Douglas Wisniewski
Merck & Co.
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Publication
Featured researches published by Douglas Wisniewski.
Journal of Lipid Research | 2011
Yan G. Ni; Di Marco S; Jon H. Condra; Laurence B. Peterson; Weirong Wang; Fubao Wang; Shilpa Pandit; Holly A. Hammond; Ray Rosa; Cummings Rt; Dana D Wood; Xiaomei Liu; Bottomley Mj; Xun Shen; Cubbon Rm; Wang Sp; Douglas G. Johns; Volpari C; Hamuro L; Jayne Chin; Lingyi Huang; Jing Zhang Zhao; Salvatore Vitelli; Peter Haytko; Douglas Wisniewski; Lyndon J. Mitnaul; Carl P. Sparrow; Brian K. Hubbard; Andrea Carfi; Ayesha Sitlani
Proprotein convertase subtilisin-like/kexin type 9 (PCSK9) regulates LDL cholesterol levels by inhibiting LDL receptor (LDLr)-mediated cellular LDL uptake. We have identified a fragment antigen-binding (Fab) 1D05 which binds PCSK9 with nanomolar affinity. The fully human antibody 1D05-IgG2 completely blocks the inhibitory effects of wild-type PCSK9 and two gain-of-function human PCSK9 mutants, S127R and D374Y. The crystal structure of 1D05-Fab bound to PCSK9 reveals that 1D05-Fab binds to an epitope on the PCSK9 catalytic domain which includes the entire LDLr EGF(A) binding site. Notably, the 1D05-Fab CDR-H3 and CDR-H2 loops structurally mimic the EGF(A) domain of LDLr. In a transgenic mouse model (CETP/LDLr-hemi), in which plasma lipid and PCSK9 profiles are comparable to those of humans, 1D05-IgG2 reduces plasma LDL cholesterol to 40% and raises hepatic LDLr protein levels approximately fivefold. Similarly, in healthy rhesus monkeys, 1D05-IgG2 effectively reduced LDL cholesterol 20%–50% for over 2 weeks, despite its relatively short terminal half-life (t1/2 = 3.2 days). Importantly, the decrease in circulating LDL cholesterol corresponds closely to the reduction in free PCSK9 levels. Together these results clearly demonstrate that the LDL-lowering effect of the neutralizing anti-PCSK9 1D05-IgG2 antibody is mediated by reducing the amount of PCSK9 that can bind to the LDLr.
Proceedings of the National Academy of Sciences of the United States of America | 2005
W. L. Shoop; Yusheng Xiong; Judyann Wiltsie; Andrea Woods; Jian Guo; James V. Pivnichny; T. Felcetto; B. F. Michael; Alka Bansal; Richard T. Cummings; Barry R. Cunningham; A. M. Friedlander; Cameron M. Douglas; S. B. Patel; Douglas Wisniewski; G. Scapin; Scott P. Salowe; Dennis M. Zaller; Kevin T. Chapman; Edward M. Scolnick; Dennis M. Schmatz; Kenneth F. Bartizal; Malcolm Maccoss; Jeffrey D. Hermes
The primary virulence factor of Bacillus anthracis is a secreted zinc-dependent metalloprotease toxin known as lethal factor (LF) that is lethal to the host through disruption of signaling pathways, cell destruction, and circulatory shock. Inhibition of this proteolytic-based LF toxemia could be expected to provide therapeutic value in combination with an antibiotic during and immediately after an active anthrax infection. Herein is shown the crystal structure of an intimate complex between a hydroxamate, (2R)-2-[(4-fluoro-3-methylphenyl)sulfonylamino]-N-hydroxy-2-(tetrahydro-2H-pyran-4-yl)acetamide, and LF at the LF-active site. Most importantly, this molecular interaction between the hydroxamate and the LF active site resulted in (i) inhibited LF protease activity in an enzyme assay and protected macrophages against recombinant LF and protective antigen in a cell-based assay, (ii) 100% protection in a lethal mouse toxemia model against recombinant LF and protective antigen, (iii) ≈50% survival advantage to mice given a lethal challenge of B. anthracis Sterne vegetative cells and to rabbits given a lethal challenge of B. anthracis Ames spores and doubled the mean time to death in those that died in both species, and (iv) 100% protection against B. anthracis spore challenge when used in combination therapy with ciprofloxacin in a rabbit “point of no return” model for which ciprofloxacin alone provided 50% protection. These results indicate that a small molecule, hydroxamate LF inhibitor, as revealed herein, can ameliorate the toxemia characteristic of an active B. anthracis infection and could be a vital adjunct to our ability to combat anthrax.
