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Dive into the research topics where Mui Cheung is active.

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Featured researches published by Mui Cheung.


Molecular Cancer Therapeutics | 2007

Pharmacokinetic-pharmacodynamic correlation from mouse to human with pazopanib, a multikinase angiogenesis inhibitor with potent antitumor and antiangiogenic activity

Rakesh Kumar; Victoria B. Knick; Sharon K. Rudolph; Jennifer H. Johnson; Renae M. Crosby; Ming-Chih Crouthamel; Teresa M. Hopper; Charles G. Miller; Laura E. Harrington; James Onori; Robert J. Mullin; Tona M. Gilmer; Anne T. Truesdale; Andrea H. Epperly; Amogh Boloor; Jeffrey A. Stafford; Deirdre K. Luttrell; Mui Cheung

With the development of targeted therapeutics, especially for small-molecule inhibitors, it is important to understand whether the observed in vivo efficacy correlates with the modulation of desired/intended target in vivo. We have developed a small-molecule inhibitor of all three vascular endothelial growth factor (VEGF) receptors (VEGFR), platelet-derived growth factor receptor, and c-Kit tyrosine kinases, pazopanib (GW786034), which selectively inhibits VEGF-induced endothelial cell proliferation. It has good oral exposure and inhibits angiogenesis and tumor growth in mice. Because bolus administration of the compound results in large differences in Cmax and Ctrough, we investigated the effect of continuous infusion of a VEGFR inhibitor on tumor growth and angiogenesis. GW771806, which has similar enzyme and cellular profiles to GW786034, was used for these studies due to higher solubility requirements for infusion studies. Comparing the pharmacokinetics by two different routes of administration (bolus p.o. dosing and continuous infusion), we showed that the antitumor and antiangiogenic activity of VEGFR inhibitors is dependent on steady-state concentration of the compound above a threshold. The steady-state concentration required for these effects is consistent with the concentration required for the inhibition of VEGF-induced VEGFR2 phosphorylation in mouse lungs. Furthermore, the steady-state concentration of pazopanib determined from preclinical activity showed a strong correlation with the pharmacodynamic effects and antitumor activity in the phase I clinical trial. [Mol Cancer Ther 2007;6(7):2012–21]


Journal of Medicinal Chemistry | 2008

Discovery of 5-[[4-[(2,3-dimethyl-2H-indazol-6-yl)methylamino]-2-pyrimidinyl]amino]-2-methyl-benzenesulfonamide (Pazopanib), a novel and potent vascular endothelial growth factor receptor inhibitor.

Philip A. Harris; Amogh Boloor; Mui Cheung; Rakesh Kumar; Renae M. Crosby; Ronda G. Davis-Ward; Andrea H. Epperly; Kevin Hinkle; Robert Neil Hunter; Jennifer H. Johnson; Victoria B. Knick; Christopher P. Laudeman; Deirdre K. Luttrell; Robert A. Mook; Robert T. Nolte; Sharon K. Rudolph; Jerzy Ryszard Szewczyk; Anne T. Truesdale; James Marvin Veal; Liping Wang; Jeffrey A. Stafford

Inhibition of the vascular endothelial growth factor (VEGF) signaling pathway has emerged as one of the most promising new approaches for cancer therapy. We describe herein the key steps starting from an initial screening hit leading to the discovery of pazopanib, N(4)-(2,3-dimethyl-2H-indazol-6-yl)-N(4)-methyl-N(2)-(4-methyl-3-sulfonamidophenyl)-2,4-pyrimidinediamine, a potent pan-VEGF receptor (VEGFR) inhibitor under clinical development for renal-cell cancer and other solid tumors.


