Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Keiichi Masuya is active.

Publication


Featured researches published by Keiichi Masuya.


Journal of Biological Chemistry | 2009

Crystal Structures of Human MdmX (HdmX) in Complex with p53 Peptide Analogues Reveal Surprising Conformational Changes

Joerg Kallen; Arnaud Goepfert; Anke Blechschmidt; Aude Izaac; Martin Geiser; Gisele A. Tavares; Paul Ramage; Pascal Furet; Keiichi Masuya; Joanna Lisztwan

p53 tumor suppressor activity is negatively regulated through binding to the oncogenic proteins Hdm2 and HdmX. The p53 residues Leu26, Trp23, and Phe19 are crucial to mediate these interactions. Inhibiting p53 binding to both Hdm2 and HdmX should be a promising clinical approach to reactivate p53 in the cancer setting, but previous studies have suggested that the discovery of dual Hdm2/HdmX inhibitors will be difficult. We have determined the crystal structures at 1.3 Å of the N-terminal domain of HdmX bound to two p53 peptidomimetics without and with a 6-chlorine substituent on the indole (which binds in the same subpocket as Trp23 of p53). The latter compound is the most potent peptide-based antagonist of the p53-Hdm2 interaction yet to be described. The x-ray structures revealed surprising conformational changes of the binding cleft of HdmX, including an “open conformation” of Tyr99 and unexpected “cross-talk” between the Trp and Leu pockets. Notably, the 6-chloro p53 peptidomimetic bound with high affinity to both HdmX and Hdm2 (Kd values of 36 and 7 nm, respectively). Our results suggest that the development of potent dual inhibitors for HdmX and Hdm2 should be feasible. They also reveal possible conformational states of HdmX, which should lead to a better prediction of its interactions with potential biological partners.


Bioorganic & Medicinal Chemistry Letters | 2012

The central valine concept provides an entry in a new class of non peptide inhibitors of the p53-MDM2 interaction.

Pascal Furet; Patrick Chène; Alain De Pover; Thérèse Valat; Joanna Lisztwan; Joerg Kallen; Keiichi Masuya

Disrupting the interaction between the p53 tumor suppressor and its regulator MDM2 is a promising therapeutic strategy in anticancer drug research. In our search for non peptide inhibitors of this protein-protein interaction, we have devised a ligand design concept exploiting the central position of Val 93 in the p53 binding pocket of MDM2. The design of molecules based on this concept has allowed us to rapidly identify compounds having a 3-imidazolyl indole core structure as the first representatives of a new class of potent inhibitors of the p53-MDM2 interaction.


Journal of Medicinal Chemistry | 2015

Discovery of a Dihydroisoquinolinone Derivative (NVP-CGM097): A Highly Potent and Selective MDM2 Inhibitor Undergoing Phase 1 Clinical Trials in p53wt Tumors

Philipp Holzer; Keiichi Masuya; Pascal Furet; Joerg Kallen; Therese Valat-Stachyra; Stephane Ferretti; Joerg Berghausen; Michèle Bouisset-Leonard; Nicole Buschmann; Carole Pissot-Soldermann; Caroline Rynn; Stephan Ruetz; Stefan Stutz; Patrick Chène; Sébastien Jeay; François Gessier

As a result of our efforts to discover novel p53:MDM2 protein-protein interaction inhibitors useful for treating cancer, the potent and selective MDM2 inhibitor NVP-CGM097 (1) with an excellent in vivo profile was selected as a clinical candidate and is currently in phase 1 clinical development. This article provides an overview of the discovery of this new clinical p53:MDM2 inhibitor. The following aspects are addressed: mechanism of action, scientific rationale, binding mode, medicinal chemistry, pharmacokinetic and pharmacodynamic properties, and in vivo pharmacology/toxicology in preclinical species.


