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Featured researches published by Micah Steffek.


Nature | 2006

Structure of C3b in complex with CRIg gives insights into regulation of complement activation.

Christian Wiesmann; Kenneth J. Katschke; JianPing Yin; Karim Y. Helmy; Micah Steffek; Wayne J. Fairbrother; Scott A. McCallum; Lizette Embuscado; Laura DeForge; Philip E. Hass; Menno van Lookeren Campagne

The complement system is a key part of the innate immune system, and is required for clearance of pathogens from the bloodstream. After exposure to pathogens, the third component of the complement system, C3, is cleaved to C3b which, after recruitment of factor B, initiates formation of the alternative pathway convertases. CRIg, a complement receptor expressed on macrophages, binds to C3b and iC3b mediating phagocytosis of the particles, but it is unknown how CRIg selectively recognizes proteolytic C3-fragments and whether binding of CRIg to C3b inhibits convertase activation. Here we present the crystal structure of C3b in complex with CRIg and, using CRIg mutants, provide evidence that CRIg acts as an inhibitor of the alternative pathway of complement. The structure shows that activation of C3 induces major structural rearrangements, including a dramatic movement (>80 Å) of the thioester-bond-containing domain through which C3b attaches to pathogen surfaces. We show that CRIg is not only a phagocytic receptor, but also a potent inhibitor of the alternative pathway convertases. The structure provides insights into the complex macromolecular structural rearrangements that occur during complement activation and inhibition. Moreover, our structure–function studies relating the structural basis of complement activation and the means by which CRIg inhibits the convertases provide important clues to the development of therapeutics that target complement.


Journal of Medicinal Chemistry | 2012

Identification of Imidazo-Pyrrolopyridines as Novel and Potent JAK1 Inhibitors.

Janusz Jozef Kulagowski; Wade S. Blair; Richard J. Bull; Christine Chang; Gauri Deshmukh; Hazel Joan Dyke; Charles Eigenbrot; Nico Ghilardi; Paul Gibbons; Trevor Keith Harrison; Peter R. Hewitt; Marya Liimatta; Christopher Hurley; Adam R. Johnson; Tony Johnson; Jane R. Kenny; Pawan Bir Kohli; Robert James Maxey; Rohan Mendonca; Kyle Mortara; Jeremy Murray; Raman Narukulla; Steven Shia; Micah Steffek; Savita Ubhayakar; Mark Ultsch; Anne van Abbema; Stuart Ward; Bohdan Waszkowycz; Mark Zak

A therapeutic rationale is proposed for the treatment of inflammatory diseases, such as rheumatoid arthritis (RA), by specific targeting of the JAK1 pathway. Examination of the preferred binding conformation of clinically effective, pan-JAK inhibitor 1 led to identification of a novel, tricyclic hinge binding scaffold 3. Exploration of SAR through a series of cycloamino and cycloalkylamino analogues demonstrated this template to be highly tolerant of substitution, with a predisposition to moderate selectivity for the JAK1 isoform over JAK2. This study culminated in the identification of subnanomolar JAK1 inhibitors such as 22 and 49, having excellent cell potency, good rat pharmacokinetic characteristics, and excellent kinase selectivity. Determination of the binding modes of the series in JAK1 and JAK2 by X-ray crystallography supported the design of analogues to enhance affinity and selectivity.


Journal of Experimental Medicine | 2007

A novel inhibitor of the alternative pathway of complement reverses inflammation and bone destruction in experimental arthritis

Kenneth J. Katschke; Karim Y. Helmy; Micah Steffek; Hongkang Xi; JianPing Yin; Wyne P. Lee; Peter Gribling; Kai H. Barck; Richard A. D. Carano; Robin Taylor; Linda Rangell; Lauri Diehl; Philip E. Hass; Christian Wiesmann; Menno van Lookeren Campagne

Complement is an important component of the innate and adaptive immune response, yet complement split products generated through activation of each of the three complement pathways (classical, alternative, and lectin) can cause inflammation and tissue destruction. Previous studies have shown that complement activation through the alternative, but not classical, pathway is required to initiate antibody-induced arthritis in mice, but it is unclear if the alternative pathway (AP) plays a role in established disease. Previously, we have shown that human complement receptor of the immunoglobulin superfamily (CRIg) is a selective inhibitor of the AP of complement. Here, we present the crystal structure of murine CRIg and, using mutants, provide evidence that the structural requirements for inhibition of the AP are conserved in human and mouse. A soluble form of CRIg reversed inflammation and bone loss in two experimental models of arthritis by inhibiting the AP of complement in the joint. Our data indicate that the AP of complement is not only required for disease induction, but also disease progression. The extracellular domain of CRIg thus provides a novel tool to study the effects of inhibiting the AP of complement in established disease and constitutes a promising therapeutic with selectivity for a single complement pathway.


