Target intelligence / Profile preview

Plastid-encoded RNA polymerase (PEP) (PEP)

Target
PEP
Molecular classification
Enzyme, DNA-directed RNA polymerase
01

Overview

The Plastid-encoded RNA polymerase (PEP) is a large, multisubunit enzyme complex that serves as the primary transcriptional machinery for the chloroplast genome in plants and algae (Börner et al., 2015). It is structurally and functionally related to the bacterial RNA polymerase core enzyme, typically composed of four core subunits (alpha, beta, beta', and beta'') encoded by the plastid rpo genes (Pfannschmidt et al., 2015). PEP is responsible for transcribing genes essential for photosynthesis, such as those encoding components of the photosystems and the large subunit of RuBisCO. In addition to its role in plants, PEP-like polymerases are found in the apicoplast of apicomplexan parasites like Plasmodium falciparum, making it a significant target for developing anti-malarial drugs (Dahl & Rosenthal, 2008). Because of its prokaryotic origins, PEP is sensitive to inhibitors like rifampicin and tagetitoxin, which do not typically affect the single-subunit RNA polymerases found in human mitochondria. Consequently, PEP represents a unique target for both herbicidal applications and selective anti-parasitic therapy.

Other names
Chloroplast multisubunit RNA polymerasePlastid RNA polymerasePEPDNA-directed RNA polymerase (plastid-encoded)Prokaryotic-type plastid RNA polymerase
02

Mechanism of action

Inhibition of DNA-directed RNA polymerase activity by binding to the beta subunit and blocking the path of the nascent RNA transcript.

03

Biological functions

TranscriptionPhotosynthesisPlastid developmentGene expression
04

Disease associations

Infection
05

Safety considerations

Selectivity over human mitochondrial RNA polymeraseEnvironmental toxicity to non-target plant speciesPotential impact on beneficial bacterial flora
06

Interacting drugs

Rifampicin

2 more in the full profile.

07

Biomarkers

Plastid transcript levelsChlorophyll contentApicoplast genome maintenance

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