Bioorganic & Medicinal Chemistry Letters | 2008

Discovery of selective and nonpeptidic cathepsin S inhibitors

Osamu Irie; Takeru Ehara; Atsuko Iwasaki; Fumiaki Yokokawa; Junichi Sakaki; Hajime Hirao; Takanori Kanazawa; Naoki Teno; Miyuki Horiuchi; Ichiro Umemura; Hiroki Gunji; Keiichi Masuya; Yuko Hitomi; Genji Iwasaki; Kazuhiko Nonomura; Keiko Tanabe; Hiroaki Fukaya; Takatoshi Kosaka; Christopher R. Snell; Allan Hallett

Nonpeptidic, selective, and potent cathepsin S inhibitors were derived from an in-house pyrrolopyrimidine cathepsin K inhibitor by modification of the P2 and P3 moieties. The pyrrolopyrimidine-based inhibitors show nanomolar inhibition of cathepsin S with over 100-fold selectivity against other cysteine proteases, including cathepsin K and L. Some of the inhibitors showed cellular activities in mouse splenocytes as well as oral bioavailabilities in rats.


eLife | 2015

A distinct p53 target gene set predicts for response to the selective p53–HDM2 inhibitor NVP-CGM097

Sébastien Jeay; Swann Gaulis; Stephane Ferretti; Hans Bitter; Moriko Ito; Thérèse Valat; Masato Murakami; Stephan Ruetz; Daniel Guthy; Caroline Rynn; Michael Rugaard Jensen; Marion Wiesmann; Joerg Kallen; Pascal Furet; François Gessier; Philipp Holzer; Keiichi Masuya; Jens Würthner; Ensar Halilovic; Francesco Hofmann; William R. Sellers; Diana Graus Porta

Biomarkers for patient selection are essential for the successful and rapid development of emerging targeted anti-cancer therapeutics. In this study, we report the discovery of a novel patient selection strategy for the p53–HDM2 inhibitor NVP-CGM097, currently under evaluation in clinical trials. By intersecting high-throughput cell line sensitivity data with genomic data, we have identified a gene expression signature consisting of 13 up-regulated genes that predicts for sensitivity to NVP-CGM097 in both cell lines and in patient-derived tumor xenograft models. Interestingly, these 13 genes are known p53 downstream target genes, suggesting that the identified gene signature reflects the presence of at least a partially activated p53 pathway in NVP-CGM097-sensitive tumors. Together, our findings provide evidence for the use of this newly identified predictive gene signature to refine the selection of patients with wild-type p53 tumors and increase the likelihood of response to treatment with p53–HDM2 inhibitors, such as NVP-CGM097. DOI: http://dx.doi.org/10.7554/eLife.06498.001


Bioorganic & Medicinal Chemistry Letters | 2008

Overcoming hERG issues for brain-penetrating cathepsin S inhibitors: 2-cyanopyrimidines. Part 2.

Osamu Irie; Takatoshi Kosaka; Masashi Kishida; Junichi Sakaki; Keiichi Masuya; Kazuhide Konishi; Fumiaki Yokokawa; Takeru Ehara; Atsuko Iwasaki; Yuki Iwaki; Yuko Hitomi; Atsushi Toyao; Hiroki Gunji; Naoki Teno; Genji Iwasaki; Hajime Hirao; Takanori Kanazawa; Keiko Tanabe; Peter Hiestand; Marzia Malcangio; Alyson Fox; Stuart Bevan; Mohammed Yaqoob; Andrew James Culshaw; Terance Hart; Allan Hallett

We describe here orally active and brain-penetrant cathepsin S selective inhibitors, which are virtually devoid of hERG K(+) channel affinity, yet exhibit nanomolar potency against cathepsin S and over 100-fold selectivity to cathepsin L. The new non-peptidic inhibitors are based on a 2-cyanopyrimidine scaffold bearing a spiro[3.5]non-6-yl-methyl amine at the 4-position. The brain-penetrating cathepsin S inhibitors demonstrate potential clinical utility for the treatment of multiple sclerosis and neuropathic pain.


Bioorganic & Medicinal Chemistry Letters | 2015

Discovery of dihydroisoquinolinone derivatives as novel inhibitors of the p53-MDM2 interaction with a distinct binding mode.

François Gessier; Joerg Kallen; Edgar Jacoby; Patrick Chène; Thérèse Stachyra-Valat; Stephan Ruetz; Sébastien Jeay; Philipp Holzer; Keiichi Masuya; Pascal Furet

Blocking the interaction between the p53 tumor suppressor and its regulatory protein MDM2 is a promising therapeutic concept under current investigation in oncology drug research. We report here the discovery of the first representatives of a new class of small molecule inhibitors of this protein-protein interaction: the dihydroisoquinolinones. Starting from an initial hit identified by virtual screening, a derivatization program has resulted in compound 11, a low nanomolar inhibitor of the p53-MDM2 interaction showing significant cellular activity. Initially based on a binding mode hypothesis, this effort was then guided by a X-ray co-crystal structure of MDM2 in complex with one of the synthesized analogs. The X-ray structure revealed an unprecedented binding mode for p53-MDM2 inhibitors.


