Expression profile of genes coding for DNA repair in human oocytes using pangenomic microarrays, with a special focus

Yves Menezo1, GianLuigi Russo, Elisabetta Tosti

  • 1UNILABS, 12 Place Cornavin, Geneva, Switzerland. Yves.menezo@eylau.fr

Abstract

Insights

Oocytes possess robust DNA repair mechanisms, including base excision repair, to prevent damage from reactive oxygen species. This ensures genomic stability and avoids transmitting mutations to the next generation.

Area of Science:

  • Reproductive Biology
  • Molecular Genetics
  • DNA Repair Mechanisms

Background:

  • Reactive oxygen species (ROS) cause DNA damage, which oocytes must repair before genomic activation to prevent apoptosis or mutations.
  • The germinal vesicle (GV) oocyte stage is crucial for studying DNA maintenance as it precedes embryonic genomic activation and significant transcription.

Purpose of the Study:

  • To investigate the expression of mRNA regulating DNA repair in GV-stage oocytes.
  • To understand how oocytes handle DNA damage induced by ROS prior to the first cell divisions.

Main Methods:

  • Analysis of mRNA expression in GV oocytes using Affymetrix HG-UG133 Plus 2 arrays.
  • Inclusion of spike and housekeeping genes for internal control during mRNA analysis.
  • Selection of GV oocytes as a model due to the absence of transcription and ethical considerations.

Main Results:

  • GV oocytes exhibit redundant DNA repair pathways, including one-step repair (OSR), base excision repair (BER), mismatch repair (MMR), and nucleotide excision repair (NER).
  • All necessary recognition proteins for these repair pathways are present.
  • High expression of chromatin assembly factors essential for maintaining genomic stability was observed.

Conclusions:

  • Oocytes possess a comprehensive system to repair DNA damage, minimizing tolerance for DNA decays.
  • This efficient DNA repair capacity in oocytes is vital for preventing the transmission of mutations across generations.

Related Concept Videos

Overview of DNA Repair02:25

Overview of DNA Repair

In order to be passed through generations, genomic DNA must be undamaged and error-free. However, every day, DNA in a cell undergoes several thousand to a million damaging events by natural causes and external factors. Ionizing radiation such as UV rays, free radicals produced during cellular respiration, and hydrolytic damage from metabolic reactions can alter the structure of DNA. Damages caused include single-base alteration, base dimerization, chain breaks, and cross-linkage.
Chemically...
Overview of DNA Repair02:25

Overview of DNA Repair

In order to be passed through generations, genomic DNA must be undamaged and error-free. However, every day, DNA in a cell undergoes several thousand to a million damaging events by natural causes and external factors. Ionizing radiation such as UV rays, free radicals produced during cellular respiration, and hydrolytic damage from metabolic reactions can alter the structure of DNA. Damages caused include single-base alteration, base dimerization, chain breaks, and cross-linkage.
Chemically...
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...
Base-pairing and DNA Repair02:27

Base-pairing and DNA Repair

Erwin Chargaff’s rules on DNA equivalence paved the way for the discovery of base pairing in DNA. Chargaff’s rules state that in a double-stranded DNA molecule,