Jovita Marcinkeviciene
Bristol-Myers Squibb
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Publication
Featured researches published by Jovita Marcinkeviciene.
Journal of Biological Chemistry | 1995
Jovita Marcinkeviciene; Richard S. Magliozzo; John S. Blanchard
The unique antitubercular activity of isoniazid requires that the drug be oxidized by the katG-encoded mycobacterial catalase-peroxidase to an activated drug form. In order to quantitatively assess the catalytic capabilities of the enzyme, the native catalase-peroxidase from Mycobacterium smegmatis was purified over 200-fold to homogeneity. The enzyme was shown to exhibit both catalase and peroxidase activities, and in the presence of either hydrogen peroxide or t-butyl peroxide, was found to catalyze the oxidation of the reduced pyridine nucleotides, NADH and NADPH, as well as artificial peroxidase substrates, at rates between 2.7 and 20 s. The homogeneous enzyme exhibited a visible absorbance spectrum typical of ferric heme-containing catalase-peroxidases, with a Soret maximum at 406 nm. Low temperature (10 K) electron paramagnetic resonance spectra in the presence of ethylene glycol revealed a high spin Fe(III) signal with g values of 5.9 and 5.6. The enzyme was very slowly (t = 20 min) reduced by dithionite, and the reduced form showed typical spectral changes when either KCN or CO were subsequently added. The M. smegmatis catalase-peroxidase was found to contain 2 heme molecules per tetramer, which were identified as iron protoporphyrin IX by the pyridine hemochromogen assay. The peroxidatic activity was inhibited by KCN, NaN, isoniazid (isonicotinic acid hydrazide), and its isomer, nicotinic acid hydrazide, but not by 3-amino-1,2,4-triazole. The role of mycobacterial catalase-peroxidases in the oxidative activation of the antitubercular prodrug isoniazid is discussed.
Protein Science | 2008
William Metzler; Joseph Yanchunas; Carolyn A. Weigelt; Kevin Kish; Herbert E. Klei; Dianlin Xie; Yaqun Zhang; Martin J. Corbett; James Tamura; Bin He; Lawrence G. Hamann; Mark S. Kirby; Jovita Marcinkeviciene
The inhibition of DPP‐IV by saxagliptin has been proposed to occur through formation of a covalent but reversible complex. To evaluate further the mechanism of inhibition, we determined the X‐ray crystal structure of the DPP‐IV:saxagliptin complex. This structure reveals covalent attachment between S630 and the inhibitor nitrile carbon (C–O distance <1.3 Å). To investigate whether this serine addition is assisted by the catalytic His‐Asp dyad, we generated two mutants of DPP‐IV, S630A and H740Q, and assayed them for ability to bind inhibitor. DPP‐IVH740Q bound saxagliptin with an ∼1000‐fold reduction in affinity relative to DPP‐IVWT, while DPP‐IVS630A showed no evidence for binding inhibitor. An analog of saxagliptin lacking the nitrile group showed unchanged binding properties to the both mutant proteins, highlighting the essential role S630 and H740 play in covalent bond formation between S630 and saxagliptin. Further supporting mechanism‐based inhibition by saxagliptin, NMR spectra of enzyme–saxagliptin complexes revealed the presence of three downfield resonances with low fractionation factors characteristic of short and strong hydrogen bonds (SSHB). Comparison of the NMR spectra of various wild‐type and mutant DPP‐IV:ligand complexes enabled assignment of a resonance at ∼14 ppm to H740. Two additional DPP‐IV mutants, Y547F and Y547Q, generated to probe potential stabilization of the enzyme–inhibitor complex by this residue, did not show any differences in inhibitor binding either by ITC or NMR. Together with the previously published enzymatic data, the structural and binding data presented here strongly support a histidine‐assisted covalent bond formation between S630 hydroxyl oxygen and the nitrile group of saxagliptin.
