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Dive into the research topics where Edward J. Hennessy is active.

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Featured researches published by Edward J. Hennessy.


Journal of Medicinal Chemistry | 2013

Discovery of a Novel Class of Dimeric Smac Mimetics as Potent IAP Antagonists Resulting in a Clinical Candidate for the Treatment of Cancer (AZD5582)

Edward J. Hennessy; Ammar Adam; Brian Aquila; Castriotta Lm; Donald J. Cook; Maureen Hattersley; Alexander Hird; Huntington C; Victor Kamhi; Laing Nm; Danyang Li; Terry MacIntyre; Omer Ca; Oza; Patterson T; Repik G; Michael T. Rooney; Jamal C. Saeh; Li Sha; Melissa Vasbinder; Haiyun Wang; Whitston D

A series of dimeric compounds based on the AVPI motif of Smac were designed and prepared as antagonists of the inhibitor of apoptosis proteins (IAPs). Optimization of cellular potency, physical properties, and pharmacokinetic parameters led to the identification of compound 14 (AZD5582), which binds potently to the BIR3 domains of cIAP1, cIAP2, and XIAP (IC50 = 15, 21, and 15 nM, respectively). This compound causes cIAP1 degradation and induces apoptosis in the MDA-MB-231 breast cancer cell line at subnanomolar concentrations in vitro. When administered intravenously to MDA-MB-231 xenograft-bearing mice, 14 results in cIAP1 degradation and caspase-3 cleavage within tumor cells and causes substantial tumor regressions following two weekly doses of 3.0 mg/kg. Antiproliferative effects are observed with 14 in only a small subset of the over 200 cancer cell lines examined, consistent with other published IAP inhibitors. As a result of its in vitro and in vivo profile, 14 was nominated as a candidate for clinical development.


Journal of Medicinal Chemistry | 2013

Discovery and Optimization of a Novel Series of Potent Mutant B-Raf V600E Selective Kinase Inhibitors.

Melissa Vasbinder; Brian Aquila; Martin Augustin; Huawei Chen; Tony Cheung; Donald J. Cook; Lisa Drew; Benjamin P. Fauber; Steve Glossop; Michael Grondine; Edward J. Hennessy; Jeffrey W. Johannes; Stephen Lee; Paul Lyne; Mario Mörtl; Charles Omer; Sangeetha Palakurthi; Timothy Pontz; Jon Read; Li Sha; Minhui Shen; Stefan Steinbacher; Haixia Wang; Allan Wu; Minwei Ye

B-Raf represents an attractive target for anticancer therapy and the development of small molecule B-Raf inhibitors has delivered new therapies for metastatic melanoma patients. We have discovered a novel class of small molecules that inhibit mutant B-Raf(V600E) kinase activity both in vitro and in vivo. Investigations into the structure-activity relationships of the series are presented along with efforts to improve upon the cellular potency, solubility, and pharmacokinetic profile. Compounds selectively inhibited B-Raf(V600E) in vitro and showed preferential antiproliferative activity in mutant B-Raf(V600E) cell lines and exhibited selectivity in a kinase panel against other kinases. Examples from this series inhibit growth of a B-Raf(V600E) A375 xenograft in vivo at a well-tolerated dose. In addition, aminoquinazolines described herein were shown to display pERK elevation in nonmutant B-Raf cell lines in vitro.


Journal of Medicinal Chemistry | 2014

Discovery of Potent KIFC1 Inhibitors Using a Method of Integrated High-Throughput Synthesis and Screening

Bin Yang; Michelle Lamb; Tao Zhang; Edward J. Hennessy; Gurmit Grewal; Li Sha; Mark Zambrowski; Michael Howard Block; James E. Dowling; Nancy Su; Jiaquan Wu; Tracy L. Deegan; Keith Mikule; Wenxian Wang; Rüdiger Kaspera; Claudio Chuaqui; Huawei Chen

KIFC1 (HSET), a member of the kinesin-14 family of motor proteins, plays an essential role in centrosomal bundling in cancer cells, but its function is not required for normal diploid cell division. To explore the potential of KIFC1 as a therapeutic target for human cancers, a series of potent KIFC1 inhibitors featuring a phenylalanine scaffold was developed from hits identified through high-throughput screening (HTS). Optimization of the initial hits combined both design-synthesis-test cycles and an integrated high-throughput synthesis and biochemical screening method. An important aspect of this integrated method was the utilization of DMSO stock solutions of compounds registered in the corporate compound collection as synthetic reactants. Using this method, over 1500 compounds selected for structural diversity were quickly assembled in assay-ready 384-well plates and were directly tested after the necessary dilutions. Our efforts led to the discovery of a potent KIFC1 inhibitor, AZ82, which demonstrated the desired centrosome declustering mode of action in cell studies.


