Biochemical mechanisms of chromosomal translocations resulting from DNA double-strand breaks

Lawrence F Povirk1

  • 1Department of Pharmacology and Toxicology, Virginia Commonwealth University, Richmond, VA 23298, USA. LPOVIRK@mail2.vcu.edu

DNA Repair
|July 11, 2006
PubMed

Insights

Chromosome translocations often result from DNA double-strand breaks. Analysis reveals these rearrangements primarily involve misjoining of broken DNA ends, often with deletions, consistent with nonhomologous end joining mechanisms.

Area of Science:

  • Genetics
  • Molecular Biology
  • Cancer Research

Background:

  • DNA double-strand breaks are critical lesions that can lead to chromosome translocations.
  • Understanding the mechanisms of translocation formation is crucial for comprehending genomic instability and cancer development.

Purpose of the Study:

  • To analyze DNA sequence data from translocation breakpoints to infer the biochemical mechanisms involved in their formation.
  • To investigate the role of DNA repair pathways, particularly nonhomologous end joining (NHEJ), in mediating chromosome translocations.

Main Methods:

  • Analysis of DNA sequences at breakpoint junctions from clinical tumors and experimental models.
  • Comparison of junction sequences with known DNA repair pathway characteristics.
  • Examination of the role of specific DNA end processing enzymes.

Main Results:

  • Translocations primarily arise from the misjoining of DNA ends from double-strand breaks.
  • Breakpoint junctions frequently exhibit deletions, suggesting exonucleolytic processing before ligation.
  • The characteristics of junctions align with the classical nonhomologous end joining (NHEJ) pathway, involving DNA-dependent protein kinase, XRCC4, and DNA ligase IV.
  • Alternative, less conservative end-joining pathways may also contribute to translocations.

Conclusions:

  • Chromosome translocations are largely mechanistically explained by the NHEJ pathway, involving DNA end processing and ligation.
  • While NHEJ is the primary mechanism, alternative end-joining pathways exist.
  • Specific DNA end processing enzymes are likely involved in the formation of translocations, though evidence is circumstantial.

Related Concept Videos

Fixing Double-strand Breaks02:04

Fixing Double-strand Breaks

The double-stranded structure of DNA has two major advantages. First, it serves as a safe repository of genetic information where one strand serves as the back-up in case the other strand is damaged. Second, the double-helical structure can be wrapped around proteins called histones to form nucleosomes, which can then be tightly wound to form chromosomes. This way, DNA chains up to 2 inches long can be contained within microscopic structures in a cell. A double-stranded break not only damages...
Fixing Double-strand Breaks02:04

Fixing Double-strand Breaks

The double-stranded structure of DNA has two major advantages. First, it serves as a safe repository of genetic information where one strand serves as the back-up in case the other strand is damaged. Second, the double-helical structure can be wrapped around proteins called histones to form nucleosomes, which can then be tightly wound to form chromosomes. This way, DNA chains up to 2 inches long can be contained within microscopic structures in a cell. A double-stranded break not only damages...
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...
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...
Gene Conversion02:08

Gene Conversion

Other than maintaining genome stability via DNA repair, homologous recombination plays an important role in diversifying the genome. In fact, the recombination of sequences forms the molecular basis of genomic evolution. Random and non-random permutations of genomic sequences create a library of new amalgamated sequences. These newly formed genomes can determine the fitness and survival of cells. In bacteria, homologous and non-homologous types of recombination lead to the evolution of new...
Translesion DNA Polymerases02:10

Translesion DNA Polymerases

Translesion (TLS) polymerases rescue stalled DNA polymerases at sites of damaged bases by replacing the replicative polymerase and installing a nucleotide across the damaged site. Doing so, TLS allows additional time for the cell to repair the damage before resuming regular DNA replication.
TLS polymerases are found in all three domains of life - archaea, bacteria, and eukaryotes. Of the different classes of TLS polymerases, members of the Y family are fitted with specialized structures that...