María Santos Martínez
GlaxoSmithKline
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Featured researches published by María Santos Martínez.
Nature | 2010
W. Armand Guiguemde; Anang A. Shelat; David Bouck; Sandra Duffy; Gregory J. Crowther; Paul H. Davis; David C. Smithson; Michele C. Connelly; Julie Clark; Fangyi Zhu; María Belén Jiménez-Díaz; María Santos Martínez; Emily B. Wilson; Abhai K. Tripathi; Jiri Gut; Elizabeth R. Sharlow; Ian Bathurst; Farah El Mazouni; Joseph W. Fowble; Isaac P. Forquer; Paula L. McGinley; Steve Castro; Iñigo Angulo-Barturen; Santiago Ferrer; Philip J. Rosenthal; Joseph L. DeRisi; David J. Sullivan; John S. Lazo; David S. Roos; Michael K. Riscoe
Malaria caused by Plasmodium falciparum is a disease that is responsible for 880,000 deaths per year worldwide. Vaccine development has proved difficult and resistance has emerged for most antimalarial drugs. To discover new antimalarial chemotypes, we have used a phenotypic forward chemical genetic approach to assay 309,474 chemicals. Here we disclose structures and biological activity of the entire library—many of which showed potent in vitro activity against drug-resistant P. falciparum strains—and detailed profiling of 172 representative candidates. A reverse chemical genetic study identified 19 new inhibitors of 4 validated drug targets and 15 novel binders among 61 malarial proteins. Phylochemogenetic profiling in several organisms revealed similarities between Toxoplasma gondii and mammalian cell lines and dissimilarities between P. falciparum and related protozoans. One exemplar compound displayed efficacy in a murine model. Our findings provide the scientific community with new starting points for malaria drug discovery.
Nature | 2015
Beatriz Baragaña; Irene Hallyburton; Marcus C. S. Lee; Neil R. Norcross; Raffaella Grimaldi; Thomas D. Otto; William R. Proto; Andrew M. Blagborough; Stephan Meister; Grennady Wirjanata; Andrea Ruecker; Leanna M. Upton; Tara S. Abraham; Mariana Justino de Almeida; Anupam Pradhan; Achim Porzelle; María Santos Martínez; Judith M. Bolscher; Andrew Woodland; Suzanne Norval; Fabio Zuccotto; John Thomas; Frederick R. C. Simeons; Laste Stojanovski; Maria Osuna-Cabello; Patrick M. Brock; Thomas S. Churcher; Katarzyna A. Sala; Sara E. Zakutansky; María Belén Jiménez-Díaz
There is an urgent need for new drugs to treat malaria, with broad therapeutic potential and novel modes of action, to widen the scope of treatment and to overcome emerging drug resistance. Here we describe the discovery of DDD107498, a compound with a potent and novel spectrum of antimalarial activity against multiple life-cycle stages of the Plasmodium parasite, with good pharmacokinetic properties and an acceptable safety profile. DDD107498 demonstrates potential to address a variety of clinical needs, including single-dose treatment, transmission blocking and chemoprotection. DDD107498 was developed from a screening programme against blood-stage malaria parasites; its molecular target has been identified as translation elongation factor 2 (eEF2), which is responsible for the GTP-dependent translocation of the ribosome along messenger RNA, and is essential for protein synthesis. This discovery of eEF2 as a viable antimalarial drug target opens up new possibilities for drug discovery.