Molecular Cancer Therapeutics | 2007

In vitro biological activity of a novel small-molecule inhibitor of polo-like kinase 1

Timothy J. Lansing; Randy T. McConnell; Derek R. Duckett; Glenn M. Spehar; Victoria B. Knick; Daniel F. Hassler; Nobuhiro Noro; Masaaki Furuta; Kyle Allen Emmitte; Tona M. Gilmer; Robert A. Mook; Mui Cheung

Polo-like kinase 1 (PLK1) plays key roles in the regulation of mitotic progression, including mitotic entry, spindle formation, chromosome segregation, and cytokinesis. PLK1 expression and activity are strongly linked to proliferating cells. Many studies have shown that PLK1 expression is elevated in a variety of tumors, and high expression often correlates with poor prognosis. Using a variety of methods, including small-molecule inhibition of PLK1 function and/or activity, apoptosis in cancer cell lines, cell cycle arrest in normal cell lines, and antitumor activity in vivo have been observed. In the present study, we have examined the in vitro biological activity of a novel and selective thiophene benzimidazole ATP-competitive inhibitor of PLK1 and PLK3 (5-(5,6-dimethoxy-1H-benzimidazol-1-yl)-3-{[2-(trifluoromethyl)-benzyl]oxy}thiophene-2-carboxamide, called compound 1). Compound 1 has low nanomolar activity against the PLK1 and PLK3 enzymes and potently inhibits the proliferation of a wide variety of tumor cell lines. In the lung adenocarcinoma cell line NCI-H460, compound 1 induces a transient G2-M arrest, mitotic spindle defects, and a multinucleate phenotype resulting in apoptosis, whereas normal human diploid fibroblasts arrest in G2-M and show little apoptosis. We also describe a cellular mechanistic assay that was developed to identify potent intracellular inhibitors of PLK1. In addition to its potential as a therapeutic agent for treating cancer, compound 1 is also a useful tool molecule for further investigation of the biological functions of PLK1 and PLK3. [Mol Cancer Ther 2007;6(2):450–9]


Science Translational Medicine | 2012

An Orally Active TRPV4 Channel Blocker Prevents and Resolves Pulmonary Edema Induced by Heart Failure

Kevin S. Thorneloe; Mui Cheung; Weike Bao; Hasan Alsaid; Stephen C. Lenhard; Ming-Yuan Jian; Melissa H. Costell; Kristeen Maniscalco-Hauk; John A. Krawiec; Alan R. Olzinski; Earl Gordon; Irina M. Lozinskaya; Lou Elefante; Pu Qin; Daniel S. Matasic; Chris James; James Tunstead; Brian T. Donovan; Lorena A. Kallal; Anna Waszkiewicz; Kalindi Vaidya; Elizabeth A. Davenport; J. Larkin; Mark Burgert; Linda N. Casillas; Robert W. Marquis; Guosen Ye; Hilary Schenck Eidam; Krista B. Goodman; John R. Toomey

Transient receptor potential vanilloid 4 (TRPV4) channels are expressed in human heart failure lungs, which can be blocked to prevent and resolve heart failure–induced pulmonary edema. Ion Channel Blockade Prevents Pulmonary Edema Heart failure affects not only the heart and vessels but also the lungs. As blood pressure builds up in the lung’s vessels, fluid leaks into the lungs. Treatment options are limited for these patients, mostly because the mechanism underlying pulmonary edema is unclear. Here, Thorneloe and colleagues implicate the activation of the transient receptor potential vanilloid 4 (TRPV4) ion channel in the onset of edema during heart failure and show that a small-molecule drug can prevent such leakage. Activation of the ion channel TRPV4 results in pulmonary edema in animal lungs. The authors first confirmed that TRPV4 was expressed in normal human lungs and then demonstrated that it was increased in lung tissue from patients with a history of congestive heart failure. Using a small-molecule screen, Thorneloe et al. discovered GSK2193874. In human cells in vitro and mouse lungs ex vivo, the small molecule effectively blocked TRPV4 channels to maintain endothelial (vessel) layer integrity. A related study by Huh et al. (this issue) shows that the drug indeed prevents vascular leakage of human cell cultures in vitro. The GSK2193874 analog GSK2263095 displayed similar activity in canine lungs ex vivo. In vivo in rat models of heart failure, the authors found that the drug was effective in both preventing and reversing pulmonary edema. The molecule only protected against lung permeability at high (pathological) pulmonary venous pressure. Thorneloe and colleagues showed that GSK2193874 blocked TRPV4 activity across species, including in human cells, without adversely affecting heart rate or arterial pressure. This suggests that TRPV4 blockers might be used therapeutically to treat patients with heart failure–induced pulmonary edema. Pulmonary edema resulting from high pulmonary venous pressure (PVP) is a major cause of morbidity and mortality in heart failure (HF) patients, but current treatment options demonstrate substantial limitations. Recent evidence from rodent lungs suggests that PVP-induced edema is driven by activation of pulmonary capillary endothelial transient receptor potential vanilloid 4 (TRPV4) channels. To examine the therapeutic potential of this mechanism, we evaluated TRPV4 expression in human congestive HF lungs and developed small-molecule TRPV4 channel blockers for testing in animal models of HF. TRPV4 immunolabeling of human lung sections demonstrated expression of TRPV4 in the pulmonary vasculature that was enhanced in sections from HF patients compared to controls. GSK2193874 was identified as a selective, orally active TRPV4 blocker that inhibits Ca2+ influx through recombinant TRPV4 channels and native endothelial TRPV4 currents. In isolated rodent and canine lungs, TRPV4 blockade prevented the increased vascular permeability and resultant pulmonary edema associated with elevated PVP. Furthermore, in both acute and chronic HF models, GSK2193874 pretreatment inhibited the formation of pulmonary edema and enhanced arterial oxygenation. Finally, GSK2193874 treatment resolved pulmonary edema already established by myocardial infarction in mice. These findings identify a crucial role for TRPV4 in the formation of HF-induced pulmonary edema and suggest that TRPV4 blockade is a potential therapeutic strategy for HF patients.