Journal of Biological Chemistry | 2010
Yan G. Ni; Jon H. Condra; Orsatti L; Xun Shen; Di Marco S; Shilpa Pandit; Bottomley Mj; Ruggeri L; Cummings Rt; Cubbon Rm; Santoro Jc; Ehrhardt A; Lewis D; Fisher Ts; Ha S; Njimoluh L; Dana D Wood; Holly A. Hammond; Douglas Wisniewski; Volpari C; Noto A; Lo Surdo P; Brian K. Hubbard; Andrea Carfi; Ayesha Sitlani
PCSK9 binds to the low density lipoprotein receptor (LDLR) and leads to LDLR degradation and inhibition of plasma LDL cholesterol clearance. Consequently, the role of PCSK9 in modulating circulating LDL makes it a promising therapeutic target for treating hypercholesterolemia and coronary heart disease. Although the C-terminal domain of PCSK9 is not involved in LDLR binding, the location of several naturally occurring mutations within this region suggests that it has an important role for PCSK9 function. Using a phage display library, we identified an anti-PCSK9 Fab (fragment antigen binding), 1G08, with subnanomolar affinity for PCSK9. In an assay measuring LDL uptake in HEK293 and HepG2 cells, 1G08 Fab reduced 50% the PCSK9-dependent inhibitory effects on LDL uptake. Importantly, we found that 1G08 did not affect the PCSK9-LDLR interaction but inhibited the internalization of PCSK9 in these cells. Furthermore, proteolysis and site-directed mutagenesis studies demonstrated that 1G08 Fab binds a region of β-strands encompassing Arg-549, Arg-580, Arg-582, Glu-607, Lys-609, and Glu-612 in the PCSK9 C-terminal domain. Consistent with these results, 1G08 fails to bind PCSK9ΔC, a truncated form of PCSK9 lacking the C-terminal domain. Additional studies revealed that lack of the C-terminal domain compromised the ability of PCSK9 to internalize into cells, and to inhibit LDL uptake. Together, the present study demonstrate that the PCSK9 C-terminal domain contribute to its inhibition of LDLR function mainly through its role in the cellular uptake of PCSK9 and LDLR complex. 1G08 Fab represents a useful new tool for delineating the mechanism of PCSK9 uptake and LDLR degradation.
Proceedings of the National Academy of Sciences of the United States of America | 2002
Richard T. Cummings; Scott P. Salowe; Barry R. Cunningham; Judyann Wiltsie; Young Whan Park; Lisa M. Sonatore; Douglas Wisniewski; Cameron M. Douglas; Jeffrey D. Hermes; Edward M. Scolnick
A fluorescence resonance energy transfer assay has been developed for monitoring Bacillus anthracis lethal factor (LF) protease activity. A fluorogenic 16-mer peptide based on the known LF protease substrate MEK1 was synthesized and found to be cleaved by the enzyme at the anticipated site. Extension of this work to a fluorogenic 19-mer peptide, derived, in part, from a consensus sequence of known LF protease targets, produced a much better substrate, cleaving approximately 100 times more efficiently. This peptide sequence was modified further on resin to incorporate donor/quencher pairs to generate substrates for use in fluorescence resonance energy transfer-based appearance assays. All peptides cleaved at similar rates with signal/background ranging from 9–16 at 100% turnover. One of these substrates, denoted (Cou)Consensus(K(QSY-35)GG)-NH2, was selected for additional assay optimization. A plate-based assay requiring only low nanomolar levels of enzyme was developed for screening and inhibitor characterization.
Proceedings of the National Academy of Sciences of the United States of America | 2008
Asim K. Mandal; Phillip B. Jones; Angela M. Bair; Peter Christmas; Douglas K. Miller; Ting-Ting Yamin; Douglas Wisniewski; John G. Menke; Jilly F. Evans; Bradley T. Hyman; Brian J. Bacskai; Mei Chen; D. M. Lee; Boris Nikolic; Roy J. Soberman
Leukotrienes (LTs) are signaling molecules derived from arachidonic acid that initiate and amplify innate and adaptive immunity. In turn, how their synthesis is organized on the nuclear envelope of myeloid cells in response to extracellular signals is not understood. We define the supramolecular architecture of LT synthesis by identifying the activation-dependent assembly of novel multiprotein complexes on the outer and inner nuclear membranes of mast cells. These complexes are centered on the integral membrane protein 5-Lipoxygenase-Activating Protein, which we identify as a scaffold protein for 5-Lipoxygenase, the initial enzyme of LT synthesis. We also identify these complexes in mouse neutrophils isolated from inflamed joints. Our studies reveal the macromolecular organization of LT synthesis.
