The ATM signaling cascade promotes recombination-dependent pachytene arrest in mouse spermatocytes

Sarai Pacheco1, Marina Marcet-Ortega1, Julian Lange2

  • 1Genome Integrity and Instability Group, Institut de Biotecnologia i Biomedicina, Universitat Autònoma de Barcelona, Cerdanyola del Vallès, Spain; Cytology and Histology Unit, Department of Cell Biology, Physiology and Immunology, Universitat Autònoma de Barcelona, Cerdanyola del Vallès, Spain.

Plos Genetics
|March 14, 2015
PubMed

Insights

Defects in TRIP13 and ATM signaling disrupt meiotic recombination repair in mouse spermatocytes, leading to pachytene arrest and apoptosis. This study clarifies distinct pathways controlling arrest and apoptosis during male meiosis.

Area of Science:

  • Reproductive Biology
  • Molecular Genetics
  • Cell Biology

Background:

  • Meiotic recombination and synapsis are crucial for proper chromosome segregation during spermatogenesis.
  • Mutations affecting these processes in mouse spermatocytes typically lead to pachytene arrest and apoptosis.
  • Two main arrest mechanisms exist: one independent of double-strand breaks (DSBs) and another activated by persistent recombination intermediates.

Purpose of the Study:

  • To investigate the mechanisms underlying recombination-dependent meiotic arrest.
  • To identify factors involved in the pachytene arrest response by examining TRIP13-deficient mutants.
  • To elucidate the role of ATM-dependent signaling in regulating DSB repair and spermatocyte fate.

Main Methods:

  • Analysis of mouse spermatocytes with hypomorphic Trip13 mutations (Trip13mod/mod).
  • Examination of TRIP13-deficient spermatocytes lacking ATM, or with attenuated ATM activity via Mre11, Nbs1, or CHK2 mutations.
  • Assessment of chromosome synapsis, DSB repair, histone variant H1t incorporation, sex body formation, and apoptosis.

Main Results:

  • Trip13mod/mod spermatocytes arrest with features of early pachytene, lacking H1t incorporation and undergoing apoptosis.
  • TRIP13-deficient spermatocytes lacking ATM, or with reduced ATM activity, progress to an H1t-positive stage despite unrepaired DSBs.
  • ATM-dependent signaling enforces the pachytene response to persistent recombination intermediates, with distinct pathways for arrest and apoptosis.

Conclusions:

  • ATM-dependent signaling is essential for the normal pachytene response to persistent recombination intermediates.
  • Recombination defects trigger spermatocyte arrest via pathways genetically distinct from sex body failure-promoted apoptosis.
  • Sex body formation failure can induce apoptosis independently of recombination-dependent arrest.

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