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Dive into the research topics where Christina Scherer is active.

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Featured researches published by Christina Scherer.


Cell | 2012

Identification of Regulators of Polyploidization Presents Therapeutic Targets for Treatment of AMKL

Qiang Wen; Benjamin Goldenson; Serena J. Silver; Monica Schenone; Vlado Dančík; Zan Huang; Lingzhi Wang; Tim Lewis; W. Frank An; Xiaoyu Li; Mark Anthony Bray; Clarisse Thiollier; Lauren Diebold; Laure Gilles; Martha S. Vokes; Christopher B. Moore; Meghan Bliss-Moreau; Lynn VerPlank; Nicola Tolliday; Rama K. Mishra; Sasidhar Vemula; Jianjian Shi; Lei Wei; Reuben Kapur; Cécile K. Lopez; Bastien Gerby; Paola Ballerini; Françoise Pflumio; D. Gary Gilliland; Liat Goldberg

The mechanism by which cells decide to skip mitosis to become polyploid is largely undefined. Here we used a high-content image-based screen to identify small-molecule probes that induce polyploidization of megakaryocytic leukemia cells and serve as perturbagens to help understand this process. Our study implicates five networks of kinases that regulate the switch to polyploidy. Moreover, we find that dimethylfasudil (diMF, H-1152P) selectively increased polyploidization, mature cell-surface marker expression, and apoptosis of malignant megakaryocytes. An integrated target identification approach employing proteomic and shRNA screening revealed that a major target of diMF is Aurora kinase A (AURKA). We further find that MLN8237 (Alisertib), a selective inhibitor of AURKA, induced polyploidization and expression of mature megakaryocyte markers in acute megakaryocytic leukemia (AMKL) blasts and displayed potent anti-AMKL activity in vivo. Our findings provide a rationale to support clinical trials of MLN8237 and other inducers of polyploidization and differentiation in AMKL.


Proceedings of the National Academy of Sciences of the United States of America | 2012

STK33 kinase inhibitor BRD-8899 has no effect on KRAS-dependent cancer cell viability

Tuoping Luo; Kristina Masson; Jacob D. Jaffe; Whitney Silkworth; Nathan T. Ross; Christina Scherer; Claudia Scholl; Stefan Fröhling; Steven A. Carr; Stuart L. Schreiber; Todd R. Golub

Approximately 30% of human cancers harbor oncogenic gain-of-function mutations in KRAS. Despite interest in KRAS as a therapeutic target, direct blockade of KRAS function with small molecules has yet to be demonstrated. Based on experiments that lower mRNA levels of protein kinases, KRAS-dependent cancer cells were proposed to have a unique requirement for the serine/threonine kinase STK33. Thus, it was suggested that small-molecule inhibitors of STK33 might have therapeutic benefit in these cancers. Here, we describe the development of selective, low nanomolar inhibitors of STK33’s kinase activity. The most potent and selective of these, BRD8899, failed to kill KRAS-dependent cells. While several explanations for this result exist, our data are most consistent with the view that inhibition of STK33’s kinase activity does not represent a promising anti-KRAS therapeutic strategy.


Cell Host & Microbe | 2016

High-Throughput Assay and Discovery of Small Molecules that Interrupt Malaria Transmission

David Plouffe; Melanie Wree; Alan Y. Du; Stephan Meister; Fengwu Li; Kailash P. Patra; Aristea Lubar; Shinji L. Okitsu; Erika L. Flannery; Nobutaka Kato; Olga Tanaseichuk; Eamon Comer; Bin Zhou; Kelli Kuhen; Yingyao Zhou; Didier Leroy; Stuart L. Schreiber; Christina Scherer; Joseph M. Vinetz; Elizabeth A. Winzeler

Summary Preventing transmission is an important element of malaria control. However, most of the current available methods to assay for malaria transmission blocking are relatively low throughput and cannot be applied to large chemical libraries. We have developed a high-throughput and cost-effective assay, the Saponin-lysis Sexual Stage Assay (SaLSSA), for identifying small molecules with transmission-blocking capacity. SaLSSA analysis of 13,983 unique compounds uncovered that >90% of well-characterized antimalarials, including endoperoxides and 4-aminoquinolines, as well as compounds active against asexual blood stages, lost most of their killing activity when parasites developed into metabolically quiescent stage V gametocytes. On the other hand, we identified compounds with consistent low nanomolar transmission-blocking activity, some of which showed cross-reactivity against asexual blood and liver stages. The data clearly emphasize substantial physiological differences between sexual and asexual parasites and provide a tool and starting points for the discovery and development of transmission-blocking drugs.