Chemistry & Biology | 2008
Bo Jiang; Deming Xu; John J. Allocco; Craig A. Parish; John Davison; Karynn Veillette; Susan Sillaots; Wenqi Hu; Roberto Rodriguez-Suarez; Steve Trosok; Li Zhang; Yang Li; Fariba Rahkhoodaee; Tara Ransom; Nick Martel; Hao Wang; Daniel Gauvin; Judyann Wiltsie; Douglas Wisniewski; Scott P. Salowe; Jennifer Nielsen Kahn; Ming Jo Hsu; Robert A. Giacobbe; George K. Abruzzo; Amy M. Flattery; Charles Gill; Phil Youngman; Kenneth E. Wilson; Gerald F. Bills; Gonzalo Platas
Natural products provide an unparalleled source of chemical scaffolds with diverse biological activities and have profoundly impacted antimicrobial drug discovery. To further explore the full potential of their chemical diversity, we survey natural products for antifungal, target-specific inhibitors by using a chemical-genetic approach adapted to the human fungal pathogen Candida albicans and demonstrate that natural-product fermentation extracts can be mechanistically annotated according to heterozygote strain responses. Applying this approach, we report the discovery and characterization of a natural product, parnafungin, which we demonstrate, by both biochemical and genetic means, to inhibit poly(A) polymerase. Parnafungin displays potent and broad spectrum activity against diverse, clinically relevant fungal pathogens and reduces fungal burden in a murine model of disseminated candidiasis. Thus, mechanism-of-action determination of crude fermentation extracts by chemical-genetic profiling brings a powerful strategy to natural-product-based drug discovery.
International Journal of Biological Sciences | 2012
Liwen Zhang; Timothy Mccabe; Jon H. Condra; Yan G. Ni; Laurence B. Peterson; Weirong Wang; Alison M. Strack; Fubao Wang; Shilpa Pandit; Holly A. Hammond; Dana D Wood; Dale Lewis; Ray Rosa; Vivienne Mendoza; Anne Marie Cumiskey; Douglas G. Johns; Barbara C. Hansen; Xun Shen; Neil S. Geoghagen; Kristian K. Jensen; Lei Zhu; Karol Wietecha; Douglas Wisniewski; Lingyi Huang; Jing Zhang Zhao; Robin Ernst; Richard Hampton; Peter Haytko; Frances Ansbro; Shannon Chilewski
Proprotein convertase subtilisin/kexin type 9 (PCSK9) is a promising therapeutic target for treating coronary heart disease. We report a novel antibody 1B20 that binds to PCSK9 with sub-nanomolar affinity and antagonizes PCSK9 function in-vitro. In CETP/LDLR-hemi mice two successive doses of 1B20, administered 14 days apart at 3 or 10 mpk, induced dose dependent reductions in LDL-cholesterol (≥ 25% for 7-14 days) that correlated well with the extent of PCSK9 occupancy by the antibody. In addition, 1B20 induces increases in total plasma antibody-bound PCSK9 levels and decreases in liver mRNA levels of SREBP-regulated genes PCSK9 and LDLR, with a time course that parallels decreases in plasma LDL-cholesterol (LDL-C). Consistent with this observation in mice, in statin-responsive human primary hepatocytes, 1B20 lowers PCSK9 and LDLR mRNA levels and raises serum steady-state levels of antibody-bound PCSK9. In addition, mRNA levels of several SREBP regulated genes involved in cholesterol and fatty-acid synthesis including ACSS2, FDPS, IDI1, MVD, HMGCR, and CYP51A1 were decreased significantly with antibody treatment of primary human hepatocytes. In rhesus monkeys, subcutaneous (SC) dosing of 1B20 dose-dependently induces robust LDL-C lowering (maximal ~70%), which is correlated with increases in target engagement and total antibody-bound PCSK9 levels. Importantly, a combination of 1B20 and Simvastatin in dyslipidemic rhesus monkeys reduced LDL-C more than either agent alone, consistent with a mechanism of action that predicts additive effects of anti-PCSK9 agents with statins. Our results suggest that antibodies targeting PCSK9 could provide patients powerful LDL lowering efficacy on top of statins, and lower cardiovascular risk.