Science Translational Medicine | 2015
Margaret A. Phillips; Julie Lotharius; Kennan Marsh; John White; Anthony Dayan; Karen L. White; Jacqueline W. Njoroge; Farah El Mazouni; Yanbin Lao; Sreekanth Kokkonda; Diana R. Tomchick; Xiaoyi Deng; Trevor Laird; Sangeeta N. Bhatia; Sandra March; Caroline L. Ng; David A. Fidock; Sergio Wittlin; Maria J. Lafuente-Monasterio; Francisco Javier Gamo–Benito; Laura Maria Sanz Alonso; María Santos Martínez; María Belén Jiménez-Díaz; Santiago Ferrer Bazaga; Iñigo Angulo-Barturen; John N. Haselden; James Louttit; Yi Cui; Arun Sridhar; Anna Marie Zeeman
The antimalarial drug DSM265 displays activity against blood and liver stages of Plasmodium falciparum and has a long predicted half-life in humans. Long-acting new treatment for drug-resistant malaria Malaria kills 0.6 million people annually, yet current malaria drugs are no longer fully effective because the parasite that causes malaria is becoming resistant to these agents. Phillips et al. have identified a new drug that kills both drug-sensitive and drug-resistant malaria parasites by targeting the ability of the parasite to synthesize the nucleotide precursors required for synthesis of DNA and RNA. This drug kills parasites in both the blood and liver and is sufficiently long-acting that it is expected to cure malaria after a single dose or to be effective if dosed weekly for chemoprevention. Malaria is one of the most significant causes of childhood mortality, but disease control efforts are threatened by resistance of the Plasmodium parasite to current therapies. Continued progress in combating malaria requires development of new, easy to administer drug combinations with broad-ranging activity against all manifestations of the disease. DSM265, a triazolopyrimidine-based inhibitor of the pyrimidine biosynthetic enzyme dihydroorotate dehydrogenase (DHODH), is the first DHODH inhibitor to reach clinical development for treatment of malaria. We describe studies profiling the biological activity, pharmacological and pharmacokinetic properties, and safety of DSM265, which supported its advancement to human trials. DSM265 is highly selective toward DHODH of the malaria parasite Plasmodium, efficacious against both blood and liver stages of P. falciparum, and active against drug-resistant parasite isolates. Favorable pharmacokinetic properties of DSM265 are predicted to provide therapeutic concentrations for more than 8 days after a single oral dose in the range of 200 to 400 mg. DSM265 was well tolerated in repeat-dose and cardiovascular safety studies in mice and dogs, was not mutagenic, and was inactive against panels of human enzymes/receptors. The excellent safety profile, blood- and liver-stage activity, and predicted long half-life in humans position DSM265 as a new potential drug combination partner for either single-dose treatment or once-weekly chemoprevention. DSM265 has advantages over current treatment options that are dosed daily or are inactive against the parasite liver stage.
Proceedings of the National Academy of Sciences of the United States of America | 2014
María Belén Jiménez-Díaz; Daniel H. Ebert; Yandira Salinas; Anupam Pradhan; Adele M. Lehane; Marie-Eve Myrand-Lapierre; Kathleen O’Loughlin; David M. Shackleford; Mariana Justino de Almeida; Angela K. Carrillo; Julie Clark; Adelaide S. M. Dennis; Jonathon Diep; Xiaoyan Deng; Sandra Duffy; Aaron N. Endsley; Greg Fedewa; W. Armand Guiguemde; María G. Gómez; Gloria Holbrook; Jeremy A. Horst; Charles C. Kim; Jian Liu; Marcus C. S. Lee; Amy Matheny; María Santos Martínez; Gregory Miller; Ane Rodríguez-Alejandre; Laura Sanz; Martina Sigal
Significance Useful antimalarial drugs must be rapidly acting, highly efficacious, and have low potential for developing resistance. (+)-SJ733 targets a Plasmodium cation-transporting ATPase, ATP4. (+)-SJ733 cleared parasites in vivo as quickly as artesunate by specifically inducing eryptosis/senescence in infected, treated erythrocytes. Although in vitro selection of pfatp4 mutants with (+)-SJ733 proceeded with moderate frequency, during in vivo selection of pbatp4 mutants, resistance emerged slowly and produced marginally resistant mutants with poor fitness. In addition, (+)-SJ733 met all other criteria for a clinical candidate, including high oral bioavailability, a high safety margin, and transmission blocking activity. These results demonstrate that targeting ATP4 has great potential to deliver useful drugs for malaria eradication. Drug discovery for malaria has been transformed in the last 5 years by the discovery of many new lead compounds identified by phenotypic screening. The process of developing these compounds as drug leads and studying the cellular responses they induce is revealing new targets that regulate key processes in the Plasmodium parasites that cause malaria. We disclose herein that the clinical candidate (+)-SJ733 acts upon one of these targets, ATP4. ATP4 is thought to be a cation-transporting ATPase responsible for maintaining low intracellular Na+ levels in the parasite. Treatment of parasitized erythrocytes with (+)-SJ733 in vitro caused a rapid perturbation of Na+ homeostasis in the parasite. This perturbation was followed by profound physical changes in the infected cells, including increased membrane rigidity and externalization of phosphatidylserine, consistent with eryptosis (erythrocyte suicide) or senescence. These changes are proposed to underpin the rapid (+)-SJ733-induced clearance of parasites seen in vivo. Plasmodium falciparum ATPase 4 (pfatp4) mutations that confer resistance to (+)-SJ733 carry a high fitness cost. The speed with which (+)-SJ733 kills parasites and the high fitness cost associated with resistance-conferring mutations appear to slow and suppress the selection of highly drug-resistant mutants in vivo. Together, our data suggest that inhibitors of PfATP4 have highly attractive features for fast-acting antimalarials to be used in the global eradication campaign.
