nucleophilic residues in the protein. However, covalent approaches carry additional risk for toxicities or hypersensitivity reactions that can result from covalent modification of unintended targets. Here we describe methods for measuring the reactivity of covalent reactive groups (CRGs) with a biologically relevant nucleophile, glutathione (GSH), along with kinetic data for a broad array of electrophiles. We also describe a computational method for predicting electrophilic reactivity, which taken together can be applied to the prospective design of thiol-reactive covalent inhibitors.


Journal of Medicinal Chemistry | 2012

Potent Inhibitors of LpxC for the Treatment of Gram-Negative Infections

Matthew Frank Brown; Usa Reilly; Joseph A. Abramite; Robert M. Oliver; Rose Barham; Ye Che; Jinshan Michael Chen; Elizabeth M. Collantes; Seung Won Chung; Charlene R. Desbonnet; Jonathan L. Doty; Matthew Doroski; Juntyma J. Engtrakul; Thomas M. Harris; Michael D. Huband; John D. Knafels; Karen L. Leach; Shenping Liu; Anthony Marfat; Andrea Marra; Eric McElroy; Michael Melnick; Carol A. Menard; Justin Ian Montgomery; Lisa Mullins; Mark C. Noe; John P. O’Donnell; Joseph Penzien; Mark Stephen Plummer; Loren M. Price

In this paper, we present the synthesis and SAR as well as selectivity, pharmacokinetic, and infection model data for representative analogues of a novel series of potent antibacterial LpxC inhibitors represented by hydroxamic acid.


Journal of Medicinal Chemistry | 2012

Pyridone Methylsulfone Hydroxamate LpxC Inhibitors for the Treatment of Serious Gram-Negative Infections

Justin Ian Montgomery; Matthew Frank Brown; Usa Reilly; Loren M. Price; Joseph A. Abramite; Rose Barham; Ye Che; Jinshan Michael Chen; Seung Won Chung; E.M Collantes; Charlene R. Desbonnet; M Doroski; Jonathan L. Doty; J.J Engtrakul; Thomas M. Harris; Michael D. Huband; John D. Knafels; Karen L. Leach; Shenping Liu; Anthony Marfat; Laura A. McAllister; Eric McElroy; Carol A. Menard; Mark J. Mitton-Fry; Lisa Mullins; Mark C. Noe; J O'Donnell; Robert M. Oliver; Joseph Penzien; Mark Stephen Plummer

The synthesis and biological activity of a new series of LpxC inhibitors represented by pyridone methylsulfone hydroxamate 2a is presented. Members of this series have improved solubility and free fraction when compared to compounds in the previously described biphenyl methylsulfone hydroxamate series, and they maintain superior Gram-negative antibacterial activity to comparator agents.


Current Topics in Medicinal Chemistry | 2010

CCR1 antagonists: what have we learned from clinical trials.

Ronald P. Gladue; Matthew Frank Brown; Samuel H. Zwillich

The identification of chemokines and their receptors as potent mediators of leukocyte infiltration raised interest in the potential role of these proteins on disease pathogenesis. This is exemplified by the chemokine receptor, CCR1, which has been shown to be up-regulated in a number of human diseases, the implications of which have been suggested by animal models where inhibition of CCR1 or its ligands have shown beneficial effects. These data support the possibility that a CCR1 antagonist will provide therapeutic benefit to patients with inflammatory diseases. Over the last several years, several of these antagonists entered clinical trials, including CP-481,715 (Pfizer) and MLN3897 (Millennium) for rheumatoid arthritis, BX471 (Berlex / Scherring AG) for multiple sclerosis, and AZD-4818 (Astra-Zeneca) for COPD. This review will describe the evidence that supported the role of CCR1 in these diseases, the results from clinical trials, and provide perspectives on what has been learned from these trials for potential application / consideration to other studies with chemokine receptor antagonists.


Antimicrobial Agents and Chemotherapy | 2013

Adaptation-Based Resistance to Siderophore-Conjugated Antibacterial Agents by Pseudomonas aeruginosa

Andrew P. Tomaras; Jared L. Crandon; Craig J. McPherson; Mary Anne Banevicius; Steven M. Finegan; Rebecca Irvine; Matthew Frank Brown; John P. O'Donnell; David P. Nicolau

ABSTRACT Multidrug resistance in Gram-negative bacteria has become so threatening to human health that new antibacterial platforms are desperately needed to combat these deadly infections. The concept of siderophore conjugation, which facilitates compound uptake across the outer membrane by hijacking bacterial iron acquisition systems, has received significant attention in recent years. While standard in vitro MIC and resistance frequency methods demonstrate that these compounds are potent, broad-spectrum antibacterial agents whose activity should not be threatened by unacceptably high spontaneous resistance rates, recapitulation of these results in animal models can prove unreliable, partially because of the differences in iron availability in these different methods. Here, we describe the characterization of MB-1, a novel siderophore-conjugated monobactam that demonstrates excellent in vitro activity against Pseudomonas aeruginosa when tested using standard assay conditions. Unfortunately, the in vitro findings did not correlate with the in vivo results we obtained, as multiple strains were not effectively treated by MB-1 despite having low MICs. To address this, we also describe the development of new in vitro assays that were predictive of efficacy in mouse models, and we provide evidence that competition with native siderophores could contribute to the recalcitrance of some P. aeruginosa isolates in vivo.


