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Updated: Aug 24, 2026

Isolation of Murine Spermatogenic Cells using a Violet-Excited Cell-Permeable DNA Binding Dye
Published on: January 14, 2021
Differential segregation and modification of mRNA during spermiogenesis in Marsilea vestita
Chiawei W Tsai1, Corine M Van Der Weele, Stephen M Wolniak
1Department of Cell Biology and Molecular Genetics, University of Maryland, College Park, MD 20742, USA.
Abstract:
We are interested in the mechanisms that underlie cell fate determination in the endosporic male gametophytes of the fern, Marsilea vestita. Synchronous development is initiated by placing dry spores into water and involves the translation of stored mRNAs, with little transcription. Nine division cycles produce 32 spermatids surrounded by 7 sterile cells, and then each spermatid differentiates into a multiciliate gamete. Here, we focus on changes in the distribution of particular proteins, mRNAs, and patterns of polyadenylation as essential prerequisites for cell fate determination and gametogenesis. Earlier, we showed that alpha- and beta-tubulin proteins become concentrated in spermatogenous initials, and that centrin mRNA is translated only in spermatogenous initials. In situ hybridizations reveal that centrin, cyclin B, and beta-tubulin mRNAs are present in both sterile and spermatogenous cells, but that transcripts encoding RNA helicase and PRP-19 (a spliceosome component) become localized in spermatogenous cells. The targeted destruction of these two transcripts by RNAi treatments does not affect the numbers of division cycles, but the gametophytes exhibit anomalous patterns of cytokinesis, and a subsequent failure of spermatid differentiation. Thus, cell fate determination in the gametophyte involves localized translation, and the localization of mRNAs for proteins involved in transcript processing. We found differences in polyadenylation levels in sterile and spermatogenous cells that match the distribution of cytoplasmic poly(A) polymerase (PAP), which, in immunolocalizations, is abundant in spermatogenous cells, but undetectable in sterile cells. The activation of translation in spermatogenous initials, but not in sterile cells, may be under the control of mRNA processing enzymes, which become localized either as proteins or mRNAs in the spermatogenous subdomains before any divisions occur.
Insights
Cell fate determination in fern gametophytes relies on localized mRNA translation and processing. Specific RNA helicase and PRP-19 (spliceosome component) localization is crucial for spermatid differentiation.
Area of Science:
- Plant developmental biology
- Molecular genetics
- Cell biology
Background:
- Fern gametophyte development involves synchronous cell divisions and differentiation.
- Stored mRNAs are translated with minimal new transcription during early development.
- Understanding cell fate determination requires analyzing molecular changes during gametogenesis.
Purpose of the Study:
- To investigate the molecular mechanisms of cell fate determination in Marsilea vestita gametophytes.
- To identify key proteins, mRNAs, and polyadenylation patterns essential for gametogenesis.
- To elucidate the role of localized translation and mRNA processing in cell differentiation.
Main Methods:
- In situ hybridization to detect mRNA localization.
- RNA interference (RNAi) to target specific transcripts.
- Immunolocalization to determine protein distribution, including poly(A) polymerase (PAP).
Main Results:
- Centrin, cyclin B, and beta-tubulin mRNAs are found in both sterile and spermatogenous cells.
- RNA helicase and PRP-19 (spliceosome component) mRNAs localize specifically to spermatogenous cells.
- RNAi targeting these transcripts disrupts cytokinesis and spermatid differentiation.
- Cytoplasmic poly(A) polymerase (PAP) is abundant in spermatogenous cells but absent in sterile cells.
Conclusions:
- Cell fate determination in fern gametophytes depends on localized mRNA translation.
- Localization of mRNAs for RNA helicase and PRP-19 is critical for spermatid differentiation.
- Differential polyadenylation and the localization of mRNA processing enzymes regulate translation activation.
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