Rachel McMenamin
Astex
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Publication
Featured researches published by Rachel McMenamin.
Journal of Medicinal Chemistry | 2009
Steven Howard; Valerio Berdini; John A. Boulstridge; Maria Grazia Carr; David M. Cross; Jayne Curry; Lindsay A. Devine; Theresa Rachel Early; Lynsey Fazal; Adrian Liam Gill; Michelle Heathcote; Sarita Maman; Julia E. Matthews; Rachel McMenamin; Eva Figueroa Navarro; Michael A. O’Brien; Marc O’Reilly; David C. Rees; Matthias Reule; Dominic Tisi; Glyn Williams; Mladen Vinkovic; Paul G. Wyatt
Here, we describe the identification of a clinical candidate via structure-based optimization of a ligand efficient pyrazole-benzimidazole fragment. Aurora kinases play a key role in the regulation of mitosis and in recent years have become attractive targets for the treatment of cancer. X-ray crystallographic structures were generated using a novel soakable form of Aurora A and were used to drive the optimization toward potent (IC(50) approximately 3 nM) dual Aurora A/Aurora B inhibitors. These compounds inhibited growth and survival of HCT116 cells and produced the polyploid cellular phenotype typically associated with Aurora B kinase inhibition. Optimization of cellular activity and physicochemical properties ultimately led to the identification of compound 16 (AT9283). In addition to Aurora A and Aurora B, compound 16 was also found to inhibit a number of other kinases including JAK2 and Abl (T315I). This compound demonstrated in vivo efficacy in mouse xenograft models and is currently under evaluation in phase I clinical trials.
Journal of Medicinal Chemistry | 2008
Paul G. Wyatt; Andrew James Woodhead; Berdini; J.A Boulstridge; Maria Grazia Carr; David M. Cross; D.J Davis; Lindsay A. Devine; Theresa Rachel Early; Ruth Feltell; E.J Lewis; Rachel McMenamin; Eva Figueroa Navarro; Michael Alistair O'brien; Marc O'Reilly; Matthias Reule; G Saxty; L.C.A Seavers; D Smith; M.S Squires; G Trewartha; M.T Walker; Alison Jo-Anne Woolford
The application of fragment-based screening techniques to cyclin dependent kinase 2 (CDK2) identified multiple (>30) efficient, synthetically tractable small molecule hits for further optimization. Structure-based design approaches led to the identification of multiple lead series, which retained the key interactions of the initial binding fragments and additionally explored other areas of the ATP binding site. The majority of this paper details the structure-guided optimization of indazole (6) using information gained from multiple ligand-CDK2 cocrystal structures. Identification of key binding features for this class of compounds resulted in a series of molecules with low nM affinity for CDK2. Optimisation of cellular activity and characterization of pharmacokinetic properties led to the identification of 33 (AT7519), which is currently being evaluated in clinical trials for the treatment of human cancers.
Journal of Medicinal Chemistry | 2010
Andrew James Woodhead; Hayley Angove; Maria Grazia Carr; Gianni Chessari; Miles Congreve; Joseph E. Coyle; Jose Cosme; Brent Graham; Philip J. Day; Robert Downham; Lynsey Fazal; Ruth Feltell; Eva Figueroa; Martyn Frederickson; Jonathan Lewis; Rachel McMenamin; Christopher W. Murray; M. Alistair O’Brien; Lina Parra; Sahil Patel; Theresa Rachel Phillips; David C. Rees; Sharna J. Rich; Donna-Michelle Smith; Gary Trewartha; Mladen Vinkovic; Brian Williams; Alison Jo-Anne Woolford
Inhibitors of the molecular chaperone heat shock protein 90 (Hsp90) are currently generating significant interest in clinical development as potential treatments for cancer. In a preceding publication (DOI: 10.1021/jm100059d ) we describe Astexs approach to screening fragments against Hsp90 and the subsequent optimization of two hits into leads with inhibitory activities in the low nanomolar range. This paper describes the structure guided optimization of the 2,4-dihydroxybenzamide lead molecule 1 and details some of the drug discovery strategies employed in the identification of AT13387 (35), which has progressed through preclinical development and is currently being tested in man.