Mbio | 2014

LpxC Inhibitors as New Antibacterial Agents and Tools for Studying Regulation of Lipid A Biosynthesis in Gram-Negative Pathogens

Andrew P. Tomaras; Craig J. McPherson; M. Kuhn; A. Carifa; Lisa Mullins; D. George; C. Desbonnet; T. M. Eidem; J. I. Montgomery; Matthew Frank Brown; U. Reilly; A. A. Miller; John P. O'Donnell

ABSTRACT The problem of multidrug resistance in serious Gram-negative bacterial pathogens has escalated so severely that new cellular targets and pathways need to be exploited to avoid many of the preexisting antibiotic resistance mechanisms that are rapidly disseminating to new strains. The discovery of small-molecule inhibitors of LpxC, the enzyme responsible for the first committed step in the biosynthesis of lipid A, represents a clinically unprecedented strategy to specifically act against Gram-negative organisms such as Pseudomonas aeruginosa and members of the Enterobacteriaceae. In this report, we describe the microbiological characterization of LpxC-4, a recently disclosed inhibitor of this bacterial target, and demonstrate that its spectrum of activity extends to several of the pathogenic species that are most threatening to human health today. We also show that spontaneous generation of LpxC-4 resistance occurs at frequencies comparable to those seen with marketed antibiotics, and we provide an in-depth analysis of the mechanisms of resistance utilized by target pathogens. Interestingly, these isolates also served as tools to further our understanding of the regulation of lipid A biosynthesis and enabled the discovery that this process occurs very distinctly between P. aeruginosa and members of the Enterobacteriaceae. Finally, we demonstrate that LpxC-4 is efficacious in vivo against multiple strains in different models of bacterial infection and that the major first-step resistance mechanisms employed by the intended target organisms can still be effectively treated with this new inhibitor. IMPORTANCE New antibiotics are needed for the effective treatment of serious infections caused by Gram-negative pathogens, and the responsibility of identifying new drug candidates rests squarely on the shoulders of the infectious disease community. The limited number of validated cellular targets and approaches, along with the increasing amount of antibiotic resistance that is spreading throughout the clinical environment, has prompted us to explore the utility of inhibitors of novel targets and pathways in these resistant organisms, since preexisting target-based resistance should be negligible. Lipid A biosynthesis is an essential process for the formation of lipopolysaccharide, which is a critical component of the Gram-negative outer membrane. In this report, we describe the in vitro and in vivo characterization of novel inhibitors of LpxC, an enzyme whose activity is required for proper lipid A biosynthesis, and demonstrate that our lead compound has the requisite attributes to warrant further consideration as a novel antibiotic. New antibiotics are needed for the effective treatment of serious infections caused by Gram-negative pathogens, and the responsibility of identifying new drug candidates rests squarely on the shoulders of the infectious disease community. The limited number of validated cellular targets and approaches, along with the increasing amount of antibiotic resistance that is spreading throughout the clinical environment, has prompted us to explore the utility of inhibitors of novel targets and pathways in these resistant organisms, since preexisting target-based resistance should be negligible. Lipid A biosynthesis is an essential process for the formation of lipopolysaccharide, which is a critical component of the Gram-negative outer membrane. In this report, we describe the in vitro and in vivo characterization of novel inhibitors of LpxC, an enzyme whose activity is required for proper lipid A biosynthesis, and demonstrate that our lead compound has the requisite attributes to warrant further consideration as a novel antibiotic.


Journal of Medicinal Chemistry | 2014

Siderophore Receptor-Mediated Uptake of Lactivicin Analogues in Gram-Negative Bacteria

Jeremy T. Starr; Matthew Frank Brown; Lisa M. Aschenbrenner; Nicole Caspers; Ye Che; Brian S. Gerstenberger; Michael D. Huband; John D. Knafels; M. Megan Lemmon; Chao Li; Sandra P. McCurdy; Eric McElroy; Mark R. Rauckhorst; Andrew P. Tomaras; Jennifer A. Young; Richard P. Zaniewski; Veerabahu Shanmugasundaram; Seungil Han

Multidrug-resistant Gram-negative pathogens are an emerging threat to human health, and addressing this challenge will require development of new antibacterial agents. This can be achieved through an improved molecular understanding of drug-target interactions combined with enhanced delivery of these agents to the site of action. Herein we describe the first application of siderophore receptor-mediated drug uptake of lactivicin analogues as a strategy that enables the development of novel antibacterial agents against clinically relevant Gram-negative bacteria. We report the first crystal structures of several sideromimic conjugated compounds bound to penicillin binding proteins PBP3 and PBP1a from Pseudomonas aeruginosa and characterize the reactivity of lactivicin and β-lactam core structures. Results from drug sensitivity studies with β-lactamase enzymes are presented, as well as a structure-based hypothesis to reduce susceptibility to this enzyme class. Finally, mechanistic studies demonstrating that sideromimic modification alters the drug uptake process are discussed.


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.

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