Nature | 2016

Diversity-oriented synthesis yields novel multistage antimalarial inhibitors

Nobutaka Kato; Eamon Comer; Tomoyo Sakata-Kato; Arvind Sharma; Manmohan Sharma; Micah Maetani; Jessica Bastien; Nicolas M. B. Brancucci; Joshua Bittker; Victoria C. Corey; David C. Clarke; Emily R. Derbyshire; Gillian L. Dornan; Sandra Duffy; Sean Eckley; Maurice A. Itoe; Karin M. J. Koolen; Timothy A. Lewis; Ping S. Lui; Amanda K Lukens; Emily Lund; Sandra March; Elamaran Meibalan; Bennett C. Meier; Jacob A. McPhail; Branko Mitasev; Eli L. Moss; Morgane Sayes; Yvonne Van Gessel; Mathias J. Wawer

Antimalarial drugs have thus far been chiefly derived from two sources—natural products and synthetic drug-like compounds. Here we investigate whether antimalarial agents with novel mechanisms of action could be discovered using a diverse collection of synthetic compounds that have three-dimensional features reminiscent of natural products and are underrepresented in typical screening collections. We report the identification of such compounds with both previously reported and undescribed mechanisms of action, including a series of bicyclic azetidines that inhibit a new antimalarial target, phenylalanyl-tRNA synthetase. These molecules are curative in mice at a single, low dose and show activity against all parasite life stages in multiple in vivo efficacy models. Our findings identify bicyclic azetidines with the potential to both cure and prevent transmission of the disease as well as protect at-risk populations with a single oral dose, highlighting the strength of diversity-oriented synthesis in revealing promising therapeutic targets.


ACS Infectious Diseases | 2016

High-Throughput Luciferase-Based Assay for the Discovery of Therapeutics That Prevent Malaria

Justine Swann; Victoria C. Corey; Christina Scherer; Nobutaka Kato; Eamon Comer; Micah Maetani; Yevgeniya Antonova-Koch; Christin Reimer; Kerstin Gagaring; Maureen Ibanez; David Plouffe; Anne-Marie Zeeman; Clemens H. M. Kocken; Case W. McNamara; Stuart L. Schreiber; Brice Campo; Elizabeth A. Winzeler; Stephan Meister

In order to identify the most attractive starting points for drugs that can be used to prevent malaria, a diverse chemical space comprising tens of thousands to millions of small molecules may need to be examined. Achieving this throughput necessitates the development of efficient ultra-high-throughput screening methods. Here, we report the development and evaluation of a luciferase-based phenotypic screen of malaria exoerythrocytic-stage parasites optimized for a 1536-well format. This assay uses the exoerythrocytic stage of the rodent malaria parasite, Plasmodium berghei, and a human hepatoma cell line. We use this assay to evaluate several biased and unbiased compound libraries, including two small sets of molecules (400 and 89 compounds, respectively) with known activity against malaria erythrocytic-stage parasites and a set of 9886 diversity-oriented synthesis (DOS)-derived compounds. Of the compounds screened, we obtain hit rates of 12–13 and 0.6% in preselected and naïve libraries, respectively, and identify 52 compounds with exoerythrocytic-stage activity less than 1 μM and having minimal host cell toxicity. Our data demonstrate the ability of this method to identify compounds known to have causal prophylactic activity in both human and animal models of malaria, as well as novel compounds, including some exclusively active against parasite exoerythrocytic stages.


The Journal of Infectious Diseases | 2015

Diversity-Oriented Synthesis Probe Targets Plasmodium falciparum Cytochrome b Ubiquinone Reduction Site and Synergizes With Oxidation Site Inhibitors

Amanda K Lukens; Richard Heidebrecht; Carol Mulrooney; Jennifer A. Beaudoin; Eamon Comer; Jeremy R. Duvall; Mark E. Fitzgerald; Daniela Masi; Kevin Galinsky; Christina Scherer; Michelle Palmer; Benito Munoz; Michael Foley; Stuart L. Schreiber; Roger Wiegand; Dyann F. Wirth

Background. The emergence and spread of drug resistance to current antimalarial therapies remains a pressing concern, escalating the need for compounds that demonstrate novel modes of action. Diversity-Oriented Synthesis (DOS) libraries bridge the gap between conventional small molecule and natural product libraries, allowing the interrogation of more diverse chemical space in efforts to identify probes of novel parasite pathways. Methods. We screened and optimized a probe from a DOS library using whole-cell phenotypic assays. Resistance selection and whole-genome sequencing approaches were employed to identify the cellular target of the compounds. Results. We identified a novel macrocyclic inhibitor of Plasmodium falciparum with nanomolar potency and identified the reduction site of cytochrome b as its cellular target. Combination experiments with reduction and oxidation site inhibitors showed synergistic inhibition of the parasite. Conclusions. The cytochrome b oxidation center is a validated antimalarial target. We show that the reduction site of cytochrome b is also a druggable target. Our results demonstrating a synergistic relationship between oxidation and reduction site inhibitors suggests a future strategy for new combination therapies in the treatment of malaria.