Journal of Pharmacology and Experimental Therapeutics | 2008
Jere E. Meredith; Lorin A. Thompson; Jeremy H. Toyn; Donna M. Barten; Jovita Marcinkeviciene; Lisa M. Kopcho; Young Kook Kim; Alan Lin; Valerie Guss; Catherine R. Burton; Lawrence G. Iben; Craig Polson; Joe Cantone; Michael J. Ford; Dieter M. Drexler; Tracey Fiedler; Kimberley A. Lentz; James E. Grace; Janet Kolb; Jason A. Corsa; Maria Pierdomenico; Kelli M. Jones; Richard E. Olson; John E. Macor; Charles F. Albright
Alzheimers disease (AD) is a progressive neurodegenerative disease. Amyloid β (Aβ) peptides are hypothesized to cause the initiation and progression of AD based on pathologic data from AD patients, genetic analysis of mutations that cause early onset forms of AD, and preclinical studies. Based on this hypothesis, β-site amyloid precursor protein (APP)-cleaving enzyme 1 (BACE1) inhibitors are an attractive therapeutic approach for AD because cleavage of the APP by BACE1 is required to form Aβ. In this study, three potent BACE1 inhibitors are characterized. All three inhibitors decrease Aβ formation in cultured cells with IC50 values less than 10 nM. Analysis of APP C-terminal fragments by immunoblotting and Aβ peptides by mass spectrometry showed that these inhibitors decreased Aβ by inhibiting BACE1. An assay for Aβ1–40 in mice was developed and used to show that these BACE1 inhibitors decreased plasma Aβ1–40, but not brain Aβ1–40, in wild-type mice. Because these BACE1 inhibitors were substrates for P-glycoprotein (P-gp), a member of the ATP-binding cassette superfamily of efflux transporters, these inhibitors were administered to P-gp knockout (KO) mice. These studies showed that all three BACE1 inhibitors decreased brain Aβ1–40 in P-gp KO mice, demonstrating that P-gp is a major limitation for development of BACE1 inhibitors to test the amyloid hypothesis. A comparison of plasma Aβ1–40 and brain Aβ1–40 dose responses for these three compounds revealed differences in relative ED50 values, indicating that factors other than P-gp can also contribute to poor brain activity by BACE1 inhibitors.
BMC Pharmacology | 2012
Aiying Wang; Charles R. Dorso; Lisa M. Kopcho; Gregory Locke; Robert Langish; Eric. B. Harstad; Petia Shipkova; Jovita Marcinkeviciene; Lawrence G. Hamann; Mark S. Kirby
BackgroundDipeptidylpeptidase 4 (DPP4) inhibitors have clinical benefit in patients with type 2 diabetes mellitus by increasing levels of glucose-lowering incretin hormones, such as glucagon-like peptide -1 (GLP-1), a peptide with a short half life that is secreted for approximately 1 hour following a meal. Since drugs with prolonged binding to their target have been shown to maximize pharmacodynamic effects while minimizing drug levels, we developed a time-dependent inhibitor that has a half-life for dissociation from DPP4 close to the duration of the first phase of GLP-1 release.ResultsSaxagliptin and its active metabolite (5-hydroxysaxagliptin) are potent inhibitors of human DPP4 with prolonged dissociation from its active site (Ki = 1.3 nM and 2.6 nM, t1/2 = 50 and 23 minutes respectively at 37°C). In comparison, both vildagliptin (3.5 minutes) and sitagliptin ( < 2 minutes) rapidly dissociated from DPP4 at 37°C. Saxagliptin and 5-hydroxysaxagliptin are selective for inhibition of DPP4 versus other DPP family members and a large panel of other proteases, and have similar potency and efficacy across multiple species.Inhibition of plasma DPP activity is used as a biomarker in animal models and clinical trials. However, most DPP4 inhibitors are competitive with substrate and rapidly dissociate from DPP4; therefore, the type of substrate, volume of addition and final concentration of substrate in these assays can change measured inhibition. We show that unlike a rapidly dissociating DPP4 inhibitor, inhibition of plasma DPP activity by saxagliptin and 5-hydroxysaxagliptin in an ex vivo assay was not dependent on substrate concentration when substrate was added rapidly because saxagliptin and 5-hydroxysaxagliptin dissociate slowly from DPP4, once bound. We also show that substrate concentration was important for rapidly dissociating DPP4 inhibitors.ConclusionsSaxagliptin and its active metabolite are potent, selective inhibitors of DPP4, with prolonged dissociation from its active site. They also demonstrate prolonged inhibition of plasma DPP4 ex vivo in animal models, which implies that saxagliptin and 5-hydroxysaxagliptin would continue to inhibit DPP4 during rapid increases in substrates in vivo.
Bioorganic & Medicinal Chemistry Letters | 2011
Mendi A. Higgins; F. Christopher Zusi; Yunhui Zhang; Michael F. Dee; Michael F. Parker; Jodi K. Muckelbauer; Daniel M. Camac; Paul E. Morin; Vidhyashankar Ramamurthy; Andrew J. Tebben; Kimberley A. Lentz; James E. Grace; Jovita Marcinkeviciene; Lisa M. Kopcho; Catherine R. Burton; Donna M. Barten; Jeremy H. Toyn; Jere E. Meredith; Charles F. Albright; Joanne J. Bronson; John E. Macor; Lorin A. Thompson
Heterocyclic replacement of the isophthalamide phenyl ring in hydroxyethylamine (HEA) BACE-1 inhibitors was explored. A variety of indole-1,3-dicarboxamide HEAs exhibited potent BACE-1 enzyme inhibition, but displayed poor cellular activity. Improvements in cellular activity and aspartic protease selectivity were observed for 7-azaindole-1,3-dicarboxamide HEAs. A methylprolinol-bearing derivative (10n) demonstrated robust reductions in rat plasma Aβ levels, but did not lower rat brain Aβ due to poor central exposure. The same analog exhibited a high efflux ratio in a bidirectional Caco-2 assay and was likely a substrate of the efflux transporter P-glycoprotein. X-ray crystal structures are reported for two indole HEAs in complex with BACE-1.