Journal of Biological Chemistry | 2009

Structural and Functional Analysis of a C3b-specific Antibody That Selectively Inhibits the Alternative Pathway of Complement

Kenneth J. Katschke; Scott Stawicki; JianPing Yin; Micah Steffek; Hongkang Xi; Lizette Sturgeon; Philip E. Hass; Kelly M. Loyet; Laura DeForge; Yan Wu; Menno van Lookeren Campagne; Christian Wiesmann

Amplification of the complement cascade through the alternative pathway can lead to excessive inflammation. Targeting C3b, a component central to the alternative pathway of complement, provides a powerful approach to inhibit complement-mediated immune responses and tissue injury. In the present study, phage display technology was employed to generate an antibody that selectively recognizes C3b but not the non-activated molecule C3. The crystal structure of C3b in complex with a Fab fragment of this antibody (S77) illustrates the structural basis for this selectivity. Cleavage of C3 to C3b results in a plethora of structural changes within C3, including the rearrangement of macroglobulin domain 6 enabling binding of S77 to the adjacent macroglobulin domain 7 domain. S77 blocks binding of factor B to C3b inhibiting the first step in the formation of the alternative pathway C3 convertase. In addition, S77 inhibits C5 binding to C3b. This results in significantly reduced formations of anaphylatoxins and membrane-attack complexes. This study for the first time demonstrates the structural basis for complement inhibition by a C3b-selective antibody and provides insights into the molecular mechanisms of alternative pathway complement activation.


Journal of Medicinal Chemistry | 2012

Discovery and Optimization of C-2 Methyl Imidazopyrrolopyridines as Potent and Orally Bioavailable JAK1 Inhibitors with Selectivity over JAK2.

Mark Zak; Rohan Mendonca; Mercedesz Balazs; Kathy Barrett; Philippe Bergeron; Wade S. Blair; Christine Chang; Gauri Deshmukh; Jason DeVoss; Peter S. Dragovich; Charles Eigenbrot; Nico Ghilardi; Paul Gibbons; Stefan Gradl; Chris Hamman; Emily Hanan; Eric Harstad; Peter R. Hewitt; Christopher Hurley; T Jin; Amber E. Johnson; Tony Johnson; Jane R. Kenny; Michael F. T. Koehler; P Bir Kohli; Janusz Jozef Kulagowski; Sharada Labadie; J Liao; Marya Liimatta; Zeming Lin

Herein we report the discovery of the C-2 methyl substituted imidazopyrrolopyridine series and its optimization to provide potent and orally bioavailable JAK1 inhibitors with selectivity over JAK2. The C-2 methyl substituted inhibitor 4 exhibited not only improved JAK1 potency relative to unsubstituted compound 3 but also notable JAK1 vs JAK2 selectivity (20-fold and >33-fold in biochemical and cell-based assays, respectively). Features of the X-ray structures of 4 in complex with both JAK1 and JAK2 are delineated. Efforts to improve the in vitro and in vivo ADME properties of 4 while maintaining JAK1 selectivity are described, culminating in the discovery of a highly optimized and balanced inhibitor (20). Details of the biological characterization of 20 are disclosed including JAK1 vs JAK2 selectivity levels, preclinical in vivo PK profiles, performance in an in vivo JAK1-mediated PK/PD model, and attributes of an X-ray structure in complex with JAK1.


Journal of Immunology | 2008

Complement Receptor of the Ig Superfamily Enhances Complement-Mediated Phagocytosis in a Subpopulation of Tissue Resident Macrophages

Nick N. Gorgani; Jeannie Q. He; Kenneth J. Katschke; Karim Y. Helmy; Hongkang Xi; Micah Steffek; Philip E. Hass; Menno van Lookeren Campagne

An important function of the complement cascade is to coat self and foreign particles with C3-proteins that serve as ligands for phagocytic receptors. Although tissue resident macrophages play an important role in complement-mediated clearance, the receptors coordinating this process have not been well characterized. In the present study, we identified a subpopulation of resident peritoneal macrophages characterized by high expression of complement receptor of the Ig superfamily (CRIg), a recently discovered complement C3 receptor. Macrophages expressing CRIg showed significantly increased binding and subsequent internalization of complement-opsonized particles compared with CRIg negative macrophages. CRIg internalized monovalent ligands and was able to bind complement-opsonized targets in the absence of Ca2+ and Mg2+, which differs from the β2-integrin CR3 that requires divalent cations and polyvalent ligands for activation of the receptor. Although CRIg dominated in immediate binding of complement-coated particles, CRIg and CR3 contributed independently to subsequent particle phagocytosis. CRIg thus identifies a subset of tissue resident macrophages capable of increased phagocytosis of complement C3-coated particles, a function critical for immune clearance.


Proceedings of the National Academy of Sciences of the United States of America | 2013

Conformational dynamics control ubiquitin-deubiquitinase interactions and influence in vivo signaling.

