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.

Radiation Research
|September 24, 2009
PubMed

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.

Related Concept Videos

Nucleotide Excision Repair01:08

Nucleotide Excision Repair

Overview
Nucleotide Excision Repair01:38

Nucleotide Excision Repair

DNA Distortion and Damage
Cells are regularly exposed to mutagens—factors in the environment that can damage DNA and generate mutations. UV radiation is one of the most common mutagens and is estimated to introduce a significant number of changes in DNA. These include bends or kinks in the structure, which can block DNA replication or transcription. If these errors are not fixed, the damage can cause mutations, which in turn can result in cancer or disease depending on which sequences are...
Other Unique Bacteria01:18

Other Unique Bacteria

Magnetic bacteria exhibit a directed movement called magnetotaxis, driven by structures called magnetosomes. These magnetosomes consist of chains of magnetic particles made of either magnetite (Fe₃O₄) or greigite (Fe₃S₄) and are organized in a linear conformation by a protein scaffold within invaginations of the cell membrane. The bacteria align along the north–south magnetic field lines, much like a compass needle. They are typically microaerophilic or anaerobic and are commonly found near the...
Homologous Recombination02:31

Homologous Recombination

The basic reaction of homologous recombination (HR) involves two chromatids that contain DNA sequences sharing a significant stretch of identity. One of these sequences uses a strand from another as a template to synthesize DNA in an enzyme-catalyzed reaction. The final product is a novel amalgamation of the two substrates. To ensure an accurate recombination of sequences, HR is restricted to the S and G2 phases of the cell cycle. At these stages, the DNA has been replicated already and the...
Base Excision Repair01:54

Base Excision Repair

One of the common DNA damages is the chemical alteration of single bases by alkylation, oxidation, or deamination. The altered bases cause mispairing and strand breakage during replication. This type of damage causes minimal change to the DNA double helix structure and can be repaired by the base excision repair (BER) pathways. BER corrects damaged DNA sequences by removing the damaged base and restoring the original base sequence using the complementary strand as a template.
The first step of...
Restriction Enzymes01:11

Restriction Enzymes

Restriction enzymes are bacterial enzymes used to cut DNA in a sequence-specific manner. To cleave DNA, they bind to specific palindromic sequences called restriction sites. Such palindromic DNA sequences or inverted repeats are commonly found in regions of functional significance, such as the origin of replication, gene operator sites, and regions containing transcription termination signals.
The host bacteria protect their own genomic DNA from these enzymes by methylating these sites. Some...