bioRxiv Science⌕ Search

Biology subjects

Rakestraw, N. R.

Publications and source records attributed to Rakestraw, N. R..

2 recordsLinked to original sources

Single-nucleotide Resolution Epitranscriptomic Profiling Uncovers Dynamic m6A Regulation in Bovine Preimplantation Development

RNA N6-methyladenosine (m6A) plays a crucial role in regulating gene expression during early embryonic development. However, the m6A dynamics at single-nucleotide resolution in preimplantation development remain uncharacterized, and the functional significance of site specific m6A modifications in key developmental regulators is largely unknown. Here, using SAC-seq, a single-base resolution, antibody-independent m6A profiling method, we generate the first comprehensive m6A landscape in bovine oocytes and preimplantation embryos. We identify a previously uncharacterized m6A site in RPL12 transcript that is essential for embryonic development. Loss of m6A at this site leads to reduced protein synthesis, disrupted expression of translation-related genes, and impaired zygotic genome activation and blastocyst formation. Notably, supplementation with wild-type RPL12 mRNA fails to rescue the developmental arrest, indicating that m6A regulation extends beyond transcript abundance. Our findings provide a valuable resource of m6A at single-nucleotide resolution in mammalian embryogenesis and uncover a critical mechanism by which precise, site-specific m6A regulates translation and developmental competence in early embryos.

developmental biology↗

Efficient Genome Editing with Chimeric Oligonucleotide-Directed Editing

Prime editing has emerged as a precise and powerful genome editing tool, offering a favorable gene editing profile compared to other Cas9-based approaches. Here we report new nCas9-DNA polymerase fusion proteins to create chimeric oligonucleotide-directed editing (CODE) systems for search-and-replace genome editing. Through successive rounds of engineering, we developed CODEMax and CODEMax(exo+) editors that achieve efficient genome modifications in human cells with low unintended edits. CODEMax and CODEMax(exo+) contain an engineered Bst DNA polymerase derivative known for its robust strand displacement ability. Additionally, CODEMax(exo+) features a 5 to 3 exonuclease activity that promotes effective strand invasion and repair outcomes favoring the incorporation of the desired edit. We demonstrate CODEs can perform small insertions, deletions, and substitutions with improved efficiency compared to PEMax at many loci. Overall, CODEs complement existing prime editors to expand the toolbox for genome manipulations without double-stranded breaks.

bioengineering↗