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January 26, 2026Genetics2 citations

D. melanogaster meiotic driver Stellate compromises sperm development by impeding a process of nuclear envelope remodeling

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XMXuefeng MengYYYukiko Yamashita

Key Points

  • To investigate how the meiotic driver Stellate affects sperm development in D. melanogaster.
  • Examined the asymmetrical segregation of Stellate protein during meiosis I.
  • Assessed the timing of nuclear envelope remodeling in Ste-containing spermatids.
  • Analyzed the presence of nuclear lamina proteins in spermatids during development.
  • Studied the formation of the dense complex supporting sperm nuclear morphogenesis.
  • Ste protein preferentially accumulates on the Y-chromosome side, leading to Y-chromosome spermatid demise.
  • Ste-containing spermatids show delayed removal of nuclear lamina proteins, affecting development.
  • Defects in dense complex formation were observed, resulting in impaired sperm DNA compaction.

Abstract

Abstract Meiotic drive is a phenomenon that violates Mendel’s Law of Equal Segregation, leading to biased transmission of the meiotic driver to the offspring. D. melanogaster Stellate (Ste) is an X-linked meiotic driver that preferentially harms Y-chromosome-bearing spermatids, thereby favoring the transmission of the X chromosome to the next generation. We have recently shown that Ste protein segregates asymmetrically during meiosis I with a strong bias toward the Y-chromosome-inheriting side, leading to the eventual demise of the Y-chromosome-containing spermatids. However, the cellular mechanisms by which Ste protein interferes with spermatid development remain unknown. Here, we show that Ste-containing spermatids are delayed in the process of nuclear envelope remodeling, an essential process during sperm DNA compaction. We show that components of the nuclear lamina (such as Lamin Dm0, and the LEM domain proteins Otefin and Bocks) are rapidly removed during nuclear envelope remodeling during the early stages of normal spermatid development. However, Ste-containing spermatids retained these nuclear lamina proteins for a prolonged time. Their delayed removal is associated with defective formation of the dense complex, which is composed of a bundle of microtubules and serves as a structural support for sperm nuclear morphogenesis. Defective dense complex formation in Ste-containing spermatids led to defective sperm DNA compaction. Together, the present study reveals an unexpected cellular mechanism by which a meiotic driver, Ste, sabotages sperm development.

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Cite This Study

Meng et al. (2026) studied this question.

synapsesocial.com/papers/697703af722626c4468e8b04https://doi.org/10.1093/genetics/iyag021
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