Nature Communications | 2014
Akhil B. Vaidya; Joanne M. Morrisey; Zhongsheng Zhang; Sudipta Das; Thomas M. Daly; Thomas D. Otto; Natalie J. Spillman; Matthew Wyvratt; Peter Siegl; Jutta Marfurt; Grennady Wirjanata; Boni F. Sebayang; Ric N. Price; Arnab K. Chatterjee; Advait Nagle; Marcin Stasiak; Susan A. Charman; Iñigo Angulo-Barturen; Santiago Ferrer; María Belén Jiménez-Díaz; María Santos Martínez; Francisco Javier Gamo; Vicky M. Avery; Andrea Ruecker; Michael J. Delves; Kiaran Kirk; Matthew Berriman; Jeremy N. Burrows; Erkang Fan; Lawrence W. Bergman
The quest for new antimalarial drugs, especially those with novel modes of action, is essential in the face of emerging drug-resistant parasites. Here we describe a new chemical class of molecules, pyrazoleamides, with potent activity against human malaria parasites and showing remarkably rapid parasite clearance in an in vivo model. Investigations involving pyrazoleamide-resistant parasites, whole-genome sequencing and gene transfers reveal that mutations in two proteins, a calcium-dependent protein kinase (PfCDPK5) and a P-type cation-ATPase (PfATP4), are necessary to impart full resistance to these compounds. A pyrazoleamide compound causes a rapid disruption of Na+ regulation in blood-stage Plasmodium falciparum parasites. Similar effect on Na+ homeostasis was recently reported for spiroindolones, which are antimalarials of a chemical class quite distinct from pyrazoleamides. Our results reveal that disruption of Na+ homeostasis in malaria parasites is a promising mode of antimalarial action mediated by at least two distinct chemical classes.
Science Translational Medicine | 2017
Tanya Paquet; Claire Le Manach; Diego Gonzàlez Cabrera; Yassir Younis; Philipp P. Henrich; Tara S. Abraham; Marcus C. S. Lee; Rajshekhar Basak; Sonja Ghidelli-Disse; Maria Jose Lafuente-Monasterio; Marcus Bantscheff; Andrea Ruecker; Andrew M. Blagborough; Sara E. Zakutansky; Anne-Marie Zeeman; Karen L. White; David M. Shackleford; Janne Mannila; Julia Morizzi; Christian Scheurer; Iñigo Angulo-Barturen; María Santos Martínez; Santiago Ferrer; Laura Sanz; Francisco Javier Gamo; Janette Reader; Mariette Botha; Koen J. Dechering; Robert W. Sauerwein; Anchalee Tungtaeng
MMV390048, a member of a new class of inhibitors of the Plasmodium phosphatidylinositol 4-kinase, shows potential for both treatment and prophylaxis. A new antimalarial in the armamentarium Paquet et al. screened a small-molecule library against the human malaria parasite, Plasmodium falciparum, and identified the 2-aminopyridine chemical class with potent activity. The optimized compound from this class, MMV390048, was active against multiple parasite life cycle stages, in both the mammalian host and the mosquito vector, and also killed drug-resistant parasites. MMV390048 killed the malaria parasite by blocking the parasite’s phosphatidylinositol 4-kinase (PI4K) and was able to protect monkeys from malaria infection. MMV390048 has potential as a new antimalarial drug that may contribute to global malaria eradication efforts. As part of the global effort toward malaria eradication, phenotypic whole-cell screening revealed the 2-aminopyridine class of small molecules as a good starting point to develop new antimalarial drugs. Stemming from this series, we found that the derivative, MMV390048, lacked cross-resistance with current drugs used to treat malaria. This compound was efficacious against all Plasmodium life cycle stages, apart from late hypnozoites in the liver. Efficacy was shown in the humanized Plasmodium falciparum mouse model, and modest reductions in mouse-to-mouse transmission were achieved in the Plasmodium berghei mouse model. Experiments in monkeys revealed the ability of MMV390048 to be used for full chemoprotection. Although MMV390048 was not able to eliminate liver hypnozoites, it delayed relapse in a Plasmodium cynomolgi monkey model. Both genomic and chemoproteomic studies identified a kinase of the Plasmodium parasite, phosphatidylinositol 4-kinase, as the molecular target of MMV390048. The ability of MMV390048 to block all life cycle stages of the malaria parasite suggests that this compound should be further developed and may contribute to malaria control and eradication as part of a single-dose combination treatment.