Science | 2017
Robert W. Myers; Hong-Ping Guan; Juliann Ehrhart; Aleksandr Petrov; Srinivasa Prahalada; Effie Tozzo; Xiaodong Yang; Marc M. Kurtz; Maria E. Trujillo; Dinko Gonzalez Trotter; Danqing Feng; Shiyao Xu; George J. Eiermann; Marie A. Holahan; Daniel Rubins; Stacey Conarello; Xiaoda Niu; Sandra C. Souza; Corin Miller; Jinqi Liu; Ku Lu; Wen Feng; Ying Li; Ronald E. Painter; James A. Milligan; Huaibing He; Franklin Liu; Aimie M. Ogawa; Douglas Wisniewski; Rory J. Rohm
Hitting a dozen enzymes with one drug The adenosine monophosphate-activated protein kinase (AMPK) controls cellular energy status. AMPK is activated when energy levels fall. This stimulates adenosine triphosphate (ATP)-generating pathways that promote glucose uptake and inhibits ATP-consuming pathways associated with glucose synthesis. In principle, these effects would be beneficial in metabolic diseases, including diabetes. Pharmacological activation of AMPK has been challenging, however, because in mammals, the enzyme exists as 12 distinct complexes. Myers et al. describe an orally available compound (MK-8722) that activates all 12 complexes (see the Perspective by Hardie). In animal models, MK-8722 ameliorated diabetes, but it also caused enlargement of the heart. MK-8722 may be a useful tool compound for laboratory research on AMPK function. Science, this issue p. 507; see also p. 455 In animals, a drug activating all 12 isoforms of the energy regulator AMPK benefits metabolism but may pose heart risks. 5′-Adenosine monophosphate–activated protein kinase (AMPK) is a master regulator of energy homeostasis in eukaryotes. Despite three decades of investigation, the biological roles of AMPK and its potential as a drug target remain incompletely understood, largely because of a lack of optimized pharmacological tools. We developed MK-8722, a potent, direct, allosteric activator of all 12 mammalian AMPK complexes. In rodents and rhesus monkeys, MK-8722–mediated AMPK activation in skeletal muscle induced robust, durable, insulin-independent glucose uptake and glycogen synthesis, with resultant improvements in glycemia and no evidence of hypoglycemia. These effects translated across species, including diabetic rhesus monkeys, but manifested with concomitant cardiac hypertrophy and increased cardiac glycogen without apparent functional sequelae.
Journal of Biomolecular Screening | 2005
Gary Chrebet; Douglas Wisniewski; Ann L. Perkins; Qiaolin Deng; Myra B. Kurtz; Alice I. Marcy; Stephen A. Parent
The m7GpppN cap at the 5′ end of eukaryotic mRNAs is important for transcript stability and translation. Three enzymatic activities that generate the mRNA cap include an RNA 5′-triphosphatase, an RNA guanylyltransferase, and an RNA (guanine-7-) -methyltransferase. The physical organization of the genes encoding these enzymes differs between mammalian cells and yeast, fungi, or viruses. The catalytic mechanism used by the RNA triphosphatases of mammalian cells also differs from that used by the yeast, fungal, or viral enzymes. These structural and functional differences suggest that inhibitors of mRNA capping might be useful antifungal or antiviral agents. The authors describe several whole-cell yeast-based assays developed to identify and characterize inhibitors of fungal mRNA capping. They also report the identification and characterization of the natural product sinefungin in the assays. Their characterization of this S-adenosylmethionine analog suggests that it inhibits mRNA cap methyltransferases and exhibits approximately 5- to 10-fold specificity for the yeast ABD1 and fungal CCM1 enzymes over the human Hcm1 enzyme expressed in yeast cells.
Bioorganic & Medicinal Chemistry Letters | 2011
Qiang Tan; Aimie M. Ogawa; Susan L. Raghoobar; Douglas Wisniewski; Lawrence F. Colwell; Young-Whan Park; Katherine Young; Jeffrey D. Hermes; Frank P. DiNinno; Milton L. Hammond
The preparation and characterization of a series of thiophenyl oxime phosphonate beta-lactamase inhibitors is described. A number of these analogs were potent and selective inhibitors of class C beta-lactamases from Pseudomonas aeruginosa and Enterobacter cloacae. Compounds 3b and 7 reduced the MIC of imipenem against an AmpC expressing strain of imipenem-resistant P. aeruginosa. A number of the title compounds retained micromolar potency against the class D OXA-40 beta-lactamase from Acinetobacter baumannii and at high concentrations compound 3b was shown to reduce the MIC of imipenem against a highly imipenem-resistant strain of A. baumanii expressing the OXA-40 beta-lactamase. In mice compound 3b exhibited phamacokinetics similar to imipenem.