DNA double strand breaks but not interstrand crosslinks prevent progress through meiosis in fully grown mouse oocytes

Wai Shan Yuen1, Julie A Merriman, Moira K O'Bryan

  • 1School of Biomedical Sciences and Pharmacy, University of Newcastle, Callaghan, New South Wales, Australia.

Plos One
|August 29, 2012
PubMed

Insights

Mammalian oocytes are sensitive to double-strand breaks (DSBs) but tolerate interstrand crosslinks (ICLs). Unrepaired ICLs during meiosis compromise subsequent embryo development, impacting fertility preservation strategies.

Area of Science:

  • Reproductive biology
  • Molecular genetics
  • Cellular toxicology

Background:

  • Fertility preservation for women undergoing chemotherapy necessitates understanding oocyte DNA damage response.
  • Mammalian oocytes must repair toxic DNA lesions like double-strand breaks (DSBs) and interstrand crosslinks (ICLs) for survival and reproductive success.

Purpose of the Study:

  • To investigate the differential effects of DSB-inducing (neocarzinostatin, NCS) and ICL-inducing (mitomycin C, MMC) agents on mouse oocyte meiotic maturation.
  • To determine if oocytes can repair ICLs during meiosis or if tolerance impacts subsequent embryonic development.

Main Methods:

  • Oocytes from antral follicles were treated with NCS or MMC.
  • Meiosis I and II progression, DNA fragmentation, and γ-H2AX foci were assessed.
  • In vitro maturation, parthenogenetic activation, and subsequent embryo development were evaluated.
  • FANCD2 localization was examined in oocytes and early embryos.

Main Results:

  • NCS treatment blocked meiosis I and induced DNA fragmentation in oocytes.
  • MMC did not impede meiotic progression even at high doses, but induced γ-H2AX foci.
  • Oocytes treated with MMC showed compromised subsequent embryo development after parthenogenetic activation.
  • FANCD2 association with ICLs was observed only after entry into the embryonic cell cycle.

Conclusions:

  • Meiotic maturation in mammalian oocytes is sensitive to DSBs but remarkably tolerant to ICLs.
  • ICLs remain unrepaired during oocyte meiosis, leading to impaired embryonic development and reduced embryo quality.
  • Oocyte tolerance to ICLs highlights a critical vulnerability in fertility preservation strategies involving DNA-damaging agents.

Related Concept Videos

Meiosis vs. Mitosis02:57

Meiosis vs. Mitosis

Cell division is necessary for growth and reproduction in organisms. Mitosis aids cell growth and development by dividing somatic cells. In contrast, meiosis causes the division of germ cells and plays an essential role in sexual reproduction. Due to their unique functional requirements, mitosis and meiosis differ from each other in multiple aspects.
Before the start of mitosis and meiosis I, the cell synthesizes DNA, resulting in two homologous copies of each chromosome. DNA synthesis is...
Meiosis II02:02

Meiosis II

Meiosis II entails cell division and segregation of the sister chromatids, resulting in the production of four unique haploid gametes. The steps for meiosis II are similar to mitosis, except that meiosis II occurs in haploid cells, whereas mitosis occurs in diploid cells.
The timing and cell division patterns of meiosis differ between males and females. In male meiosis, the centrosomes are part of the formation of the meiotic spindle. However, in oocytes, including that of humans, Drosophila,...
Meiosis II01:57

Meiosis II

Meiosis II is the second and final stage of meiosis. It relies on the haploid cells produced during meiosis I, each of which contain only 23 chromosomes—one from each homologous initial pair. Importantly, each chromosome in these cells is composed of two joined copies, and when these cells enter meiosis II, the goal is to separate such sister chromatids using the same microtubule-based network employed in other division processes. The result of meiosis II is two haploid cells, each containing...
Meiosis I03:09

Meiosis I

Meiosis is the division of a diploid cell into haploid cells forming sperm and eggs in animals through differentiation. Meiosis I is the first stage of meiosis, where the genetic recombination of homologous chromosomes and the reduction of the ploidy level by half occurs.
Prophase I is the most extended and complex step of meiosis I characterized by synapsis, chromosome pairing, and recombination of the homologous chromosomes. This process is facilitated by a proteinaceous structure called the...
Meiosis I01:49

Meiosis I

Meiosis is a carefully orchestrated set of cell divisions, the goal of which—in humans—is to produce haploid sperm or eggs, each containing half the number of chromosomes present in somatic cells elsewhere in the body. Meiosis I is the first such division, and involves several key steps, among them: condensation of replicated chromosomes in diploid cells; the pairing of homologous chromosomes and their exchange of information; and finally, the separation of homologous chromosomes by a...
Oogenesis02:07

Oogenesis

In human women, oogenesis produces one mature egg cell or ovum for every precursor cell that enters meiosis. This process differs in two unique ways from the equivalent procedure of spermatogenesis in males. First, meiotic divisions during oogenesis are asymmetric, meaning that a large oocyte (containing most of the cytoplasm) and minor polar body are produced as a result of meiosis I, and again following meiosis II. Since only oocytes will go on to form embryos if fertilized, this unequal...