Journal of Biological Chemistry | 2003
Larisa Toulokhonova; William J. Metzler; Mark R. Witmer; Robert A. Copeland; Jovita Marcinkeviciene
The steady-state kinetic mechanism of β-amyloid precursor protein-cleaving enzyme (BACE)-catalyzed proteolytic cleavage was evaluated using product and statine- (Stat(V)) or hydroxyethylene-containing (OM99-2) peptide inhibition data, solvent kinetic isotope effects, and proton NMR spectroscopy. The noncompetitive inhibition pattern observed for both cleavage products, together with the independence of Stat(V) inhibition on substrate concentration, suggests a uni-bi-iso kinetic mechanism. According to this mechanism, the enzyme undergoes multiple conformation changes during the catalytic cycle. If any of these steps are rate-limiting to turnover, an enzyme form preceding the rate-limiting conformational change should accumulate. An insignificant solvent kinetic isotope effect (SKIE) on k cat/K m , a large inverse solvent kinetic isotope effect onk cat, and the absence of any SKIE on the inhibition onset by Stat(V) during catalysis together indicate that the rate-limiting iso-step occurs after formation of a tetrahedral intermediate. A moderately short and strong hydrogen bond (at δ 13.0 ppm and φ of 0.6) has been observed by NMR spectroscopy in the enzyme-hydroxyethylene peptide (OM99-2) complex that presumably mimics the tetrahedral intermediate of catalysis. Collapse of this intermediate, involving multiple steps and interconversion of enzyme forms, has been suggested to impose a rate limitation, which is manifested in a significant SKIE on k cat. Multiple enzyme forms and their distribution during catalysis were evaluated by measuring the SKIE on the noncompetitive (mixed) inhibition constants for the C-terminal reaction product. Large, normal SKIE values were observed for these inhibition constants, suggesting that both kinetic and thermodynamic components contribute to theK ii and K is expressions, as has been suggested for other iso-mechanism featuring enzymes. We propose that a conformational change related to the reprotonation of aspartates during or after the bond-breaking event is the rate-limiting segment in the catalytic reaction of β-amyloid precursor protein-cleaving enzyme, and ligands binding to other than the ground-state forms of the enzyme might provide inhibitors of greater pharmacological relevance.
Journal of Medicinal Chemistry | 2010
Wei Meng; Robert Paul Brigance; Hannguang J. Chao; Aberra Fura; Thomas Harrity; Jovita Marcinkeviciene; Stephen P. O'connor; James Tamura; Dianlin Xie; Yaqun Zhang; Herbert E. Klei; Kevin Kish; Carolyn Weigelt; Huji Turdi; Aiying Wang; Robert Zahler; Mark S. Kirby; Lawrence G. Hamann
Continued structure-activity relationship (SAR) exploration within our previously disclosed azolopyrimidine containing dipeptidyl peptidase-4 (DPP4) inhibitors led us to focus on an imidazolopyrimidine series in particular. Further study revealed that by replacing the aryl substitution on the imidazole ring with a more polar carboxylic ester or amide, these compounds displayed not only increased DPP4 binding activity but also significantly reduced human ether-a-go-go related gene (hERG) and sodium channel inhibitory activities. Additional incremental adjustment of polarity led to permeable molecules which exhibited favorable pharmacokinetic (PK) profiles in preclinical animal species. The active site binding mode of these compounds was determined by X-ray crystallography as exemplified by amide 24c. A subsequent lead molecule from this series, (+)-6-(aminomethyl)-5-(2,4-dichlorophenyl)-N-(1-ethyl-1H-pyrazol-5-yl)-7-methylimidazo[1,2-a]pyrimidine-2-carboxamide (24s), emerged as a potent, selective DPP4 inhibitor that displayed excellent PK profiles and in vivo efficacy in ob/ob mice.