Antimicrobial Agents and Chemotherapy | 2011
Laura Sanz; M. Belén Jiménez-Díaz; Benigno Crespo; Cristina De-Cózar; M. Jesus Almela; Iñigo Angulo-Barturen; Pablo Castañeda; Javier Ibáñez; Esther Fernández; Santiago Ferrer; Esperanza Herreros; Sonia Lozano; María Santos Martínez; Lourdes Rueda; Jeremy N. Burrows; Jose Garcia-Bustos; Francisco-Javier Gamo
ABSTRACT Malaria is one of the deadliest infectious diseases in the world, with the eukaryotic parasite Plasmodium falciparum causing the most severe form of the disease. Discovery of new classes of antimalarial drugs has become an urgent task to counteract the increasing problem of drug resistance. Screening directly for compounds able to inhibit parasite growth in vitro is one of the main approaches the malaria research community is now pursuing for the identification of novel antimalarial drug leads. Very recently, thousands of compounds with potent activity against the parasite P. falciparum have been identified and information about their molecular descriptors, antiplasmodial potency, and cytotoxicity is publicly available. Now the challenges are how to identify the most promising chemotypes for further development and how best to progress these compounds through a lead optimization program to generate antimalarial drug candidates. We report here the first chemical series to be characterized from one of those screenings, a completely novel chemical class with the generic name cyclopropyl carboxamides that has never before been described as having antimalarial or other pharmacological activities. Cyclopropyl carboxamides are potent inhibitors of drug-sensitive and -resistant strains of P. falciparum in vitro and show in vivo oral efficacy in malaria mouse models. In the present work, we describe the biological characterization of this chemical family, showing that inhibition of their still unknown target has very favorable pharmacological consequences but the compounds themselves seem to select for resistance at a high frequency.
ACS Medicinal Chemistry Letters | 2011
Lourdes Rueda; Isabel Castellote; Julia Castro-Pichel; María J. Chaparro; Juan C. de la Rosa; Adolfo García-Pérez; Mariola Gordo; María Belén Jiménez-Díaz; Albane Kessler; Simon J. F. Macdonald; María Santos Martínez; Laura Sanz; Francisco Javier Gamo; Esther Fernández
Rapid triaging of three series of related hits selected from the Tres Cantos Anti-Malarial Set (TCAMS) are described. A triazolopyrimidine series was deprioritized due to delayed inhibition of parasite growth. A lactic acid series has derivatives with IC50 < 500 nM in a standard Plasmodium falciparum in vitro whole cell assay (Pf assay) but shows half-lives of < 30 min in both human and murine microsomes. Compound 19, from a series of cyclopropyl carboxamides, is a highly potent in vitro inhibitor of P. falciparum (IC50 = 3 nM) and has an oral bioavailability of 55% in CD-1 mice and an ED90 of 20 mg/kg after oral dosing in a nonmyelo-depleted P. falciparum murine model.