Bioorganic & Medicinal Chemistry Letters | 2016

Selective inhibitors of Bcl-2 and Bcl-xL: Balancing antitumor activity with on-target toxicity.

Edward J. Hennessy

The induction of apoptosis in tumor cells represents a promising approach to the treatment of cancer. Accordingly, compounds that interact with the Bcl-2 family of proteins, which are critical regulators of the apoptotic process, have been widely pursued as potential anticancer agents. While encouraging antitumor activity in clinical trials has been observed with some of these compounds, their therapeutic utility is often limited by accompanying toxicities associated with the interaction with this family of proteins. As a result, there has been recent interest in identifying agents that can selectively target a single Bcl-2 family member (such as Bcl-2 or Bcl-xL), with the expectation that improved therapeutic margins can be achieved. In this review, we outline the biological rationale behind this approach, and highlight key examples of selective compounds from the recent literature alongside the structural basis for the reported selectivity.


Bioorganic & Medicinal Chemistry Letters | 2012

Discovery of aminopiperidine-based Smac mimetics as IAP antagonists.

Edward J. Hennessy; Jamal C. Saeh; Li Sha; Terry MacIntyre; Haiyun Wang; Nicholas A. Larsen; Brian Aquila; Andrew D. Ferguson; Naomi Laing; Charles A. Omer

A series of structurally unique Smac mimetics that act as antagonists of inhibitor of apoptosis proteins (IAPs) has been discovered. While most previously described Smac mimetics contain the proline ring (or a similar cyclic motif) found in Smac, a key feature of the compounds described herein is that this ring has been removed. Despite this, compounds in this series potently bind to cIAP1 and elicit the expected phenotype of cIAP1 inhibition in cancer cells. Marked selectivity for cIAP1 over XIAP is observed for these compounds, which is attributed to a slight difference in the binding groove between the two proteins and the resulting steric interactions with the inhibitors. XIAP binding can be improved by constraining the inhibitor so that these unfavorable steric interactions are minimized.


Expert Opinion on Therapeutic Patents | 2015

Small molecule inhibitor of apoptosis proteins antagonists: a patent review

Alexander Hird; Brian Aquila; Edward J. Hennessy; Melissa Vasbinder; Bin Yang

Introduction: The family of inhibitor of apoptosis proteins (IAPs) plays a key role in the suppression of proapoptotic signaling; hence, a small molecule that disrupts the binding of IAPs with their functional partner should restore apoptotic response to proapoptotic stimuli in cells. The continued publication of new patent applications of IAP antagonists over the past 4 years is a testament to the continued interest surrounding the IAP family of proteins. Areas covered: This review summarizes the IAP antagonist patent literature from 2010 to 2014. Monovalent and bivalent Smac mimetics will be covered as well as two new developments in the field: IAP antagonists coupled to or merged with other targeted agents and new BIR2 selective IAP antagonists. Expert opinion: In addition to the well-explored scaffolds for monovalent and bivalent Smac-mimetics, some companies have taken more drastic approaches to explore new chemical space – for example, fragment-based approaches and macrocyclic inhibitors. Furthermore, other companies have designed compounds with alternative biological profiles – tethering to known kinase binding structures, trying to target to the mitochondria or introducing selective binding to the BIR2 domain. An overview of the status for the four small molecule IAP antagonists being evaluated in active human clinical trials is also provided.


MedChemComm | 2014

Identification and optimisation of 7-azaindole PAK1 inhibitors with improved potency and kinase selectivity

William Mccoull; Edward J. Hennessy; Kevin Blades; Matthew R. Box; Claudio Chuaqui; James E. Dowling; Christopher D. Davies; Andrew D. Ferguson; Frederick W. Goldberg; Nicholas J. Howe; Paul D. Kemmitt; Gillian M. Lamont; Katrina Madden; Claire McWhirter; Jeffrey G. Varnes; Jason Williams; Bin Yang

A novel series of PAK1 inhibitors was discovered from a kinase directed screen. SAR exploration in the selectivity pocket and solvent tail regions was conducted to understand and optimise PAK1 potency and selectivity against targeted kinases. A liganded PAK1 crystal structure was utilised to guide compound design. Permeability and kinase selectivity impacted the translation of enzyme to cellular PAK1 potency. Compound 36 (AZ-PAK-36) demonstrated improved Gini coefficient, good PAK1 cellular potency and has utility as a tool compound for target validation studies.