Bioorganic & Medicinal Chemistry Letters | 2009

Design of potent thiophene inhibitors of polo-like kinase 1 with improved solubility and reduced protein binding.

Kyle Allen Emmitte; George M. Adjebang; C. Webb Andrews; Jennifer G. Badiang Alberti; Ramesh Bambal; Stanley D. Chamberlain; Ronda G. Davis-Ward; Hamilton D. Dickson; Daniel F. Hassler; Keith R. Hornberger; Jeffrey R. Jackson; Kevin Wayne Kuntz; Timothy J. Lansing; Robert A. Mook; Kristen E. Nailor; Mark Andrew Pobanz; Stephon C. Smith; Chiu-Mei Sung; Mui Cheung

A series of thiophene PLK1 inhibitors was optimized for increased solubility and reduced protein binding through the appendage of basic amine functionality. Interesting selectivity between PLK1 and PLK3 was also obtained through these modifications.


Oncogene | 2005

Inhibition of VEGF receptors significantly impairs mammary cancer growth in C3(1)/Tag transgenic mice through antiangiogenic and non-antiangiogenic mechanisms

Jung-Im Huh; Alfonso Calvo; Jeffrey A. Stafford; Mui Cheung; Rakesh Kumar; Deborah Philp; Hynda K. Kleinman; Jeffrey Green

Cancer growth and progression is often critically influenced by the production of vascular endothelial growth factor (VEGF), a key mediator of angiogenesis. VEGF produced by tumor cells stimulates endothelial cell growth through the binding and activation of the KDR/Flk-1 receptor (VEGFR-2) on endothelial cells. Recently, some human breast cancer epithelial cells have been shown to express VEGF receptors, suggesting a potential autocrine-mediated growth stimulation of a subset of cancers by VEGF. We demonstrate that mammary tumors in the C3(1)/Tag transgenic model express VEGF and VEGF receptors and tumor growth is stimulated by this autocrine mechanism. GW654652, an indazolylpyrimidine, is a VEGFRs tyrosine kinase inhibitor that dramatically reduces both angiogenesis and tumor cell growth in this model, as demonstrated using both in vitro and in vivo assays. GW654652 significantly decreased cell proliferation and induced apoptosis in human umbilical vein endothelial cells and M6 mammary tumor cells derived from C3(1)/Tag (Tag: simian virus 40 T-antigen) transgenic mice. A 75% reduction in VEGF-induced angiogenesis was observed with GW654652 using the chick chorioallantoic membrane assay, whereas GW654652 produced an approximately 85% reduction in angiogenesis as assessed by the Matrigel™ plug assay. A profound inhibitory effect on tumor growth in the C3(1)/Tag transgenic model of human breast cancer was observed with oral administration of GW654652 as measured by delayed tumor onset, decreased multiplicity, reduced tumor volume, and extended animal survival. The antitumor effects of GW654652 were associated with reduced tumor vascularization and no apparent toxicity. Tumor growth, however, rapidly advanced following cessation of treatment. This is the first demonstration that a VEGF receptor inhibitor, GW654652, has a strong inhibitory effect on angiogenesis and tumor progression in a transgenic model of mammary cancer, suggesting that this is a useful approach for preclinical testing of such agents.