Archives of Biochemistry and Biophysics | 2003
Lisa M. Kopcho; Jianhong Ma; Jovita Marcinkeviciene; Zhihong Lai; Mark R. Witmer; Janet Cheng; Joseph Yanchunas; Jeffrey Tredup; Martin J. Corbett; Deepa Calambur; Michael Wittekind; Manjula Paruchuri; Dharti Kothari; Grace Lee; Subinay Ganguly; Vidhyashankar Ramamurthy; Paul E. Morin; Daniel M. Camac; Robert W King; Amy L Lasut; O Harold Ross; Milton C Hillman; Barbara Fish; Keqiang Shen; Randine L. Dowling; Young Bun Kim; Nilsa R. Graciani; Dale Collins; Andrew P. Combs; Henry J. George
Amyloid precursor protein (APP) cleaving enzyme (BACE) is the enzyme responsible for beta-site cleavage of APP, leading to the formation of the amyloid-beta peptide that is thought to be pathogenic in Alzheimers disease (AD). Hence, BACE is an attractive pharmacological target, and numerous research groups have begun searching for potent and selective inhibitors of this enzyme as a potential mechanism for therapeutic intervention in AD. The mature enzyme is composed of a globular catalytic domain that is N-linked glycosylated in mammalian cells, a single transmembrane helix that anchors the enzyme to an intracellular membrane, and a short C-terminal domain that extends outside the phospholipid bilayer of the membrane. Here we have compared the substrate and active site-directed inhibitor binding properties of several recombinant constructs of human BACE. The constructs studied here address the importance of catalytic domain glycosylation state, inclusion of domains other than the catalytic domain, and incorporation into a membrane bilayer on the interactions of the enzyme active site with peptidic ligands. We find no significant differences in ligand binding properties among these various constructs. These data demonstrate that the nonglycosylated, soluble catalytic domain of BACE faithfully reflects the ligand binding properties of the full-length mature enzyme in its natural membrane environment. Thus, the use of the nonglycosylated, soluble catalytic domain of BACE is appropriate for studies aimed at understanding the determinants of ligand recognition by the enzyme active site.
Bioorganic & Medicinal Chemistry Letters | 2011
Kenneth M. Boy; Jason M. Guernon; Jianliang Shi; Jeremy H. Toyn; Jere E. Meredith; Donna M. Barten; Catherine R. Burton; Charles F. Albright; Jovita Marcinkeviciene; Andrew C. Good; Andrew J. Tebben; Jodi K. Muckelbauer; Daniel M. Camac; Kimberley A. Lentz; Joanne J. Bronson; Richard E. Olson; John E. Macor; Lorin A. Thompson
The synthesis, evaluation, and structure-activity relationships of a class of γ-lactam 1,3-diaminopropan-2-ol transition-state isostere inhibitors of BACE are discussed. Two strategies for optimizing lead compound 1a are presented. Reducing the overall size of the inhibitors resulted in the identification of γ-lactam 1i, whereas the introduction of conformational constraint on the prime-side of the inhibitor generated compounds such as the 3-hydroxypyrrolidine inhibitor 28n. The full in vivo profile of 1i in rats and 28n in Tg 2576 mice is presented.
Journal of Biological Chemistry | 2014
Karen Rigat; Hao Lu; Ying-Kai Wang; Argyrides Argyrou; Caroline Fanslau; Brett R. Beno; Yi Wang; Jovita Marcinkeviciene; Min Ding; Robert G. Gentles; Min Gao; Lynn M. Abell; Susan B. Roberts
Background: BMS-791325, a non-nucleoside inhibitor of HCV NS5B, has robust clinical efficacy. Results: Biochemical and biophysical methods revealed a non-competitive time-dependent inhibition mechanism and permitted complete parameterization of inhibitor binding kinetics. Conclusion: Thumb and finger variants affect BMS-791325 association rates. Significance: The impact of NS5B variants on BMS-791325 binding provides insight into the basis of inhibitor resistance and the process of replication complex formation. HCV infection is an urgent global health problem that has triggered a drive to discover therapies that specifically target the virus. BMS-791325 is a novel direct antiviral agent specifically targeting HCV NS5B, an RNA-dependent RNA polymerase. Robust viral clearance of HCV was observed in infected patients treated with BMS-791325 in combination with other anti-HCV agents in Phase 2 clinical studies. Biochemical and biophysical studies revealed that BMS-791325 is a time-dependent, non-competitive inhibitor of the polymerase. Binding studies with NS5B genetic variants (WT, L30S, and P495L) exposed a two-step, slow binding mechanism, but details of the binding mechanism differed for each of the polymerase variants. For the clinically relevant resistance variant (P495L), the rate of initial complex formation and dissociation is similar to WT, but the kinetics of the second step is significantly faster, showing that this variant impacts the final tight complex. The resulting shortened residence time translates into the observed decrease in inhibitor potency. The L30S variant has a significantly different profile. The rate of initial complex formation and dissociation is 7–10 times faster for the L30S variant compared with WT; however, the forward and reverse rates to form the final complex are not significantly different. The impact of the L30S variant on the inhibition profile and binding kinetics of BMS-791325 provides experimental evidence for the dynamic interaction of fingers and thumb domains in an environment that supports the formation of active replication complexes and the initiation of RNA synthesis.