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Updated: Jul 31, 2026

Atomic Force Microscopy Investigations of DNA Lesion Recognition in Nucleotide Excision Repair
Published on: May 24, 2017
Determinants of the nuclear localization of the heterodimeric DNA fragmentation factor (ICAD/CAD)
D Lechardeur1, L Drzymala, M Sharma
1Program in Cell and Lung Biology, Hospital for Sick Children Research Institute, Toronto, Ontario, Canada M5G 1X8.
Abstract:
Programmed cell death or apoptosis leads to the activation of the caspase-activated DNase (CAD), which degrades chromosomal DNA into nucleosomal fragments. Biochemical studies revealed that CAD forms an inactive heterodimer with the inhibitor of caspase-activated DNase (ICAD), or its alternatively spliced variant, ICAD-S, in the cytoplasm. It was initially proposed that proteolytic cleavage of ICAD by activated caspases causes the dissociation of the ICAD/CAD heterodimer and the translocation of active CAD into the nucleus in apoptotic cells. Here, we show that endogenous and heterologously expressed ICAD and CAD reside predominantly in the nucleus in nonapoptotic cells. Deletional mutagenesis and GFP fusion proteins identified a bipartite nuclear localization signal (NLS) in ICAD and verified the function of the NLS in CAD. The two NLSs have an additive effect on the nuclear targeting of the CAD-ICAD complex, whereas ICAD-S, lacking its NLS, appears to have a modulatory role in the nuclear localization of CAD. Staurosporine-induced apoptosis evoked the proteolysis and disappearance of endogenous and exogenous ICAD from the nuclei of HeLa cells, as monitored by immunoblotting and immunofluorescence microscopy. Similar phenomenon was observed in the caspase-3-deficient MCF7 cells upon expressing procaspase-3 transiently. We conclude that a complex mechanism, involving the recognition of the NLSs of both ICAD and CAD, accounts for the constitutive accumulation of CAD/ICAD in the nucleus, where caspase-3-dependent regulation of CAD activity takes place.
Insights
The caspase-activated DNase (CAD) and its inhibitor (ICAD) are found in the nucleus before apoptosis. Nuclear localization signals (NLSs) on both proteins drive this accumulation, where caspase-3 then regulates CAD activity.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Programmed cell death (apoptosis) involves caspase-activated DNase (CAD) degrading DNA.
- CAD forms an inactive complex with the inhibitor of caspase-activated DNase (ICAD) in the cytoplasm.
- Previous models proposed ICAD cleavage releases CAD for nuclear translocation during apoptosis.
Purpose of the Study:
- To investigate the subcellular localization of CAD and ICAD in nonapoptotic cells.
- To identify the mechanisms governing the nuclear import of the CAD-ICAD complex.
- To elucidate the role of nuclear localization signals (NLSs) in CAD/ICAD regulation.
Main Methods:
- Deletional mutagenesis and GFP fusion proteins to identify NLSs.
- Immunoblotting and immunofluorescence microscopy to monitor protein localization and degradation.
- Expression of procaspase-3 in caspase-3-deficient cells.
Main Results:
- Endogenous and expressed ICAD and CAD predominantly localize to the nucleus in nonapoptotic cells.
- A bipartite NLS in ICAD and an NLS in CAD mediate nuclear import, with additive effects.
- Apoptosis induction leads to ICAD proteolysis and disappearance from the nucleus.
- This proteolysis is dependent on caspase-3 activity.
Conclusions:
- The CAD-ICAD complex constitutively accumulates in the nucleus via NLS-mediated import.
- Nuclear localization is essential for caspase-3-dependent regulation of CAD activity during apoptosis.
- ICAD-S plays a modulatory role in CAD nuclear localization.
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