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February 5, 2026Reproduction0 citationsOpen Access

Dysregulation of alternative splicing patterns in the ovaries of reproductively aged mice

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AAAdnan T AlsamaraeeVCVanessa L. CorrellJNJulius O. Nyalwidhe

Key Points

  • This research aims to uncover the molecular mechanisms of ovarian aging, focusing on alternative splicing patterns.
  • Utilized long-read direct RNA-sequencing to analyze ovarian transcript changes.
  • Compared young and aged mice after controlled gonadotropin stimulation.
  • Identified changes in exon usage, splice site selection, and transcript boundaries in aged ovaries.
  • Aged ovaries showed increased isoform diversity and significant changes in exon skipping and intron retention.
  • Several mitochondrial genes, including Ndufs4, were affected, which may disrupt Complex I function.
  • Findings suggest a connection between alternative splicing and mitochondrial dysfunction in the aging ovary.

Abstract

Abstract Female reproductive aging is characterized by progressive deterioration of ovarian function, yet the molecular mechanisms driving these changes remain incompletely understood. Here, we used long-read direct RNA-sequencing to map transcript isoform changes in mouse ovaries across reproductive age. Comparing young and aged mice after controlled gonadotropin stimulation, we identified widespread alternative splicing changes, including shifts in exon usage, splice site selection, and transcript boundaries. Aged ovaries exhibited increased isoform diversity, favoring distal start and end sites, and a significant rise in exon skipping and intron retention events. Many of these age-biased splicing events altered open reading frames, introduced premature stop codons, or disrupted conserved protein domains. Notably, several mitochondrial genes involved in the respiratory chain were affected. We highlight Ndufs4, a mitochondrial Complex I subunit, as a case in which aging promotes the alternative splicing of a short isoform lacking the canonical Pfam domain. Structural modeling suggests this splice variant could impair Complex I function, resulting in increased ROS production. Our data suggest a mechanistic link between splicing and mitochondrial dysfunction in the aging ovary. These findings support the model of the splicing-energy-aging axis in ovarian physiology, wherein declining mitochondrial function and adaptive or maladaptive splicing changes are intertwined. Our study reveals that alternative splicing is not merely a byproduct of aging but a dynamic, transcriptome-wide regulatory layer that may influence ovarian longevity. These insights open new avenues for investigating post-transcriptional mechanisms in reproductive aging and underscore the need to consider isoform-level regulation in models of ovarian decline.

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Cite This Study

Alsamaraee et al. (2026) studied this question.

synapsesocial.com/papers/69843543f1d9ada3c1fb3dbbhttps://doi.org/10.1093/reprod/xaag019
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