Abstract
A novel fungal metabolite, apicidin [cyclo(N-O-methyl-L-tryptophanyl-L -isoleucinyl-D-pipecolinyl-L-2-amino-8-oxodecanoyl)], that exhibits potent, broad spectrum antiprotozoal activity in vitro against Apicomplexan parasites has been identified. It is also orally and parenterally active in vivo against Plasmodium berghei malaria in mice. Many Apicomplexan parasites cause serious, life-threatening human and animal diseases, such as malaria, cryptosporidiosis, toxoplasmosis, and coccidiosis, and new therapeutic agents are urgently needed. Apicidin's antiparasitic activity appears to be due to low nanomolar inhibition of Apicomplexan histone deacetylase (HDA), which induces hyperacetylation of histones in treated parasites. The acetylation-deacetylation of histones is a thought to play a central role in transcriptional control in eukaryotic cells. Other known HDA inhibitors were also evaluated and found to possess antiparasitic activity, suggesting that HDA is an attractive target for the development of novel antiparasitic agents.
MeSH Terms
Animals
Antiprotozoal Agents/pharmacology
Eimeria tenella/drug effects
Enzyme Inhibitors/pharmacology
Eukaryota/drug effects
Female
Histone Deacetylase Inhibitors
Humans
Kinetics
Malaria/drug therapy
Mice
Mice, Inbred BALB C
Neospora/drug effects
Peptides, Cyclic/pharmacology,therapeutic use
Plasmodium berghei
Plasmodium falciparum/drug effects
Protein Binding
Protozoan Infections/drug therapy
Structure-Activity Relationship
Toxoplasma/drug effects
Chemicals
Antiprotozoal Agents
Enzyme Inhibitors
Histone Deacetylase Inhibitors
Peptides, Cyclic
apicidin
HC toxin
Authors & Affiliations
15 authors, click to expand affiliations / ORCID
Darkin-Rattray S J
Department of Parasite Biochemistry, Merck Research Laboratories, Rahway, NJ 07065, USA.
Gurnett A M
Myers R W
Dulski P M
Crumley T M
Allocco J J
Cannova C
Meinke P T
Colletti S L
Bednarek M A
Singh S B
Goetz M A
Dombrowski A W
Polishook J D
Schmatz D M
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