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Separate metabolic pathways leading to DNA fragmentation and apoptotic chromatin condensation
1Laboratory of Molecular Immunology and Cell Biology, Rockefeller University, New York 10021-6399.
Abstract:
Apoptosis is the predominant form of cell death observed in a variety of physiological and pathological conditions such as cancer involution, insect metamorphosis, the development of the immune and nervous systems, and embryogenesis. The typical nuclear changes taking place in apoptotic cells include extensive condensation of chromatin and internucleosomal DNA fragmentation into units of 200 base pairs. However, the mechanisms responsible for both chromatin condensation and DNA fragmentation have yet to be elucidated. In this study, micrococcal nuclease and the divalent cations, Ca2+ and Mg2+, were applied to isolated nuclei in an attempt to reconstitute in vitro the digestion of genomic DNA associated with apoptosis. Micrococcal nuclease was found to induce a typical pattern of DNA fragmentation, but did not give rise to chromatin condensation, whereas Ca2+/Mg2+ induced both chromatin condensation and DNA fragmentation in isolated mouse liver nuclei. When the endonuclease inhibitor ZnCl2 was used, the DNA fragmentation induced by Ca2+/Mg2+ in nuclei could be completely inhibited, but chromatin condensation still occurred. For comparison, intact liver cells were treated with valinomycin, a potassium ionophore, which gave rise to an atypical cell death, with chromatin condensation appearing without DNA fragmentation. Our results suggest that endonuclease activation in apoptosis is neither necessary nor sufficient to induce chromatin condensation, and that DNA fragmentation and chromatin condensation may be triggered through separate pathways during apoptosis.
Insights
Apoptosis involves nuclear changes like chromatin condensation and DNA fragmentation. This study shows these events may be triggered by separate pathways, with Ca2+/Mg2+ inducing both in isolated nuclei.
Area of Science:
- Cell biology
- Molecular biology
Background:
- Apoptosis is a crucial cell death process in development and disease.
- Key nuclear events in apoptosis include chromatin condensation and DNA fragmentation.
- The precise mechanisms driving these nuclear changes remain unclear.
Purpose of the Study:
- To investigate the mechanisms of chromatin condensation and DNA fragmentation during apoptosis in vitro.
- To determine if endonuclease activation is essential for chromatin condensation.
Main Methods:
- Isolated mouse liver nuclei were treated with micrococcal nuclease or Ca2+/Mg2+.
- The effect of endonuclease inhibitor ZnCl2 on these processes was examined.
- Intact liver cells were treated with valinomycin for comparison.
Main Results:
- Micrococcal nuclease induced DNA fragmentation but not chromatin condensation.
- Ca2+/Mg2+ induced both chromatin condensation and DNA fragmentation in isolated nuclei.
- ZnCl2 inhibited Ca2+/Mg2+-induced DNA fragmentation but not chromatin condensation.
- Valinomycin treatment of intact cells caused chromatin condensation without DNA fragmentation.
Conclusions:
- Endonuclease activation is not necessary or sufficient for chromatin condensation in apoptosis.
- DNA fragmentation and chromatin condensation appear to be regulated by distinct molecular pathways.
- These findings offer insights into the complex mechanisms of apoptotic nuclear morphology.