PLoS ONE · 2014 · 31 citations · 34 references
Peptide EngineeringMalariaMolecular BiologyMolecular GeneticsPlasmodium FalciparumParasite GenomicsDrug ResistanceNucleic Acid ChemistryProtein ExpressionAntisense TherapyManipulate Gene ExpressionBiochemistryOligonucleotideDna ReplicationGene ExpressionBiomolecular EngineeringPeptide Nucleic AcidsNatural SciencesPeptide LibraryMedicineGenome EditingSmall MoleculesDrug Discovery
One of the major concerns in treating malaria by conventional small drug molecules is the rapid emergence of drug resistance. Specific silencing of essential genes by antisense oliogomers has been proposed as an alternative approach that may result in antimalarial activity which is not associated with drug resistance. In addition, such an approach could be an important biological tool for studying many genes' function by reverse genetics. Here we present a novel methodology of using peptide nucleic acids (PNAs) as a useful tool for gene silencing in Plasmodium falciparum. PNAs, designed as specific antisense molecules, were conjugated to a cell penetrating peptide (CPP); namely, octa-D-lysine via the C-terminus, to allow facile delivery through cell membranes. PNAs added to P. falciparum cultures were found exclusively in infected erythrocytes and were eventually localized in nuclei of the parasites at all stages of intra erythrocytic development. We show that these PNAs specifically down regulated both a stably expressed transgene as well as an endogenous essential gene, which significantly reduced parasites' viability. This study paves the way for a simple approach to silence a variety of P. falciparum genes as means of deciphering their function and potentially to develop highly specific and potent antimalarial agents.
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