Journal of Medicinal Chemistry | 2010
Christopher W. Murray; Maria Grazia Carr; Owen Callaghan; Gianni Chessari; Miles Congreve; Suzanna Cowan; Joseph E. Coyle; Robert Downham; E Figueroa; Martyn Frederickson; Brent Graham; Rachel McMenamin; Michael Alistair O'brien; Sahil Patel; Theresa Rachel Phillips; Glyn Williams; Andrew James Woodhead; Alison Jo-Anne Woolford
Inhibitors of the chaperone Hsp90 are potentially useful as chemotherapeutic agents in cancer. This paper describes an application of fragment screening to Hsp90 using a combination of NMR and high throughput X-ray crystallography. The screening identified an aminopyrimidine with affinity in the high micromolar range and subsequent structure-based design allowed its optimization into a low nanomolar series with good ligand efficiency. A phenolic chemotype was also identified in fragment screening and was found to bind with affinity close to 1 mM. This fragment was optimized using structure based design into a resorcinol lead which has subnanomolar affinity for Hsp90, excellent cell potency, and good ligand efficiency. This fragment to lead campaign improved affinity for Hsp90 by over 1,000,000-fold with the addition of only six heavy atoms. The companion paper (DOI: 10.1021/jm100060b) describes how the resorcinol lead was optimized into a compound that is now in clinical trials for the treatment of cancer.
Proceedings of the National Academy of Sciences of the United States of America | 2009
Philip J. Day; Anne Cleasby; Ian J. Tickle; Marc O'Reilly; Joe Coyle; Finn P. Holding; Rachel McMenamin; Jeff Yon; Rajiv Chopra; Christoph Lengauer; Harren Jhoti
The cyclin D1–cyclin-dependent kinase 4 (CDK4) complex is a key regulator of the transition through the G1 phase of the cell cycle. Among the cyclin/CDKs, CDK4 and cyclin D1 are the most frequently activated by somatic genetic alterations in multiple tumor types. Thus, aberrant regulation of the CDK4/cyclin D1 pathway plays an essential role in oncogenesis; hence, CDK4 is a genetically validated therapeutic target. Although X-ray crystallographic structures have been determined for various CDK/cyclin complexes, CDK4/cyclin D1 has remained highly refractory to structure determination. Here, we report the crystal structure of CDK4 in complex with cyclin D1 at a resolution of 2.3 Å. Although CDK4 is bound to cyclin D1 and has a phosphorylated T-loop, CDK4 is in an inactive conformation and the conformation of the heterodimer diverges from the previously known CDK/cyclin binary complexes, which suggests a unique mechanism for the process of CDK4 regulation and activation.
Journal of Medicinal Chemistry | 2008
Martyn Frederickson; Owen Callaghan; Gianni Chessari; Miles Congreve; Suzanna Cowan; Julia E. Matthews; Rachel McMenamin; Donna-Michelle Smith; Mladen Vinkovic; Nicola G. Wallis
Fragment-based lead discovery has been applied to urokinase-type plasminogen activator (uPA). The (R)-enantiomer of the orally active drug mexiletine 5 (a fragment hit from X-ray crystallographic screening) was the chemical starting point. Structure-aided design led to elaborated inhibitors that retained the key interactions of (R)-5 while gaining extra potency by simultaneously occupying neighboring regions of the active site. Subsequent optimization led to 15, a potent, selective, and orally bioavailable inhibitor of uPA.
