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Synthesis and Evaluation of a Mitochondria-Targeting Poly(ADP-ribose) Polymerase-1 Inhibitor
Tanja Krainz1, Andrew M Lamade2, Lina Du2
1Department of Chemistry , University of Pittsburgh , Pittsburgh , Pennsylvania 15260 , United States.
Abstract:
The poly(ADP-ribose) polymerase (PARP) family of enzymes plays a crucial role in cellular and molecular processes including DNA damage detection and repair and transcription; indeed, PARP inhibitors are under clinical evaluation as chemotherapeutic adjuncts given their capacity to impede genomic DNA repair in tumor cells. Conversely, overactivation of PARP can lead to NAD+ depletion, mitochondrial energy failure, and cell death. Since PARP activation facilitates genomic but impedes mitochondrial DNA repair, nonselective PARP inhibitors are likely to have opposing effects in these cellular compartments. Herein, we describe the synthesis and evaluation of the mitochondria-targeting PARP inhibitor, XJB-veliparib. Attachment of the hemigramicidin S pentapeptide isostere for mitochondrial targeting using a flexible linker at the primary amide site of veliparib did not disrupt PARP affinity or inhibition. XJB-veliparib was effective at low nanomolar concentrations (10-100 nM) and more potent than veliparib in protection from oxygen-glucose deprivation (OGD) in primary cortical neurons. Both XJB-veliparib and veliparib (10 nM) preserved mitochondrial NAD+ after OGD; however, only XJB-veliparib prevented release of NAD+ into cytosol. XJB-veliparib (10 nM) appeared to inhibit poly(ADP-ribose) polymer formation in mitochondria and preserve mitochondrial cytoarchitecture after OGD in primary cortical neurons. After 10 nM exposure, XJB-veliparib was detected by LC-MS in mitochondria but not nuclear-enriched fractions in neurons and was observed in mitoplasts stripped of the outer mitochondrial membrane obtained from HT22 cells. XJB-veliparib was also effective at preventing glutamate-induced HT22 cell death at micromolar concentrations. Importantly, in HT22 cells exposed to H2O2 to produce DNA damage, XJB-veliparib (10 μM) had no effect on nuclear DNA repair, in contrast to veliparib (10 μM) where DNA repair was retarded. XJB-veliparib and analogous mitochondria-targeting PARP inhibitors warrant further evaluation in vitro and in vivo, particularly in conditions where PARP overactivation leads to mitochondrial energy failure and maintenance of genomic DNA integrity is desirable, e.g., ischemia, oxidative stress, and radiation exposure.
Insights
A novel mitochondria-targeting poly(ADP-ribose) polymerase (PARP) inhibitor, XJB-veliparib, protects neurons from cell death by preserving mitochondrial function without impairing nuclear DNA repair. This offers a potential therapeutic strategy for conditions involving mitochondrial dysfunction and DNA damage.
Area of Science:
- Biochemistry
- Cell Biology
- Neuroscience
Background:
- Poly(ADP-ribose) polymerase (PARP) enzymes are critical for DNA repair and transcription.
- PARP overactivation can deplete NAD+, leading to mitochondrial dysfunction and cell death.
- Nonselective PARP inhibitors may have opposing effects on nuclear and mitochondrial DNA repair.
Purpose of the Study:
- To synthesize and evaluate XJB-veliparib, a novel mitochondria-targeting PARP inhibitor.
- To assess the efficacy of XJB-veliparib in protecting neurons from cell death and preserving mitochondrial function.
- To determine the impact of XJB-veliparib on both nuclear and mitochondrial DNA repair.
Main Methods:
- Synthesis of XJB-veliparib by conjugating a mitochondrial targeting moiety to veliparib.
- Evaluation of PARP inhibition, NAD+ levels, and cell viability in primary cortical neurons and HT22 cells under oxygen-glucose deprivation (OGD) and glutamate/H2O2 exposure.
- Assessment of XJB-veliparib localization within cellular compartments using LC-MS and examination of mitochondrial cytoarchitecture.
Main Results:
- XJB-veliparib demonstrated potent PARP inhibition and protected neurons from OGD-induced cell death more effectively than veliparib.
- XJB-veliparib preserved mitochondrial NAD+ and cytoarchitecture, preventing NAD+ release into the cytosol.
- Unlike veliparib, XJB-veliparib did not impede nuclear DNA repair in cells exposed to H2O2, indicating targeted mitochondrial action.
Conclusions:
- XJB-veliparib is a selective mitochondria-targeting PARP inhibitor with neuroprotective properties.
- Targeting PARP in mitochondria offers a promising therapeutic avenue for conditions characterized by mitochondrial energy failure and DNA damage.
- Further in vitro and in vivo studies are warranted to explore the therapeutic potential of XJB-veliparib and similar agents.
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