MEPicides: potent antimalarial prodrugs targeting isoprenoid biosynthesis

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作者
Rachel L. Edwards
Robert C. Brothers
Xu Wang
Maxim I. Maron
Peter D. Ziniel
Patricia S. Tsang
Thomas E. Kraft
Paul W. Hruz
Kim C. Williamson
Cynthia S. Dowd
Audrey R. Odom John
机构
[1] Washington University School of Medicine,Department of Pediatrics
[2] George Washington University,Department of Chemistry
[3] Loyola University Chicago,Department of Biology
[4] Uniformed Services University of the Health Sciences,Tuberculosis Research Section
[5] Laboratory of Clinical Infectious Diseases,Department of Cell Biology and Physiology
[6] NIAID,Department of Molecular Microbiology
[7] NIH,Roche Pharma Research and Early Development
[8] Washington University School of Medicine,undefined
[9] Washington University School of Medicine,undefined
[10] Albert Einstein College of Medicine,undefined
[11] Roche Innovation Center,undefined
[12] Munich,undefined
来源
Scientific Reports | / 7卷
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摘要
The emergence of Plasmodium falciparum resistant to frontline therapeutics has prompted efforts to identify and validate agents with novel mechanisms of action. MEPicides represent a new class of antimalarials that inhibit enzymes of the methylerythritol phosphate (MEP) pathway of isoprenoid biosynthesis, including the clinically validated target, deoxyxylulose phosphate reductoisomerase (Dxr). Here we describe RCB-185, a lipophilic prodrug with nanomolar activity against asexual parasites. Growth of P. falciparum treated with RCB-185 was rescued by isoprenoid precursor supplementation, and treatment substantially reduced metabolite levels downstream of the Dxr enzyme. In addition, parasites that produced higher levels of the Dxr substrate were resistant to RCB-185. Notably, environmental isolates resistant to current therapies remained sensitive to RCB-185, the compound effectively treated sexually-committed parasites, and was both safe and efficacious in malaria-infected mice. Collectively, our data demonstrate that RCB-185 potently and selectively inhibits Dxr in P. falciparum, and represents a promising lead compound for further drug development.
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