Aaron H. Phillips; Yingnan Zhang; Christian N. Cunningham; Lijuan Zhou; William F. Forrest; Peter S. Liu; Micah Steffek; James Lee; Christine Tam; Elizabeth Helgason; Jeremy Murray; Donald S. Kirkpatrick; Wayne J. Fairbrother; Jacob E. Corn

Ubiquitin is a highly conserved eukaryotic protein that interacts with a diverse set of partners to act as a cellular signaling hub. Ubiquitin’s conformational flexibility has been postulated to underlie its multifaceted recognition. Here we use computational and library-based means to interrogate core mutations that modulate the conformational dynamics of human ubiquitin. These ubiquitin variants exhibit increased affinity for the USP14 deubiquitinase, with concomitantly reduced affinity for other deubiquitinases. Strikingly, the kinetics of conformational motion are dramatically slowed in these variants without a detectable change in either the ground state fold or excited state population. These variants can be ligated into substrate-linked chains in vitro and in vivo but cannot solely support growth in eukaryotic cells. Proteomic analyses reveal nearly identical interaction profiles between WT ubiquitin and the variants but identify a small subset of altered interactions. Taken together, these results show that conformational dynamics are critical for ubiquitin–deubiquitinase interactions and imply that the fine tuning of motion has played a key role in the evolution of ubiquitin as a signaling hub.


Journal of Medicinal Chemistry | 2013

Identification of C-2 Hydroxyethyl Imidazopyrrolopyridines as Potent JAK1 Inhibitors with Favorable Physicochemical Properties and High Selectivity over JAK2.

Mark Zak; Christopher Hurley; Stuart Ward; Philippe Bergeron; Kathy Barrett; Mercedesz Balazs; Wade S. Blair; Richard James Bull; Paroma Chakravarty; Christine Chang; Peter Crackett; Gauri Deshmukh; Jason DeVoss; Peter S. Dragovich; Charles Eigenbrot; Charles Ellwood; Simon Gaines; Nico Ghilardi; Paul Gibbons; Stefan Gradl; Peter Gribling; Chris Hamman; Eric Harstad; Peter R. Hewitt; Adam R. Johnson; Tony Johnson; Jane R. Kenny; Michael F. T. Koehler; Pawan Bir Kohli; Sharada Shenvi Labadie

Herein we report on the structure-based discovery of a C-2 hydroxyethyl moiety which provided consistently high levels of selectivity for JAK1 over JAK2 to the imidazopyrrolopyridine series of JAK1 inhibitors. X-ray structures of a C-2 hydroxyethyl analogue in complex with both JAK1 and JAK2 revealed differential ligand/protein interactions between the two isoforms and offered an explanation for the observed selectivity. Analysis of historical data from related molecules was used to develop a set of physicochemical compound design parameters to impart desirable properties such as acceptable membrane permeability, potent whole blood activity, and a high degree of metabolic stability. This work culminated in the identification of a highly JAK1 selective compound (31) exhibiting favorable oral bioavailability across a range of preclinical species and robust efficacy in a rat CIA model.


Nature Chemical Biology | 2012

Allosteric peptides bind a caspase zymogen and mediate caspase tetramerization

Karen Stanger; Micah Steffek; Lijuan Zhou; Christine D. Pozniak; Clifford Quan; Yvonne Franke; Jeff Tom; Christine Tam; Irina N. Krylova; J. Michael Elliott; Joseph W. Lewcock; Yingnan Zhang; Jeremy Murray; Rami N. Hannoush

The caspases are a family of cytosolic proteases with essential roles in inflammation and apoptosis. Drug discovery efforts have focused on developing molecules directed against the active sites of caspases, but this approach has proved challenging and has not yielded any approved therapeutics. Here we describe a new strategy for generating inhibitors of caspase-6, a potential therapeutic target in neurodegenerative disorders, by screening against its zymogen form. Using phage display to discover molecules that bind the zymogen, we report the identification of a peptide that specifically impairs the function of caspase-6 in vitro and in neuronal cells. Remarkably, the peptide binds at a tetramerization interface that is uniquely present in zymogen caspase-6, rather than binding into the active site, and acts via a new allosteric mechanism that promotes caspase tetramerization. Our data illustrate that screening against the zymogen holds promise as an approach for targeting caspases in drug discovery.


PLOS ONE | 2012

Mechanistic and Structural Understanding of Uncompetitive Inhibitors of Caspase-6

Christopher E. Heise; Jeremy Murray; Katherine E. Augustyn; Brandon J. Bravo; Preeti Chugha; Frederick Cohen; Anthony M. Giannetti; Paul Gibbons; Rami N. Hannoush; Brian R. Hearn; Priyadarshini Jaishankar; Cuong Ly; Kinjalkumar Shah; Karen Stanger; Micah Steffek; Yinyan Tang; Xianrui Zhao; Joseph W. Lewcock; Adam R. Renslo; John A. Flygare; Michelle R. Arkin

Inhibition of caspase-6 is a potential therapeutic strategy for some neurodegenerative diseases, but it has been difficult to develop selective inhibitors against caspases. We report the discovery and characterization of a potent inhibitor of caspase-6 that acts by an uncompetitive binding mode that is an unprecedented mechanism of inhibition against this target class. Biochemical assays demonstrate that, while exquisitely selective for caspase-6 over caspase-3 and -7, the compound’s inhibitory activity is also dependent on the amino acid sequence and P1’ character of the peptide substrate. The crystal structure of the ternary complex of caspase-6, substrate-mimetic and an 11 nM inhibitor reveals the molecular basis of inhibition. The general strategy to develop uncompetitive inhibitors together with the unique mechanism described herein provides a rationale for engineering caspase selectivity.

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