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Updated: Aug 5, 2026

Xenopus laevis as a Model to Identify Translation Impairment
Published on: September 27, 2015
Evidence for multiple sequences and factors involved in c-myc RNA stability during amphibian oogenesis
J Lefresne1, J M Lemaitre, M Selo
1Laboratoire d'Oncologie Cellulaire et de Toxicologie Génétique, Centre Anti Cancèreux, Université de Caen, 14021 Caen Cedex, France.
Abstract:
To investigate the molecular mechanisms regulating c-myc RNA stability during late amphibian oogenesis, a heterologous system was used in which synthetic Xenopus laevis c-myc transcripts, progressively deleted from their 3' end, were injected into the cytoplasm of two different host axolotl (Ambystoma mexicanum) cells: stage VI oocytes and progesterone-matured oocytes (unfertilized eggs; UFE). This in vivo strategy allowed the behavior of the exogenous c-myc transcripts to be followed and different regions involved in the stability of each intermediate deleted molecule to be identified. Interestingly, these specific regions differ in the two cellular contexts. In oocytes, two stabilizing regions are located in the 3' untranslated region (UTR) and two in the coding sequence (exons II and III) of the RNA. In UFE, the stabilizing regions correspond to the first part of the 3' UTR and to the first part of exon II. However, in UFE, the majority of synthetic transcripts are degraded. This degradation is a consequence of nuclear factors delivered after germinal vesicle breakdown and specifically acting on targeted regions of the RNA. To test the direct implication of these nuclear factors in c-myc RNA degradation, an in vitro system was set up using axolotl germinal vesicle extracts that mimic the in vivo results and confirm the existence of specific destabilizing factors. In vitro analysis revealed that two populations of nuclear molecules are implicated: one of 4.4-5S (50-65 kDa) and the second of 5.4-6S (90-110 kDa). These degrading nuclear factors act preferentially on the coding region of the c-myc RNA and appear to be conserved between axolotl and Xenopus. Thus, this experimental approach has allowed the identification of specific stabilizing sequences in c-myc RNA and the temporal identification of the different factors (cytoplasmic and/or nuclear) involved in post-transcriptional regulation of this RNA during oogenesis.
Insights
Researchers identified specific RNA sequences that control c-myc gene expression stability in amphibian oocytes and eggs. Nuclear factors degrade c-myc RNA in eggs, revealing temporal regulation mechanisms.
Area of Science:
- Molecular Biology
- Developmental Biology
- Gene Regulation
Background:
- c-myc RNA stability is crucial for regulating gene expression during oogenesis.
- Understanding post-transcriptional regulation of c-myc is key to amphibian development.
- Previous studies lacked detailed insights into the specific regulatory elements and factors involved.
Purpose of the Study:
- To investigate the molecular mechanisms governing c-myc RNA stability in late amphibian oogenesis.
- To identify specific RNA regions responsible for c-myc transcript stability.
- To characterize the nuclear factors involved in c-myc RNA degradation.
Main Methods:
- Utilized a heterologous system with synthetic Xenopus laevis c-myc transcripts injected into axolotl oocytes and unfertilized eggs (UFE).
- Employed progressive 3' end deletions to map stabilizing regions within the c-myc RNA.
- Established an in vitro system using axolotl germinal vesicle extracts to analyze nuclear degradation factors.
Main Results:
- Identified distinct stabilizing regions in the 3' untranslated region (UTR) and coding sequences (exons II, III) in oocytes.
- Found different stabilizing regions in UFE (3' UTR and exon II), but observed significant transcript degradation.
- Demonstrated that nuclear factors, present after germinal vesicle breakdown, cause degradation by targeting specific RNA regions, with two molecular weight populations (50-65 kDa and 90-110 kDa) identified.
Conclusions:
- Specific stabilizing sequences in c-myc RNA differ between oocytes and UFE.
- Nuclear factors play a critical role in c-myc RNA degradation in UFE, indicating temporal control.
- Identified key cytoplasmic and nuclear factors involved in the post-transcriptional regulation of c-myc RNA during oogenesis.
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