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Dive into the research topics where María Belén Jiménez-Díaz is active.

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Featured researches published by María Belén Jiménez-Díaz.


Nature | 2010

Chemical genetics of Plasmodium falciparum

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.


Science Translational Medicine | 2013

Quinolone-3-Diarylethers: A New Class of Antimalarial Drug

Aaron Nilsen; Alexis N. LaCrue; Karen L. White; Isaac P. Forquer; R. Matthew Cross; Jutta Marfurt; Michael W. Mather; Michael J. Delves; David M. Shackleford; Fabián E. Sáenz; Joanne M. Morrisey; Jessica Steuten; Tina Mutka; Yuexin Li; Grennady Wirjanata; Eileen Ryan; Sandra Duffy; Jane Xu Kelly; Boni F. Sebayang; Anne-Marie Zeeman; Rintis Noviyanti; Robert E. Sinden; Clemens H. M. Kocken; Ric N. Price; Vicky M. Avery; Iñigo Angulo-Barturen; María Belén Jiménez-Díaz; Santiago Ferrer; Esperanza Herreros; Laura Sanz

ELQ-300, an investigational drug for treating and preventing malaria, shows potent transmission-blocking activity in rodent models of malaria. Taking the Bite Out of Malaria Malaria is spread from person to person by mosquitoes that inject 8 to 10 sporozoite forms of the parasite in a single bite. The sporozoites reproduce in the liver to produce 10,000 to 30,000 merozoites before the liver schizont ruptures and parasites flood into the bloodstream where the absolute parasite burden may increase to a thousand billion (1012) circulating parasites. Some of these parasites develop into gametocytes that may be ingested by another mosquito where they progress through ookinete, oocyst, and sporozoite stages to complete the cycle. Like quinine, most antimalarial drugs in use today target only the symptomatic blood stage. The efficacy of these drugs has been compromised by resistance, and so there is a pressing need for new drugs that target multiple stages of the parasite life cycle for use in malaria treatment and prevention. Clearly, it is advantageous to strike at the liver stage where parasite numbers are low, to diminish the likelihood of selecting for a resistant mutant and before the infection has a chance to weaken the defenses of the human host. In a new study, Nilsen and colleagues describe ELQ-300, a 4(1H)-quinolone-3-diarylether, which targets the liver and blood stages, including the forms that are crucial to disease transmission (gametocytes, zygotes, and ookinetes). In mouse models of malaria, a single oral dose of 0.03 mg/kg prevented sporozoite-induced infections, whereas four daily doses of 1 mg/kg achieved complete cures of patent infections. ELQ-300 is a preclinical candidate that may be coformulated with other antimalarials to prevent and treat malaria, with the potential to aid in eradication of the disease. The goal for developing new antimalarial drugs is to find a molecule that can target multiple stages of the parasite’s life cycle, thus impacting prevention, treatment, and transmission of the disease. The 4(1H)-quinolone-3-diarylethers are selective potent inhibitors of the parasite’s mitochondrial cytochrome bc1 complex. These compounds are highly active against the human malaria parasites Plasmodium falciparum and Plasmodium vivax. They target both the liver and blood stages of the parasite as well as the forms that are crucial for disease transmission, that is, the gametocytes, the zygote, the ookinete, and the oocyst. Selected as a preclinical candidate, ELQ-300 has good oral bioavailability at efficacious doses in mice, is metabolically stable, and is highly active in blocking transmission in rodent models of malaria. Given its predicted low dose in patients and its predicted long half-life, ELQ-300 has potential as a new drug for the treatment, prevention, and, ultimately, eradication of human malaria.


Journal of Medicinal Chemistry | 2011

Structure-guided lead optimization of triazolopyrimidine-ring substituents identifies potent Plasmodium falciparum dihydroorotate dehydrogenase inhibitors with clinical candidate potential

José M. Coterón; Maria Marco; Jorge Esquivias; Xiaoyi Deng; Karen L. White; John White; Maria Koltun; Farah El Mazouni; Sreekanth Kokkonda; Kasiram Katneni; Ravi K. Bhamidipati; David M. Shackleford; Iñigo Angulo-Barturen; Santiago Ferrer; María Belén Jiménez-Díaz; Francisco Javier Gamo; Elizabeth J. Goldsmith; William N. Charman; Ian Bathurst; David M. Floyd; David Matthews; Jeremy N. Burrows; Pradipsinh K. Rathod; Susan A. Charman; Margaret A. Phillips

Drug therapy is the mainstay of antimalarial therapy, yet current drugs are threatened by the development of resistance. In an effort to identify new potential antimalarials, we have undertaken a lead optimization program around our previously identified triazolopyrimidine-based series of Plasmodium falciparum dihydroorotate dehydrogenase (PfDHODH) inhibitors. The X-ray structure of PfDHODH was used to inform the medicinal chemistry program allowing the identification of a potent and selective inhibitor (DSM265) that acts through DHODH inhibition to kill both sensitive and drug resistant strains of the parasite. This compound has similar potency to chloroquine in the humanized SCID mouse P. falciparum model, can be synthesized by a simple route, and rodent pharmacokinetic studies demonstrated it has excellent oral bioavailability, a long half-life and low clearance. These studies have identified the first candidate in the triazolopyrimidine series to meet previously established progression criteria for efficacy and ADME properties, justifying further development of this compound toward clinical candidate status.


Nature | 2015

A novel multiple-stage antimalarial agent that inhibits protein synthesis

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.


