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Hernandez-Huertas, L.

Publications and source records attributed to Hernandez-Huertas, L..

3 recordsLinked to original sources

Rab8a-positive vesicles transport Wnt8a along cytonemes in zebrafish embryogenesis.

Wnt signalling is a conserved pathway that orchestrates key developmental processes by regulating cell fate, proliferation, and tissue organisation. While the production and secretion of Wnt ligands are well characterised, less is known about how lipid-modified Wnts are delivered for long-range communication. Recently, cytonemes - actin-based signalling filopodia - have been identified as transporters of Wnts over distances to target specific cells in embryogenesis. Here, we characterise Rab8a-dependent vesicular trafficking as a crucial step in this process. Using human cell lines and zebrafish embryos, we show that Wnt ligands, such as Wnt8a, are transported with their carrier protein Wntless (Wls) in Rab8a-positive vesicles along cytonemes, where they fuse at the tips to enable hand-over and signal activation in neighbouring cells. Disruption of Rab8a function results in the intracellular retention of Wnt8a, reduces Wnt spreading and paracrine signalling, and alters embryonic patterning, consistent with reduced Wnt/{beta}-catenin function. Conversely, Rab8a activation enhances Wnt8a dissemination, leading to increased long-range signalling and, consequently, patterning defects in embryogenesis. Our findings uncover a dedicated intracellular trafficking route for Wnt delivery to and along cytonemes, offering new insights into how the spatial precision of Wnt spreading in vertebrate tissues is achieved.

developmental biology↗

Enhanced RNA-targeting CRISPR-Cas technology in zebrafish

CRISPR-Cas13 systems are widely used in basic and applied sciences. However, its application has recently generated controversy due to collateral activity in mammalian cells and mouse models. Moreover, its efficiency could be improved in vivo. Here, we optimized transient formulations as ribonucleoprotein complexes or mRNA-gRNA combinations to enhance the CRISPR-RfxCas13d system in zebrafish. We i) used chemically modified gRNAs to allow more penetrant loss-of-function phenotypes, ii) improved nuclear RNA-targeting, and iii) compared different computational models and determined the most accurate to predict gRNA activity in vivo. Furthermore, we demonstrated that transient CRISPR-RfxCas13d can effectively deplete endogenous mRNAs in zebrafish embryos without inducing collateral effects, except when targeting extremely abundant and ectopic RNAs. Finally, we implemented alternative RNA-targeting CRISPR-Cas systems with reduced or absent collateral activity. Altogether, these findings contribute to CRISPR-Cas technology optimization for RNA targeting in zebrafish through transient approaches and assist in the progression of in vivo applications.

developmental biology↗

CRISPR-RfxCas13d screening uncovers Bckdk as a post-translational regulator of the maternal-to-zygotic transition in teleosts

The Maternal-to-Zygotic transition (MZT) is a reprograming process encompassing zygotic genome activation (ZGA) and the clearance of maternally-provided mRNAs. While some factors regulating MZT have been identified, there are thousands of maternal RNAs whose function has not been ascribed yet. Here, we have performed a proof-of-principle CRISPR-RfxCas13d maternal screening targeting mRNAs encoding protein kinases and phosphatases in zebrafish and identified Bckdk as a novel post-translational regulator of MZT. Bckdk mRNA knockdown caused epiboly defects, ZGA deregulation, H3K27ac reduction and a partial impairment of miR-430 processing. Phospho-proteomic analysis revealed that Phf10/Baf45a, a chromatin remodeling factor, is less phosphorylated upon Bckdk depletion. Further, phf10 mRNA knockdown also altered ZGA and Phf10 constitutively phosphorylated rescued the developmental defects observed after bckdk mRNA depletion. Altogether, our results demonstrate the competence of CRISPR-RfxCas13d screenings to uncover new regulators of early vertebrate development and shed light on the post-translational control of MZT mediated by protein phosphorylation.

developmental biology↗