Journal of Medicinal Chemistry | 2014

Diversity-Oriented Synthesis-Facilitated Medicinal Chemistry: Toward the Development of Novel Antimalarial Agents

Eamon Comer; Jennifer A. Beaudoin; Nobutaka Kato; Mark E. Fitzgerald; Richard Heidebrecht; Maurice duPont Lee; Daniela Masi; Marion Mercier; Carol Mulrooney; Giovanni Muncipinto; Ann Rowley; Keila N. Crespo-Lladó; Adelfa E. Serrano; Amanda K Lukens; Roger Wiegand; Dyann F. Wirth; Michelle Palmer; Michael Foley; Benito Munoz; Christina Scherer; Jeremy R. Duvall; Stuart L. Schreiber

Here, we describe medicinal chemistry that was accelerated by a diversity-oriented synthesis (DOS) pathway, and in vivo studies of our previously reported macrocyclic antimalarial agent that derived from the synthetic pathway. Structure–activity relationships that focused on both appendage and skeletal features yielded a nanomolar inhibitor of P. falciparum asexual blood-stage growth with improved solubility and microsomal stability and reduced hERG binding. The build/couple/pair (B/C/P) synthetic strategy, used in the preparation of the original screening library, facilitated medicinal chemistry optimization of the antimalarial lead.


PLOS Neglected Tropical Diseases | 2015

Development and Validation of a Novel Leishmania donovani Screening Cascade for High-Throughput Screening Using a Novel Axenic Assay with High Predictivity of Leishmanicidal Intracellular Activity

Andrea Nühs; Manu De Rycker; Sujatha Manthri; Eamon Comer; Christina Scherer; Stuart L. Schreiber; Jean-Robert Ioset; David Michael Gray

Visceral leishmaniasis is an important parasitic disease of the developing world with a limited arsenal of drugs available for treatment. The existing drugs have significant deficiencies so there is an urgent need for new and improved drugs. In the human host, Leishmania are obligate intracellular parasites which poses particular challenges in terms of drug discovery. To achieve sufficient throughput and robustness, free-living parasites are often used in primary screening assays as a surrogate for the more complex intracellular assays. We and others have found that such axenic assays have a high false positive rate relative to the intracellular assays, and that this limits their usefulness as a primary platform for screening of large compound collections. While many different reasons could lie behind the poor translation from axenic parasite to intracellular parasite, we show here that a key factor is the identification of growth slowing and cytostatic compounds by axenic assays in addition to the more desirable cytocidal compounds. We present a screening cascade based on a novel cytocidal-only axenic amastigote assay, developed by increasing starting density of cells and lowering the limit of detection, and show that it has a much improved translation to the intracellular assay. We propose that this assay is an improved primary platform in a new Leishmania screening cascade designed for the screening of large compound collections. This cascade was employed to screen a diversity-oriented-synthesis library, and yielded two novel antileishmanial chemotypes. The approach we have taken may have broad relevance to anti-infective and anti-parasitic drug discovery.


ACS Medicinal Chemistry Letters | 2017

Discovery of Antimalarial Azetidine-2-carbonitriles That Inhibit P. falciparum Dihydroorotate Dehydrogenase

Micah Maetani; Nobutaka Kato; Valquíria Aparecida Polisel Jabor; Felipe A. Calil; Maria Cristina Nonato; Christina Scherer; Stuart L. Schreiber

Dihydroorotate dehydrogenase (DHODH) is an enzyme necessary for pyrimidine biosynthesis in protozoan parasites of the genus Plasmodium, the causative agents of malaria. We recently reported the identification of novel compounds derived from diversity-oriented synthesis with activity in multiple stages of the malaria parasite life cycle. Here, we report the optimization of a potent series of antimalarial inhibitors consisting of azetidine-2-carbonitriles, which we had previously shown to target P. falciparum DHODH in a biochemical assay. Optimized compound BRD9185 (27) has in vitro activity against multidrug-resistant blood-stage parasites (EC50 = 0.016 μM) and is curative after just three doses in a P. berghei mouse model. BRD9185 has a long half-life (15 h) and low clearance in mice and represents a new structural class of DHODH inhibitors with potential as antimalarial drugs.


Antiviral Research | 2016

Novel diversity-oriented synthesis-derived respiratory syncytial virus inhibitors identified via a high throughput replicon-based screen

Jeremy R. Duvall; Lynn VerPlank; Barbara Ludeke; Sarah M. McLeod; Maurice D. Lee; Karthick Vishwanathan; Carol Mulrooney; Sebastian le Quement; Qin Yu; Michelle Palmer; Paul R. Fleming; Rachel Fearns; Michael Foley; Christina Scherer

Respiratory syncytial virus (RSV) infections affect millions of children and adults every year. Despite the significant disease burden, there are currently no safe and effective vaccines or therapeutics. We employed a replicon-based high throughput screen combined with live-virus triaging assays to identify three novel diversity-oriented synthesis-derived scaffolds with activity against RSV. One of these small molecules is shown to target the RSV polymerase (L protein) to inhibit viral replication and transcription; the mechanisms of action of the other small molecules are currently unknown. The compounds described herein may provide attractive inhibitors for lead optimization campaigns.

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Stuart L Schreiber

Brigham and Women's Hospital

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