Feline gonads exhibit tissue specific alternative splicing of oestrogen receptor alpha (ESR1)

J Schoen1, S Sharbati, J Ritter

  • 1Institute of Veterinary Biochemistry, Freie Universität Berlin, Berlin, Germany. schoen@fu-berlin.de

Insights

Teratospermia in male cats may stem from estrogen receptor (ESR1) splicing variants. These variants, including Δ4, Δ6, and Δ7, are expressed in gonads and may influence reproductive health.

Area of Science:

  • Reproductive Biology
  • Endocrinology
  • Molecular Biology

Background:

  • Male felids often exhibit teratospermia, a condition linked to impaired testicular apoptosis regulation.
  • Estrogen signaling pathways are hypothesized to be dysregulated, contributing to teratospermia.
  • Estrogen receptor 1 (ESR1) and 2 (ESR2) exhibit species- and tissue-specific expression and alternative splicing, producing variants that can modify full-length receptor functions.

Purpose of the Study:

  • To investigate the expression patterns of ESR1 splicing variants in the gonads of domestic cats.
  • To determine if specific ESR1 variants are associated with reproductive dysfunctions in felids.

Main Methods:

  • RT-PCR was used to detect ESR1 splicing variants in testicular, epididymal, and ovarian tissue samples from domestic cats.
  • Specific antisera were employed to identify the presence and localization of ESR1 proteins, including the Δ6 variant.

Main Results:

  • ESR1 variants Δ4 and Δ7 were detected in all investigated gonadal tissues.
  • The testicular parenchyma showed expression of variant Δ6 and double exon deletions (Δ4/6 and Δ6/7).
  • ESR1 proteins were found in most testicular and ovarian parenchymal cells, with ESR1 Δ6 protein predominantly localized in Sertoli cells.

Conclusions:

  • Significantly expressed exon-deleted ESR1 variants in the gonads may specifically modulate cellular responses to hormonal stimuli.
  • These findings suggest a potential role for ESR1 splicing variants in the reproductive health of male felids.

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