Antimicrobial Agents and Chemotherapy | 2009

Improved Murine Model of Malaria Using Plasmodium falciparum Competent Strains and Non-Myelodepleted NOD-scid IL2Rγnull Mice Engrafted with Human Erythrocytes

María Belén Jiménez-Díaz; Teresa Mulet; Sara Viera; Vanessa Gómez; Helen Garuti; Javier Ibáñez; Angela Alvarez-Doval; Leonard D. Shultz; Antonio Martínez; Domingo Gargallo-Viola; Iñigo Angulo-Barturen

ABSTRACT Murine models of Plasmodium falciparum malaria may become crucial tools in drug discovery. Here we show that non-myelodepleted NOD-scid IL2Rγnull mice engrafted with human erythrocytes support an infectious burden up to tenfold higher than that supported by engrafted NOD-scid β2microglobulinnull mice. The new model was validated for drug discovery and was used to assess the therapeutic efficacy of 4-pyridones, selective inhibitors of P. falciparum cytochrome bc1.


Science Translational Medicine | 2015

A long-duration dihydroorotate dehydrogenase inhibitor (DSM265) for prevention and treatment of malaria

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.


PLOS ONE | 2008

A murine model of falciparum-malaria by in vivo selection of competent strains in non-myelodepleted mice engrafted with human erythrocytes.

Iñigo Angulo-Barturen; María Belén Jiménez-Díaz; Teresa Mulet; Joaquín Rullas; Esperanza Herreros; Santiago Ferrer; Elena Jimenez; Alfonso Mendoza; Javier Regadera; Philip J. Rosenthal; Ian Bathurst; David L. Pompliano; Federico Gómez de las Heras; Domingo Gargallo-Viola

To counter the global threat caused by Plasmodium falciparum malaria, new drugs and vaccines are urgently needed. However, there are no practical animal models because P. falciparum infects human erythrocytes almost exclusively. Here we describe a reliable falciparum murine model of malaria by generating strains of P. falciparum in vivo that can infect immunodeficient mice engrafted with human erythrocytes. We infected NODscid/β2m−/− mice engrafted with human erythrocytes with P. falciparum obtained from in vitro cultures. After apparent clearance, we obtained isolates of P. falciparum able to grow in peripheral blood of engrafted NODscid/β2m−/− mice. Of the isolates obtained, we expanded in vivo and established the isolate Pf3D70087/N9 as a reference strain for model development. Pf3D70087/N9 caused productive persistent infections in 100% of engrafted mice infected intravenously. The infection caused a relative anemia due to selective elimination of human erythrocytes by a mechanism dependent on parasite density in peripheral blood. Using this model, we implemented and validated a reproducible assay of antimalarial activity useful for drug discovery. Thus, our results demonstrate that P. falciparum contains clones able to grow reproducibly in mice engrafted with human erythrocytes without the use of myeloablative methods.


Proceedings of the National Academy of Sciences of the United States of America | 2014

(+)-SJ733, a clinical candidate for malaria that acts through ATP4 to induce rapid host-mediated clearance of Plasmodium

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.


Journal of Biological Chemistry | 2010

Novel Inhibitors of Plasmodium falciparum Dihydroorotate Dehydrogenase with Anti-malarial Activity in the Mouse Model

Michael Booker; Cecilia M. Bastos; Martin Kramer; Robert Barker; Renato Skerlj; Amar Bir Singh Sidhu; Xiaoyi Deng; Cassandra Celatka; Joseph F. Cortese; Jose E. Guerrero Bravo; Keila N. Crespo Llado; Adelfa E. Serrano; Iñigo Angulo-Barturen; María Belén Jiménez-Díaz; Sara Viera; Helen Garuti; Sergio Wittlin; Petros Papastogiannidis; Jing-wen Lin; Chris J. Janse; Shahid M. Khan; Manoj T. Duraisingh; Bradley I. Coleman; Elizabeth J. Goldsmith; Margaret A. Phillips; Benito Munoz; Dyann F. Wirth; Jeffrey D. Klinger; Roger Wiegand; Edmund Sybertz

Plasmodium falciparum, the causative agent of the most deadly form of human malaria, is unable to salvage pyrimidines and must rely on de novo biosynthesis for survival. Dihydroorotate dehydrogenase (DHODH) catalyzes the rate-limiting step in the pyrimidine biosynthetic pathway and represents a potential target for anti-malarial therapy. A high throughput screen and subsequent medicinal chemistry program identified a series of N-alkyl-5-(1H-benzimidazol-1-yl)thiophene-2-carboxamides with low nanomolar in vitro potency against DHODH from P. falciparum, P. vivax, and P. berghei. The compounds were selective for the parasite enzymes over human DHODH, and x-ray structural data on the analog Genz-667348, demonstrated that species selectivity could be attributed to amino acid differences in the inhibitor-binding site. Compounds from this series demonstrated in vitro potency against the 3D7 and Dd2 strains of P. falciparum, good tolerability and oral exposure in the mouse, and ED50 values in the 4-day murine P. berghei efficacy model of 13–21 mg/kg/day with oral twice-daily dosing. In particular, treatment with Genz-667348 at 100 mg/kg/day resulted in sterile cure. Two recent analogs of Genz-667348 are currently undergoing pilot toxicity testing to determine suitability as clinical development candidates.


Nature Communications | 2014

Pyrazoleamide compounds are potent antimalarials that target Na+ homeostasis in intraerythrocytic Plasmodium falciparum

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.

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Sergio Wittlin

Swiss Tropical and Public Health Institute

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