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Kalsang, T.

Publications and source records attributed to Kalsang, T..

2 recordsLinked to original sources

Validated CRISPR/Cas9 guide RNAs targeting neurodevelopmental genes in the tunicate Ciona robusta

The development of the central nervous system (CNS) depends on tightly regulated gene expression programs that guide neural progenitor differentiation and neuronal subtype specification. The tunicate Ciona robusta provides a powerful and simplified model for dissecting the genetic control of nervous system development, with a larval CNS composed of just over 200 neurons and sensory cells. Although CRISPR/Cas9-mediated mutagenesis is now routinely used in Ciona, validated single-guide RNAs (sgRNAs) have yet to be validated for key neural genes. Here, we report the design and experimental validation of 25 novel sgRNAs targeting eight conserved genes encoding conserved proteins involved in neurodevelopment and neural function, including six transcription factors (Cdx, Foxb, Sox1/2/3, Dmbx, Engrailed, and Mnx) and two neural effector genes (Tyrosinase and Slc18a3/VAChT). Candidate sgRNAs were selected using CRISPOR and tested for mutagenesis efficiency using Illumina-based target site amplicon sequencing. All sgRNAs induced insertions or deletions at their target loci, with most genes yielding at least one sgRNA with mutagenesis efficacy exceeding 30%, with the exception of Dmbx, for which maximal efficacy reached 25%. We further compared measured mutagenesis rates with predicted Doench 16 and Doench Ruleset 3 (RS3) scores, observing a modest but improved correlation with RS3 predictions. Based on these results, we recommend considering both scoring algorithms, with RS3 potentially offering improved predictive value for Ciona.

developmental biology↗

Regulation of motor neuron differentiation in the Ciona larva

Here we investigate the gene regulatory networks responsible for the differentiation of cholinergic neurons in the Ciona larval motor ganglion, which functions as the organisms central pattern generator for swimming and dispersal. We demonstrate conserved roles motor neuron-enriched transcription factors Neurogenin and Onecut, with Neurogenin likely sitting atop the regulatory cascade. We also identify a key role for the transcription factor Nkx6 in specifying one motor neuron subtype, Motor Neuron 1 (MN1), and show that the secreted Wnt pathway inhibitor Dkk3 is required by MN1 for its unique neuromuscular endplates. We propose that Dkk3 interacts with LRP receptors in target muscle cells, through conserved NxI/V/F motifs shared with another key secreted neuromuscular synapse effector, Agrin. Taken together, our results provide critical insights into the development and evolution of cholinergic neurons involved in chordate locomotion.

developmental biology↗