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Published on: September 5, 2017
Deoxyribonuclease I is essential for DNA fragmentation induced by gamma radiation in mice
Eugene O Apostolov1, Izoumroud Soultanova, Alena Savenka
1Department of Pharmacology and Toxicology, University of Arkansas for Medical Sciences, Little Rock, Arkansas 72205, USA.
Abstract:
Gamma radiation is known to induce cell death in several organs. This damage is associated with endonuclease-mediated DNA fragmentation; however, the enzyme that produces the latter and is likely to cause cell death is unknown. To determine whether the most abundant cytotoxic endonuclease DNase I mediates gamma-radiation-induced tissue injury, we used DNase I knockout mice and zinc chelate of 3,5-diisopropylsalicylic acid (Zn-DIPS), which, as we show, has DNase I inhibiting activity in vitro. The study demonstrated for the first time that inactivation or inhibition of DNase I ameliorates radiation injury to the white pulp of spleen, intestine villi and bone marrow as measured using a quantitative TUNEL assay. The spleen and intestine of DNase I knockout mice were additionally protected from radiation by Zn-DIPS, perhaps due to the broad radioprotective effect of the zinc ions. Surprisingly, the main DNase I-producing tissues such as the salivary glands, pancreas and kidney showed no effect of DNase I inactivation. Another unexpected observation was that even without irradiation, DNA fragmentation and cell death were significantly lower in the intestine of DNase I knockout mice than in wild-type mice. This points to the physiological role of DNase I in normal cell death in the intestinal epithelium. In conclusion, our results suggested that DNase I-mediated mechanism of DNA damage and subsequent tissue injury are essential in gamma-radiation-induced cell death in radiosensitive organs.
Insights
Gamma radiation causes cell death via DNA fragmentation. This study reveals that DNase I enzyme inhibition protects against radiation injury in sensitive organs like the spleen and intestine.
Area of Science:
- Radiation biology
- Molecular biology
- Cell death mechanisms
Background:
- Gamma radiation induces cell death through DNA fragmentation.
- The specific endonuclease responsible for this damage and subsequent cell death remains unidentified.
- DNase I is the most abundant cytotoxic endonuclease.
Purpose of the Study:
- To investigate if DNase I mediates gamma-radiation-induced tissue injury.
- To explore the role of DNase I in radiation-induced cell death.
Main Methods:
- Utilized DNase I knockout mice.
- Employed zinc chelate of 3,5-diisopropylsalicylic acid (Zn-DIPS) as a DNase I inhibitor.
- Quantified radiation injury using the TUNEL assay.
Main Results:
- DNase I inactivation or inhibition significantly reduced radiation injury in the spleen, intestine, and bone marrow.
- DNase I knockout mice exhibited reduced DNA fragmentation and cell death in the intestine, even without irradiation, indicating a role in normal cell death.
- Salivary glands, pancreas, and kidney showed no significant effect from DNase I inactivation.
Conclusions:
- DNase I plays a crucial role in gamma-radiation-induced cell death in radiosensitive organs.
- DNase I mediates DNA damage and subsequent tissue injury following radiation exposure.
- DNase I is also involved in the physiological process of normal cell death in the intestinal epithelium.
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