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Updated: Aug 16, 2026

Visualization and Quantitative Analysis of Genotoxin-Induced PARP1/PARP2 Activation in Cells Using a Fluorescent Fusion Protein-Based Reporter
Published on: April 17, 2026
Tankyrase-1 overexpression reduces genotoxin-induced cell death by inhibiting PARP1
Tsung-Yin J Yeh1, Juan I Sbodio, M T Audrey Nguyen
1Department of Medicine and Cancer Center, University of California, San Diego, La Jolla, CA 92093-0673, USA.
Abstract:
Poly(ADP-ribose) polymerases or PARPs are a family of NAD(+)-dependent enzymes that modify themselves and other substrate proteins with ADP-ribose polymers. The founding member PARP 1 is localized predominantly in the nucleus and is activated by binding to DNA lesions. Excessive PARP 1 activation following genotoxin treatment causes NAD(+) depletion and cell death, whereas pharmacological PARP 1 inhibition protects cells from genotoxicity. This study investigates whether cellular viability and NAD(+) metabolism are regulated by tankyrase-1, a PARP member localized predominantly in the cytosol. Using a tetracycline-sensitive promoter to regulate tankyrase-1 expression in Madin-Darby canine kidney (MDCK) cells, we found that a 40-fold induction of tankyrase-1 (from 1,500 to 60,000 copies per cell) lowers steady-state NAD(+) levels but does not affect basal cellular viability. Moreover, the induction confers protection against the oxidative agent H(2)O(2) and the alkylating agent MNNG, genotoxins that kill cells by activating PARP 1. The cytoprotective effect of tankyrase-1 is not due to enhanced scavenging of oxidants or altered expression of Mcl-1, an anti-apoptotic molecule previously shown to be down-regulated by tankyrase-1 in CHO cells. Instead, tankyrase-1 appears to protect cells by preventing genotoxins from activating PARP 1-mediated reactions such as PARP 1 automodification and NAD(+) consumption. Our findings therefore indicate a cytoprotective function of tankyrase-1 mediated through altered NAD(+) homeostasis and inhibition of PARP 1 function.
Insights
Tankyrase-1, a poly(ADP-ribose) polymerase (PARP), protects cells from genotoxins by inhibiting PARP 1 activity and altering NAD+ metabolism, without affecting basal cell viability.
Area of Science:
- Biochemistry
- Cell Biology
- Enzymology
Background:
- Poly(ADP-ribose) polymerases (PARPs) are NAD(+)-dependent enzymes involved in DNA repair.
- PARP 1 activation by genotoxins leads to NAD(+) depletion and cell death.
- Tankyrase-1 is a PARP family member localized in the cytosol.
Purpose of the Study:
- To investigate the role of tankyrase-1 in cellular viability and NAD(+) metabolism.
- To determine if tankyrase-1 confers protection against genotoxic agents.
- To elucidate the mechanism of tankyrase-1's cytoprotective effect.
Main Methods:
- Regulating tankyrase-1 expression in MDCK cells using a tetracycline-sensitive promoter.
- Measuring steady-state NAD(+) levels.
- Assessing cellular viability after exposure to H(2)O(2) and MNNG.
- Evaluating PARP 1 automodification and NAD(+) consumption.
Main Results:
- Induced tankyrase-1 expression lowered NAD(+) levels but did not affect basal cell viability.
- Tankyrase-1 induction protected cells against oxidative and alkylating genotoxins.
- Cytoprotection was not mediated by enhanced oxidant scavenging or altered Mcl-1 expression.
- Tankyrase-1 prevented genotoxin-induced PARP 1 activation and NAD(+) consumption.
Conclusions:
- Tankyrase-1 exhibits a cytoprotective function.
- This protection is achieved by modulating NAD(+) homeostasis.
- Tankyrase-1 inhibits PARP 1-mediated reactions, thereby preventing genotoxicity-induced cell death.
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