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Updated: Jun 4, 2026

An Oligonucleotide-based Tandem RNA Isolation Procedure to Recover Eukaryotic mRNA-Protein Complexes
Published on: August 18, 2018
Method to isolate polyribosomal mRNA from scarce samples such as mammalian oocytes and early embryos
Sara Scantland1, Jean-Philippe Grenon, Marie-Hélène Desrochers
1Laboratoire de génomique fonctionnelle du développement embryonnaire, Centre de recherche en biologie de la reproduction, Pavillon Comtois, Faculté des sciences de l'agriculture et de l'alimentation, Université Laval, Québec, G1V 0A6, Canada. claude.robert@fsaa.ulaval.ca
Background:
Although the transcriptome of minute quantities of cells can be profiled using nucleic acid amplification techniques, it remains difficult to distinguish between active and stored messenger RNA. Transcript storage occurs at specific stages of gametogenesis and is particularly important in oogenesis as stored maternal mRNA is used to sustain de novo protein synthesis during the early developmental stages until the embryonic genome gets activated. In many cases, stored mRNA can be several times more abundant than mRNA ready for translation. In order to identify active mRNA in bovine oocytes, we sought to develop a method of isolating very small amounts of polyribosome mRNA.
Results:
The proposed method is based on mixing the extracted oocyte cytoplasm with a preparation of polyribosomes obtained from a non-homologous source (Drosophila) and using sucrose density gradient ultracentrifugation to separate the polyribosomes. It involves cross-linking the non-homologous polyribosomes and neutralizing the cross-linking agent. Using this method, we show that certain stages of oocyte maturation coincide with changes in the abundance of polyribosomal mRNA but not total RNA or poly(A). We also show that the abundance of selected sequences matched changes in the corresponding protein levels.
Conclusions:
We report here the successful use of a method to profile mRNA present in the polyribosomal fraction obtained from as little as 75 mammalian oocytes. Polyribosomal mRNA fractionation thus provides a new tool for studying gametogenesis and early development with better representation of the underlying physiological status.
Insights
This study developed a novel method to isolate active messenger RNA (mRNA) from small cell samples, crucial for understanding early development. The technique successfully identified changes in mRNA abundance during oocyte maturation, correlating with protein levels.
Area of Science:
- Reproductive Biology
- Molecular Biology
- Developmental Biology
Background:
- Distinguishing active from stored mRNA is challenging, especially in oogenesis where maternal mRNA supports early development.
- Stored mRNA can be significantly more abundant than translatable mRNA, complicating analysis.
- Identifying active mRNA is critical for understanding gametogenesis and early embryonic development.
Purpose of the Study:
- To develop a method for isolating polyribosome-bound mRNA from minute quantities of mammalian oocytes.
- To profile active mRNA and assess its abundance during oocyte maturation.
- To correlate mRNA levels with protein synthesis during early development.
Main Methods:
- Utilized sucrose density gradient ultracentrifugation to separate polyribosomes.
- Employed cross-linking of non-homologous polyribosomes (from Drosophila) for isolation.
- Applied the method to profile polyribosomal mRNA from as few as 75 mammalian oocytes.
Main Results:
- Demonstrated changes in polyribosomal mRNA abundance during specific oocyte maturation stages.
- Showed no significant changes in total RNA or poly(A) levels correlating with maturation.
- Validated that the abundance of selected mRNA sequences mirrored corresponding protein level changes.
Conclusions:
- Successfully developed and validated a method for profiling polyribosomal mRNA from small cell populations.
- This technique provides a valuable tool for studying gametogenesis and early development.
- Offers a better representation of the physiological status by focusing on actively translated mRNA.

