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Updated: Feb 26, 2026

Preparation of Meiotic Chromosome Spreads from Mouse Oocytes for Assessment of Synapsis and Recombination
Published on: July 18, 2025
Programmed meiotic errors facilitate dichotomous sperm production in the silkworm, Bombyx mori
Leif Benner1, Makenzie Richmond2, Youbin Xiang2
1Unit on Chromosome Dynamics, Division of Development Biology, Eunice Kennedy Shriver National Institute of Child Health and Human Development, NIH, Bethesda, MD 20982.
Abstract:
The goal of meiosis is typically to produce haploid gametes (eggs or sperm). Failure to do so is catastrophic for fertility. However, Lepidopteran (moths and butterflies) males produce two sperm morphs: nucleated (eupyrene) sperm and anucleated (apyrene) sperm, both of which are essential for fertilization. The meiotic differences in the two types of spermatogenesis are unclear, and our knowledge of the molecular differences between eupyrene and apyrene spermatogenesis is extremely limited in all systems. The only factor identified as being required for apyrene spermatogenesis is Sex-lethal (Sxl). Here, we show through cytological analysis of meiotic events that there are several key differences in the genesis of apyrene and eupyrene sperm. Specifically, during meiosis I, apyrene spermatocytes fail to decondense and pair their chromosomes during meiotic prophase I. Telomeres fail to localize to the nuclear periphery, and full-length synaptonemal complex does not form. We also find evidence of an abnormal second cell division during apyrene meiosis. RNA sequencing of both eupyrene- and apyrene-producing testes reveals distinct changes in transcriptional programs, including down-regulation of a myriad of cell division genes during apyrene meiosis. By comparing wildtype and Sxl-knockout apyrene testes, we found that Sxl is not required for regulating the expression of the cell division genes but instead may play a role in blocking hormone signaling from altering testis cell identity. Together, our findings reveal significant insights into two converging molecular pathways that promote the formation of dimorphic sperm in Lepidoptera.
Insights
Moth and butterfly males produce two sperm types. This study reveals key meiotic differences and molecular pathways, including the role of Sex-lethal (Sxl), in forming these dimorphic sperm essential for reproduction.
Area of Science:
- Reproductive Biology
- Developmental Biology
- Genetics
Background:
- Meiosis typically produces haploid gametes, crucial for fertility.
- Lepidopteran males uniquely produce two sperm types: eupyrene (nucleated) and apyrene (anucleated), both vital for fertilization.
- Molecular mechanisms underlying dimorphic sperm formation in Lepidoptera are poorly understood.
Purpose of the Study:
- To elucidate the cytological and molecular differences in the genesis of eupyrene and apyrene sperm in Lepidoptera.
- To investigate the role of Sex-lethal (Sxl) in apyrene spermatogenesis.
Main Methods:
- Cytological analysis of meiotic events in developing sperm.
- RNA sequencing of testes producing eupyrene and apyrene sperm.
- Comparison of wildtype and Sxl-knockout apyrene testes.
Main Results:
- Apyrene spermatocytes exhibit failed chromosome decondensation, pairing, telomere localization, and synaptonemal complex formation during meiosis I.
- Abnormalities were observed in the second meiotic division of apyrene sperm.
- RNA sequencing revealed down-regulation of cell division genes in apyrene meiosis.
- Sxl was found not to regulate cell division genes but may block hormone signaling affecting testis cell identity.
Conclusions:
- Significant cytological and molecular differences exist between eupyrene and apyrene spermatogenesis.
- Sxl plays a regulatory role in apyrene sperm formation, potentially by modulating hormonal influences on testis cell identity.
- These findings provide crucial insights into the molecular pathways governing dimorphic sperm production in Lepidoptera.
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