Bioorganic & Medicinal Chemistry Letters | 2009

Discovery of potent, selective sulfonylfuran urea endothelial lipase inhibitors.

Krista B. Goodman; Michael Jonathan Bury; Mui Cheung; Maria Cichy-Knight; Sarah E. Dowdell; Allison K. Dunn; Dennis Lee; Jeffrey A. Lieby; Michael L. Moore; Daryl Scherzer; Deyou Sha; Dominic Suarez; Dennis Murphy; Mark R. Harpel; Eric S. Manas; Dean E. McNulty; Roland S. Annan; Rosalie Matico; Benjamin Schwartz; John J. Trill; Thomas D. Sweitzer; Da-Yuan Wang; Paul M. Keller; John A. Krawiec; Michael Jaye

Endothelial lipase (EL) activity has been implicated in HDL catabolism, vascular inflammation, and atherogenesis, and inhibitors are therefore expected to be useful for the treatment of cardiovascular disease. Sulfonylfuran urea 1 was identified in a high-throughput screening campaign as a potent and non-selective EL inhibitor. A lead optimization effort was undertaken to improve potency and selectivity, and modifications leading to improved LPL selectivity were identified. Radiolabeling studies were undertaken to establish the mechanism of action for these inhibitors, which were ultimately demonstrated to be irreversible inhibitors.


Bioorganic & Medicinal Chemistry Letters | 2008

The identification of pyrazolo[1,5-a]pyridines as potent p38 kinase inhibitors

Mui Cheung; Philip A. Harris; Jennifer Gabriel Badiang; Gregory Peckham; Stanley D. Chamberlain; Michael John Alberti; David K. Jung; Stephanie Harris; Neal H. Bramson; Andrea H. Epperly; Stephen A. Stimpson; Michael Robert Peel

A series of pyrazolo[1,5-a]pyridine derivatives was designed and synthesized as novel potent p38 kinase inhibitors. Our approaches towards improving in vitro metabolism and in vivo pharmacokinetic properties of the series are described.


Bioorganic & Medicinal Chemistry Letters | 2009

Discovery of thiophene inhibitors of polo-like kinase.

Kyle Allen Emmitte; C. Webb Andrews; Jennifer Gabriel Badiang; Ronda G. Davis-Ward; Hamilton D. Dickson; David H. Drewry; Holly Kathleen Emerson; Andrea H. Epperly; Daniel F. Hassler; Victoria B. Knick; Kevin Wayne Kuntz; Timothy J. Lansing; James A. Linn; Robert A. Mook; Kristen E. Nailor; James Michael Salovich; Glenn M. Spehar; Mui Cheung

The discovery and development of a series of thiophenes as potent and selective inhibitors of PLK is described. Identification and characterization of 2, a useful in vitro PLK inhibitor tool compound, is also presented.


Bioorganic & Medicinal Chemistry Letters | 2009

Discovery and optimization of imidazo[1,2-a]pyridine inhibitors of insulin-like growth factor-1 receptor (IGF-1R)

Kyle Allen Emmitte; Brian John Wilson; Erich W. Baum; Holly Kathleen Emerson; Kevin Wayne Kuntz; Kristen E. Nailor; James Michael Salovich; Stephon C. Smith; Mui Cheung; Roseanne M. Gerding; Kirk L. Stevens; David E. Uehling; Robert A. Mook; Ganesh S. Moorthy; Scott Howard Dickerson; Anne M. Hassell; M. Anthony Leesnitzer; Lisa M. Shewchuk; Arthur Groy; Jason L. Rowand; Kelly Anderson; Charity Atkins; Jingsong Yang; Peter Sabbatini; Rakesh Kumar

The optimization of imidazo[1,2-a]pyridine inhibitors as potent and selective inhibitors of IGF-1R is presented. Further optimization of oral exposure in mice is also discussed. Detailed selectivity, in vitro activity, and in vivo PK profiles of an optimized compound is also highlighted.

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