Journal of Medicinal Chemistry | 2015

Identification and Optimization of Benzimidazole Sulfonamides as Orally Bioavailable Sphingosine 1-Phosphate Receptor 1 Antagonists with in Vivo Activity.

Edward J. Hennessy; Vibha Oza; Ammar Adam; Kate Byth; Lillian Castriotta; Gurmit Grewal; Geraldine A. Hamilton; Victor Kamhi; Paula Lewis; Danyang Li; Paul Lyne; Linda Öster; Michael T. Rooney; Jamal C. Saeh; Li Sha; Qibin Su; Shengua Wen; Yafeng Xue; Bin Yang

We report here a novel series of benzimidazole sulfonamides that act as antagonists of the S1P1 receptor, identified by exploiting an understanding of the pharmacophore of a high throughput screening (HTS)-derived series of compounds described previously. Lead compound 2 potently inhibits S1P-induced receptor internalization in a cell-based assay (EC50 = 0.05 μM), but has poor physical properties and metabolic stability. Evolution of this compound through structure-activity relationship development and property optimization led to in vivo probes such as 4. However, this compound was unexpectedly found to be a potent CYP3A inducer in human hepatocytes, and thus further chemistry efforts were directed at addressing this liability. By employing a pregnane X receptor (PXR) reporter gene assay to prioritize compounds for further testing in human hepatocytes, we identified lipophilicity as a key molecular property influencing the likelihood of P450 induction. Ultimately, we have identified compounds such as 46 and 47, which demonstrate the desired S1P1 antagonist activity while having greatly reduced risk of CYP3A induction in humans. These compounds have excellent oral bioavailability in preclinical species and exhibit pharmacodynamic effects of S1P1 antagonism in several in vivo models following oral dosing. Relatively modest antitumor activity was observed in multiple xenograft models, however, suggesting that selective S1P1 antagonists would have limited utility as anticancer therapeutics as single agents.


ACS Medicinal Chemistry Letters | 2016

Utilization of Structure-Based Design to Identify Novel, Irreversible Inhibitors of EGFR Harboring the T790M Mutation

Edward J. Hennessy; Claudio Chuaqui; Susan Ashton; Nicola Colclough; Darren Cross; J.E. Debreczeni; Cath Eberlein; Lakshmaiah Gingipalli; Teresa Klinowska; Jonathan P. Orme; Li Sha; Xiaoyun Wu

A novel series of covalent inhibitors of EGFR (epidermal growth factor receptor) kinase was discovered through a combination of subset screening and structure-based design. These compounds preferentially inhibit mutant forms of EGFR (activating mutant and T790M mutant) over wild-type EGFR in cellular assays measuring EGFR autophosphorylation and proliferation, suggesting an improved therapeutic index in non-small cell lung cancer patients would be achievable relative to established EGFR inhibitors. We describe our design approaches, resulting in the identification of the lead compound 5, and our efforts to develop an understanding of the structure-activity relationships within this series. In addition, strategies to overcome challenges around metabolic stability and aqueous solubility are discussed. Despite limitations in its physical properties, 5 is orally bioavailable in mice and demonstrates pronounced antitumor activity in in vivo models of mutant EGFR-driven cancers.


Bioorganic & Medicinal Chemistry Letters | 2015

Discovery of heterocyclic sulfonamides as sphingosine 1-phosphate receptor 1 (S1P1) antagonists

Edward J. Hennessy; Gurmit Grewal; Kate Byth; Victor Kamhi; Danyang Li; Paul Lyne; Vibha Oza; Lucienne Ronco; Michael T. Rooney; Jamal C. Saeh; Qibin Su

We have discovered a novel class of heterocyclic sulfonamides that act as antagonists of the S1P1 receptor. While members of this series identified from a high-throughput screen showed promising levels of potency in a cell-based assay measuring the inhibition of receptor internalization, most compounds were excessively lipophilic and contained an oxidation-prone thioether moiety. As a result, such compounds suffered from poor physical properties and metabolic stability, limiting their utility as in vivo probes. By removing the thioether group and systematically developing an understanding of structure-activity relationships and the effects of lipophilicity on potency within this series, we have been able to identify potent compounds with vastly improved physical properties. A representative enantiopure triazole sulfonamide (33) has measurable bioavailability following a low (3mg/kg) oral dose in rat, highlighting an achievement of the early hit-to-lead efforts for this series.

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Vibha Oza

Scripps Research Institute

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Vibha Oza

Scripps Research Institute

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