Effects of BRCA2 deficiency on telomere recombination in non-ALT and ALT cells

Ester Sapir1, Yaghoub Gozaly-Chianea, Suliman Al-Wahiby

  • 1Brunel Institute of Cancer Genetics and Pharmacogenomics, Division of Biosciences, School of Health Sciences & Social Care, Brunel University, Uxbridge, Middlesex, UB8 3PH, UK. predrag.slijepcevic@brunel.ac.uk.

Genome Integrity
|December 14, 2011
PubMed
Abstract

Insights

BRCA2 suppresses telomere recombination. Depleting BRCA2 in ALT-positive cells reduces telomere sister chromatid exchanges (T-SCEs), suggesting potential for refining telomerase-based cancer therapies.

Area of Science:

  • Genetics
  • Molecular Biology
  • Cancer Research

Background:

  • Recent research indicates BRCA2 influences telomere maintenance.
  • Individual targeting of BRCA2 and telomerase is under investigation for cancer treatment.
  • Combinatorial targeting of BRCA2 and telomerase may offer synergistic therapeutic benefits.

Purpose of the Study:

  • To investigate the role of BRCA2 in telomere recombination.
  • To analyze the impact of BRCA2 on telomere sister chromatid exchanges (T-SCEs).
  • To explore the potential for combined BRCA2 and telomerase targeting in cancer therapy.

Main Methods:

  • Analysis of T-SCE frequencies in BRCA2-defective human cell lines.
  • Examination of T-SCE frequencies in Chinese hamster cell lines with and without functional BRCA2.
  • Assessment of BRCA2 depletion effects on T-SCE frequencies in ALT-positive and non-ALT cells.

Main Results:

  • BRCA2-defective cell lines exhibited significantly increased T-SCE frequencies.
  • Functional BRCA2 normalized T-SCE frequencies, confirming its suppressive role in telomere recombination.
  • BRCA2 depletion dramatically reduced T-SCE frequencies in ALT-positive cells but not in non-ALT cells.

Conclusions:

  • BRCA2 suppresses telomere recombination in conventionally maintained cells.
  • BRCA2 depletion reduces T-SCEs in ALT-positive cells, impacting telomere maintenance.
  • Findings may inform the refinement of telomerase-based anti-cancer strategies.

Related Concept Videos

Replicative Cell Senescence02:15

Replicative Cell Senescence

Replicative cell senescence is a property of cells that allows them to divide a finite number of times throughout the organism's lifespan while preventing excessive proliferation. Replicative senescence is associated with the gradual loss of the telomere — short, repetitive DNA sequences found at the end of the chromosomes. Telomeres are bound by a group of proteins to form a protective cap on the ends of chromosomes. Embryonic stem cells express telomerase — an enzyme that adds the telomeric...
Replication in Eukaryotes01:29

Replication in Eukaryotes

In eukaryotic cells, DNA replication is highly conserved and tightly regulated. Multiple linear chromosomes must be duplicated with high fidelity before cell division, so there are many proteins that fulfill specialized roles in the replication process. Replication occurs in three phases: initiation, elongation, and termination, and ends with two complete sets of chromosomes in the nucleus.
Many Proteins Orchestrate Replication at the Origin
Eukaryotic replication follows many of the same...
Replication in Eukaryotes02:31

Replication in Eukaryotes

Overview
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...
Telomeres and Telomerase02:41

Telomeres and Telomerase

In eukaryotic DNA replication, a single-stranded DNA fragment remains at the end of a chromosome after the removal of the final primer. This section of DNA cannot be replicated in the same manner as the rest of the strand because there is no 3’ end to which the newly synthesized DNA can attach. This non-replicated fragment results in gradual loss of the chromosomal DNA during each cell duplication. Additionally, it can induce a DNA damage response by enzymes that recognize single-stranded DNA.
Telomeres and Telomerase02:41

Telomeres and Telomerase

In eukaryotic DNA replication, a single-stranded DNA fragment remains at the end of a chromosome after the removal of the final primer. This section of DNA cannot be replicated in the same manner as the rest of the strand because there is no 3’ end to which the newly synthesized DNA can attach. This non-replicated fragment results in gradual loss of the chromosomal DNA during each cell duplication. Additionally, it can induce a DNA damage response by enzymes that recognize single-stranded DNA.