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Antczak, W.

Publications and source records attributed to Antczak, W..

2 recordsLinked to original sources

PolyA tail segmentation improves the stability of the template DNA and increases the translatability of in vitro transcribed mRNA

PolyA tail regulates mRNA localization, stability, and translation. PolyA length affects the durability and translational activity of both endogenous and exogenously delivered mRNAs. However, long polyA stretches can undergo recombination during amplification in bacterial plasmids, impairing the production of in vitro transcribed (IVT) mRNA with long polyAs. PolyA tail segmentation with heteronucleotide spacers has recently emerged as a solution. Here, we developed segmented polyA patterns that stabilize the sequence during DNA amplification and enhance mRNA translation. We designed 15 novel genetically modified polyA variants, differing in the length, placement, and frequency of spacers, and the overall length (from [~]120 to [~]200 nucleotides). We evaluated their stability in DNA plasmids and homogeneity, translational activity, and durability in cell culture of the resulting mRNAs, comparing them to A90 tail and other known solutions, including those from existing mRNA vaccines. Selected sequences were validated in vivo. Surprisingly, we found that even frequent heteronucleotide insertions produce functional polyA tails. The most notable enhancements in protein production were observed for a segmented tail exceeding 200 nt in length [A30(CA15)11; up to 6-fold compared to mRNA with A90 tails]. Our findings extend the scope of possible polyA modification strategies, offering new possibilities for advancing mRNA therapeutics.

molecular biology↗

DIS3L, cytoplasmic exosome catalytic subunit, is essential for development but not cell viability in mice.

Among numerous enzymes involved in RNA decay, processive exoribonucleases are the most prominent group responsible for the degradation of the entire RNA molecules. The role of mammalian cytoplasmic 3-5 exonuclease DIS3L at the organismal level remained unknown. Herein we established knock-in and knock-out mouse models to study DIS3L functions in mice. DIS3L is indeed a subunit of the cytoplasmic exosome complex, which disruption leads to severe embryo degeneration and death in mice soon after implantation. These changes could not be prevented by supplementing extraembryonic tissue with functional DIS3L through the construction of chimeric embryos. Preimplantation Dis3l-/- embryos were unaffected in their morphology and ability to produce functional embryonic stem cells showing that DIS3L is not essential for cell viability. There were also no major changes in the transcriptome level for both embryonic stem cells and blastocysts, as revealed by RNA sequencing experiments. Notably, however, DIS3L knock-out led to inhibition of the global protein synthesis. These results point to the essential role of DIS3L in mRNA quality control pathways crucial for proper protein synthesis during embryo development.

molecular biology↗