Target intelligence / Profile preview

Poly (ADP-ribose) polymerase family (PARP family) (PARP)

Target
PARP
Molecular classification
Enzyme, Transferase, ADP-ribosyltransferase
01

Overview

The Poly (ADP-ribose) polymerase (PARP) family consists of 17 enzymes that are essential regulators of genomic stability, DNA repair, and programmed cell death [1, 5, 6]. These enzymes catalyze the transfer of ADP-ribose from NAD+ to target proteins, a post-translational modification known as ADP-ribosylation that signals the presence of DNA damage [1, 10, 11]. PARP1 and PARP2 are the most extensively studied members and serve as the primary targets for a class of drugs known as PARP inhibitors [4, 13, 15]. These inhibitors are particularly effective in treating cancers with homologous recombination deficiency (HRD), such as those harboring BRCA1 or BRCA2 mutations, through a mechanism called synthetic lethality [2, 7, 14]. By blocking PARP activity and trapping the enzyme on DNA, these drugs cause the accumulation of double-strand breaks that HR-deficient cancer cells cannot repair, leading to selective cell death [14, 16, 17]. Beyond oncology, the PARP family is involved in various pathological processes, including inflammation, neurodegeneration, and viral infections, making it a significant focus for diverse therapeutic applications [1, 6, 16].

Other names
Poly (ADP-ribose) polymeraseARTD familyADP-ribosyltransferase diphtheria toxin-like familyPARP superfamily
02

Mechanism of action

PARP inhibitors primarily act through catalytic inhibition of the PARP enzyme and PARP trapping, which stabilizes the enzyme on damaged DNA to prevent repair [14, 15, 16]. This induces synthetic lethality in cells with homologous recombination deficiency (HRD), such as those with BRCA1/2 mutations, by preventing the repair of DNA single-strand breaks and converting them into lethal double-strand breaks [4, 14, 17].

03

Biological functions

DNA repair (Base Excision Repair, Single-Strand Break Repair, Homologous Recombination) [1, 4, 5, 6, 13, 14]Genomic stability [1, 5, 6, 10]Apoptosis and programmed cell death (Parthanatos) [1, 4, 5, 16]Transcription regulation [1, 4, 6, 11, 14]Telomere maintenance [1, 5, 6, 11, 13]Metabolic regulation (NAD+ and ATP homeostasis) [1, 6, 10, 16]Immune response and inflammation signaling [1, 6, 10, 16]
04

Disease associations

Cancer (Ovarian, Breast, Prostate, Pancreatic, Fallopian tube, Primary peritoneal) [2, 3, 7, 8, 9, 16]Inflammation [1, 6, 10]Neurodegenerative disease [1, 4, 6, 10, 16]Cardiovascular disease [1, 6, 10, 16]Viral infections [1, 6, 10, 16]
05

Safety considerations

Hematologic toxicity (anemia, neutropenia, thrombocytopenia) [16]Secondary malignancies (Myelodysplastic syndrome/Acute myeloid leukemia) [16]Gastrointestinal toxicity (nausea, vomiting) [16]Fatigue [16]Development of drug resistance (e.g., restoration of HR repair) [14, 16]
06

Interacting drugs

Olaparib

7 more in the full profile.

07

Biomarkers

BRCA1 mutation [2, 3, 7, 8, 9, 15, 17]BRCA2 mutation [2, 3, 7, 8, 9, 15, 17]Homologous recombination deficiency (HRD) [2, 7, 8, 9, 16]ATM mutation [7]RAD51 foci formation [4, 8]

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