Pre-meiotic deletion of PEX5 causes spermatogenesis failure and infertility in mice

Cell Prolif. 2023 Mar;56(3):e13365. doi: 10.1111/cpr.13365. Epub 2022 Nov 26.

Abstract

Peroxisomes are involved in the regulation of various pathological processes. Peroxisomal biogenesis factor 5 (PEX5), which plays an essential role in peroxisomal biogenesis, is critical for reactive oxygen species (ROS) accumulation. However, its underlying functions in spermatogenesis have not yet been identified. Pex5 was deleted by crossing Stra8-Cre mice with Pex5flox/flox mice before the onset of meiosis. The morphology of testes and epididymides, spermatogenesis function, and fertility in both wild type (WT) and Pex5-/- mice were analysed by haematoxylin and eosin (HE) and immunofluorescent staining. Mechanism of PEX5 affecting peroxisomes and spermatogenesis were validated by Western blot and transmission electron microscopy (TEM). Transcriptome RNA sequencing (RNA-seq) was used to profile the dysregulated genes in testes from WT and Pex5-/- mice on postnatal day (P) 35. The adult Pex5 knockout male mice were completely sterile with no mature sperm production. Loss of Pex5 in spermatocytes resulted in multinucleated giant cell formation, meiotic arrest, abnormal tubulin expression, and deformed acrosome formation. Furthermore, Pex5 deletion led to delayed DNA double-strand break repair and improper crossover at the pachytene stage. Impaired peroxisome function in Pex5 knockout mice induced ROS redundancy, which in turn led to an increase in germ cell apoptosis and a decline in autophagy. Pex5 regulates ROS during meiosis and is essential for spermatogenesis and male fertility in mice.

MeSH terms

  • Animals
  • Infertility* / metabolism
  • Male
  • Meiosis
  • Mice
  • Mice, Knockout
  • Reactive Oxygen Species / metabolism
  • Semen*
  • Spermatocytes / metabolism
  • Spermatogenesis / genetics
  • Testis / metabolism

Substances

  • Reactive Oxygen Species
  • Pex5 protein, mouse