Methods of Molecular Biology | 2009

Knowledge-based virtual screening: application to the MDM4/p53 protein-protein interaction.

Edgar Jacoby; Andreas Boettcher; Lorenz M. Mayr; Nathan Brown; Jeremy L. Jenkins; Joerg Kallen; Caroline Engeloch; Ulrich Schopfer; Pascal Furet; Keiichi Masuya; Joanna Lisztwan

Chemogenomics knowledge-based drug discovery approaches aim to extract the knowledge gained from one target and to apply it for the discovery of ligands and hopefully drugs of a new target which is related to the parent target by homology or conserved molecular recognition. Herein, we demonstrate the potential of knowledge-based virtual screening by applying it to the MDM4-p53 protein-protein interaction where the MDM2-p53 protein-protein interaction constitutes the parent reference system; both systems are potentially relevant to cancer therapy. We show that a combination of virtual screening methods, including homology based similarity searching, QSAR (Quantitative Structure-Activity Relationship) methods, HTD (High Throughput Docking), and UNITY pharmacophore searching provide a successful approach to the discovery of inhibitors. The virtual screening hit list is of the magnitude of 50,000 compounds picked from the corporate compound library of approximately 1.2 million compounds. Emphasis is placed on the facts that such campaigns are only feasible because of the now existing HTCP (High throughput Cherry-Picking) automation systems in combination with robust MTS (Medium Throughput Screening) fluorescence-based assays. Given that the MDM2-p53 system constitutes the reference system, it is not surprising that significantly more and stronger hits are found for this interaction compared to the MDM4-p53 system. Novel, selective and dual hits are discovered for both systems. A hit rate analysis will be provided compared to the full HTS (High-throughput Screening).


Journal of Medicinal Chemistry | 2008

Effect of Cathepsin K Inhibitors on Bone Resorption

Naoki Teno; Keiichi Masuya; Takeru Ehara; Takatoshi Kosaka; Takahiro Miyake; Osamu Irie; Yuko Hitomi; Naoko Matsuura; Ichiro Umemura; Genji Iwasaki; Hiroaki Fukaya; Kazuhiro Toriyama; Noriko Uchiyama; Kazuhiko Nonomura; Ikuo Sugiyama; Motohiko Kometani

On the basis of the pyrrolopyrimidine core structure that was previously discovered, cathepsin K inhibitors having a spiro amine at the P3 have been explored to enhance the target, bone marrow, tissue distribution. Several spiro structures were identified with improved distribution toward bone marrow. The representative inhibitor 7 of this series revealed in vivo reduction in C-terminal telopeptide of type I collagen in rats and monkeys.


Bioorganic & Medicinal Chemistry Letters | 2016

Discovery of a novel class of highly potent inhibitors of the p53-MDM2 interaction by structure-based design starting from a conformational argument.

Pascal Furet; Keiichi Masuya; Joerg Kallen; Thérèse Stachyra-Valat; Stephan Ruetz; Vito Guagnano; Philipp Holzer; Robert Mah; Stefan Stutz; Andrea Vaupel; Patrick Chène; Sébastien Jeay; Achim Schlapbach

The p53-MDM2 interaction is an anticancer drug target under investigation in the clinic. Our compound NVP-CGM097 is one of the small molecule inhibitors of this protein-protein interaction currently evaluated in cancer patients. As part of our effort to identify new classes of p53-MDM2 inhibitors that could lead to additional clinical candidates, we report here the design of highly potent inhibitors having a pyrazolopyrrolidinone core structure. The conception of these new inhibitors originated in a consideration on the MDM2 bound conformation of the dihydroisoquinolinone class of inhibitors to which NVP-CGM097 belongs. This work forms the foundation of the discovery of HDM201, a second generation p53-MDM2 inhibitor that recently entered phase I clinical trial.

Collaboration


Dive into the Keiichi Masuya's collaboration.

Researchain Logo
Decentralizing Knowledge