ACS Medicinal Chemistry Letters | 2012
Young Shin Cho; Hayley Angove; Christopher Thomas Brain; Christine Hiu-Tung Chen; Hong Cheng; Robert Cheng; Rajiv Chopra; Kristy Chung; Miles Congreve; Claudio Dagostin; Deborah J. Davis; Ruth Feltell; John William Giraldes; Steven Douglas Hiscock; Sunkyu Kim; Steven Kovats; Bharat Lagu; Kim Lewry; Alice Loo; Yipin Lu; Michael Luzzio; Wiesia Maniara; Rachel McMenamin; Paul N. Mortenson; Rajdeep Kaur Benning; Marc O'Reilly; David C. Rees; Junqing Shen; Troy Smith; Yaping Wang
Herein, we describe the discovery of potent and highly selective inhibitors of both CDK4 and CDK6 via structure-guided optimization of a fragment-based screening hit. CDK6 X-ray crystallography and pharmacokinetic data steered efforts in identifying compound 6, which showed >1000-fold selectivity for CDK4 over CDKs 1 and 2 in an enzymatic assay. Furthermore, 6 demonstrated in vivo inhibition of pRb-phosphorylation and oral efficacy in a Jeko-1 mouse xenograft model.
ACS Medicinal Chemistry Letters | 2015
Christopher N. Johnson; Valerio Berdini; Lijs Beke; Pascal Bonnet; Dirk Brehmer; Joseph E. Coyle; Phillip J. Day; Martyn Frederickson; Eddy Jean Edgard Freyne; Ron Gilissen; Christopher Charles Frederick Hamlett; Steven Howard; Lieven Meerpoel; Rachel McMenamin; Sahil Patel; David C. Rees; Andrew Sharff; Francois Maria Sommen; Tongfei Wu; Joannes Theodorus Maria Linders
Fragment-based drug design was successfully applied to maternal embryonic leucine zipper kinase (MELK). A low affinity (160 μM) fragment hit was identified, which bound to the hinge region with an atypical binding mode, and this was optimized using structure-based design into a low-nanomolar and cell-penetrant inhibitor, with a good selectivity profile, suitable for use as a chemical probe for elucidation of MELK biology.
ACS Medicinal Chemistry Letters | 2015
Christopher Norbert Johnson; Christophe Denis Adelinet; Valerio Berdini; Lijs Beke; Pascal Bonnet; Dirk Brehmer; Frederick Calo; Joseph E. Coyle; Phillip J. Day; Martyn Frederickson; Eddy Jean Edgard Freyne; Ron Gilissen; Christopher Charles Frederick Hamlett; Steven Howard; Lieven Meerpoel; Laurence Anne Mevellec; Rachel McMenamin; Elisabeth Thérèse Jeanne Pasquier; Sahil Patel; David C. Rees; Joannes Theodorus Maria Linders
A novel Type II kinase inhibitor chemotype has been identified for maternal embryonic leucine zipper kinase (MELK) using structure-based ligand design. The strategy involved structural characterization of an induced DFG-out pocket by protein-ligand X-ray crystallography and incorporation of a slender linkage capable of bypassing a large gate-keeper residue, thus enabling design of molecules accessing both hinge and induced pocket regions. Optimization of an initial hit led to the identification of a low-nanomolar, cell-penetrant Type II inhibitor suitable for use as a chemical probe for MELK.
Journal of Medicinal Chemistry | 2016
Alison Jo-Anne Woolford; Joseph E. Pero; Sridhar Aravapalli; Valerio Berdini; Joseph E. Coyle; Philip J. Day; Andrew M. Dodson; Pascal Grondin; Finn P. Holding; Lydia Y. W. Lee; Peng Li; Eric S. Manas; Joseph P. Marino; Agnes C. L. Martin; Brent W. Mccleland; Rachel McMenamin; Christopher W. Murray; Christopher E. Neipp; Lee W. Page; Vipulkumar Kantibhai Patel; Florent Potvain; Sharna J. Rich; Ralph A. Rivero; Kirsten S. Smith; Donald O. Somers; Lionel Trottet; Ranganadh Velagaleti; Glyn Williams; Ren Xie
Elevated levels of human lipoprotein-associated phospholipase A2 (Lp-PLA2) are associated with cardiovascular disease and dementia. A fragment screen was conducted against Lp-PLA2 in order to identify novel inhibitors. Multiple fragment hits were observed in different regions of the active site, including some hits that bound in a pocket created by movement of a protein side chain (approximately 13 Å from the catalytic residue Ser273). Using structure guided design, we optimized a fragment that bound in this pocket to generate a novel low nanomolar chemotype, which did not interact with the catalytic residues.