Journal of Medicinal Chemistry | 2014
P Shahul Hameed; Abhishek Srivastava; Gajanan Shanbhag; Sapna Morayya; Nikhil Rautela; Disha Awasthy; Stefan Kavanagh; Jitendar Reddy; K. R. Prabhakar; Ramanatha Saralaya; Robert Nanduri; Anandkumar Raichurkar; Sreenivasaiah Menasinakai; Vijayashree Achar; María Belén Jiménez-Díaz; María Santos Martínez; Iñigo Angulo-Barturen; Santiago Ferrer; Laura Sanz; Francisco Javier Gamo; Sandra Duffy; Vicky M. Avery; David Waterson; Marcus C. S. Lee; Olivia Coburn-Flynn; David A. Fidock; Pravin S. Iyer; Shridhar Narayanan; Vinayak Hosagrahara; Vasan K. Sambandamurthy
From the phenotypic screening of the AstraZeneca corporate compound collection, N-aryl-2-aminobenzimidazoles have emerged as novel hits against the asexual blood stage of Plasmodium falciparum (Pf). Medicinal chemistry optimization of the potency against Pf and ADME properties resulted in the identification of 12 as a lead molecule. Compound 12 was efficacious in the P. berghei (Pb) model of malaria. This compound displayed an excellent pharmacokinetic profile with a long half-life (19 h) in rat blood. This profile led to an extended survival of animals for over 30 days following a dose of 50 mg/kg in the Pb malaria model. Compound 12 retains its potency against a panel of Pf isolates with known mechanisms of resistance. The fast killing observed in the in vitro parasite reduction ratio (PRR) assay coupled with the extended survival highlights the promise of this novel chemical class for the treatment of malaria.
PLOS Medicine | 2016
Amélie Le Bihan; Ruben de Kanter; Iñigo Angulo-Barturen; Christoph Binkert; Christoph Boss; Reto Brun; Ralf Brunner; Stephan Buchmann; Jeremy N. Burrows; Koen J. Dechering; Michael J. Delves; Sonja Ewerling; Santiago Ferrer; Christoph Fischli; Francisco Javier Gamo–Benito; Nina F. Gnädig; Bibia Heidmann; María Belén Jiménez-Díaz; Didier Leroy; María Santos Martínez; Solange Meyer; Joerg J. Moehrle; Caroline L. Ng; Rintis Noviyanti; Andrea Ruecker; Laura Sanz; Robert W. Sauerwein; Christian Scheurer; Sarah Schleiferboeck; Robert E. Sinden
Background Artemisinin resistance observed in Southeast Asia threatens the continued use of artemisinin-based combination therapy in endemic countries. Additionally, the diversity of chemical mode of action in the global portfolio of marketed antimalarials is extremely limited. Addressing the urgent need for the development of new antimalarials, a chemical class of potent antimalarial compounds with a novel mode of action was recently identified. Herein, the preclinical characterization of one of these compounds, ACT-451840, conducted in partnership with academic and industrial groups is presented. Method and Findings The properties of ACT-451840 are described, including its spectrum of activities against multiple life cycle stages of the human malaria parasite Plasmodium falciparum (asexual and sexual) and Plasmodium vivax (asexual) as well as oral in vivo efficacies in two murine malaria models that permit infection with the human and the rodent parasites P. falciparum and Plasmodium berghei, respectively. In vitro, ACT-451840 showed a 50% inhibition concentration of 0.4 nM (standard deviation [SD]: ± 0.0 nM) against the drug-sensitive P. falciparum NF54 strain. The 90% effective doses in the in vivo efficacy models were 3.7 mg/kg against P. falciparum (95% confidence interval: 3.3–4.9 mg/kg) and 13 mg/kg against P. berghei (95% confidence interval: 11–16 mg/kg). ACT-451840 potently prevented male gamete formation from the gametocyte stage with a 50% inhibition concentration of 5.89 nM (SD: ± 1.80 nM) and dose-dependently blocked oocyst development in the mosquito with a 50% inhibitory concentration of 30 nM (range: 23–39). The compound’s preclinical safety profile is presented and is in line with the published results of the first-in-man study in healthy male participants, in whom ACT-451840 was well tolerated. Pharmacokinetic/pharmacodynamic (PK/PD) modeling was applied using efficacy in the murine models (defined either as antimalarial activity or as survival) in relation to area under the concentration versus time curve (AUC), maximum observed plasma concentration (Cmax), and time above a threshold concentration. The determination of the dose–efficacy relationship of ACT-451840 under curative conditions in rodent malaria models allowed prediction of the human efficacious exposure. Conclusion The dual activity of ACT-451840 against asexual and sexual stages of P. falciparum and the activity on P. vivax have the potential to meet the specific profile of a target compound that could replace the fast-acting artemisinin component and harbor additional gametocytocidal activity and, thereby, transmission-blocking properties. The fast parasite reduction ratio (PRR) and gametocytocidal effect of ACT-451840 were recently also confirmed in a clinical proof-of-concept (POC) study.