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Published on: September 10, 2021
Melav2, an elav-like gene, is essential for spermatid differentiation in the flatworm Macrostomum lignano
Kiyono Sekii1, Willi Salvenmoser, Katrien De Mulder
1Department of Evolutionary Biology, Zoological Institute, University of Basel, Basel, Switzerland. kiyono.sekii@unibas.ch
Background:
Failure of sperm differentiation is one of the major causes of male sterility. During spermiogenesis, spermatids undergo a complex metamorphosis, including chromatin condensation and cell elongation. Although the resulting sperm morphology and property can vary depending on the species, these processes are fundamental in many organisms. Studying genes involved in such processes can thus provide important information for a better understanding of spermatogenesis, which might be universally applied to many other organisms.
Results:
In a screen for genes that have gonad-specific expression we isolated an elav-like gene, melav2, from Macrostomum lignano, containing the three RNA recognition motifs characteristic of elav-like genes. We found that melav2 mRNA was expressed exclusively in the testis, as opposed to the known elav genes, which are expressed in the nervous system. The RNAi phenotype of melav2 was characterized by an aberrant spermatid morphology, where sperm elongation often failed, and an empty seminal vesicle. Melav2 RNAi treated worms were thus male-sterile. Further analysis revealed that in melav2 RNAi treated worms precocious chromatin condensation occurred during spermatid differentiation, resulting in an abnormally tightly condensed chromatin and large vacuoles in round spermatids. In addition, immunostaining using an early-spermatid specific antibody revealed that melav2 RNAi treated worms had a larger amount of signal positive cells, suggesting that many cells failed the transition from early spermatid stage.
Conclusion:
We characterize a new function for elav-like genes, showing that melav2 plays a crucial role during spermatid differentiation, especially in the regulation of chromatin condensation and/or cell elongation.
Insights
A newly identified gene, melav2, is essential for male fertility. Its disruption causes aberrant sperm development, including failed elongation and premature chromatin condensation, leading to male sterility in Macrostomum lignano.
Area of Science:
- Developmental Biology
- Genetics
- Reproductive Biology
Background:
- Male sterility often results from defects in sperm differentiation.
- Spermiogenesis involves critical processes like chromatin condensation and cell elongation, fundamental across species.
- Understanding these processes offers insights into universal spermatogenesis mechanisms.
Purpose of the Study:
- To identify genes involved in gonad-specific expression and sperm differentiation.
- To investigate the function of the elav-like gene, melav2, in Macrostomum lignano.
Main Methods:
- Screening for gonad-specific genes.
- Isolation and characterization of the melav2 gene.
- RNA interference (RNAi) to assess melav2 function.
- Phenotypic analysis of melav2 knockdown, including morphology and cell transition.
- Immunostaining for early spermatids.
Main Results:
- The elav-like gene melav2 was identified with testis-specific mRNA expression.
- RNAi-mediated knockdown of melav2 resulted in male sterility due to aberrant spermatid morphology.
- Observed defects included failed sperm elongation, premature chromatin condensation, and vacuole formation.
- A failure in the transition from early spermatid stage was indicated by increased antibody-positive cells.
Conclusions:
- The elav-like gene melav2 plays a critical role in spermatid differentiation.
- melav2 is essential for regulating chromatin condensation and/or cell elongation during spermiogenesis.
- This study reveals a novel function for elav-like genes in male reproductive processes.
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