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Jenniches, C.

Publications and source records attributed to Jenniches, C..

3 recordsLinked to original sources

Efficient Endogenous Tagging in the Sea Urchin, Lytechinus pictus, Using CRISPR/Cas9-mediated Split-Fluorescent Protein Knock-In

Precise knock-in of fluorescent reporters is a powerful tool for studying the dynamic cellular and molecular processes of embryogenesis. However, conventional CRISPR-Cas9 knock-in of large inserts, such as full-length fluorescent proteins, is inefficient. This has limited its application in many emerging model systems, including sea urchins. Here, we overcome this barrier using a transgenic Lytechinus pictus line that constitutively and ubiquitously expresses a large fragment of mNeonGreen (mNG3K1-10). In this line, fluorescence is only reconstituted when CRISPR-mediated knock-in delivers mNG211, the 11th beta strand of the fluorescent protein, to complement the constitutively expressed fragment. Because this strategy requires integrating only the short 11th-strand, together with short homology arms ([~]130 nt total), by homology directed repair, it circumvents the size constraints that limit conventional full-length reporter knock-ins using CRISPR. Using this approach, we achieved integration efficiencies of 14-22%, roughly an order of magnitude higher than those obtained with full-length fluorescent protein knock-ins. This provides a streamlined, scalable method for endogenous protein visualization in echinoderm embryos and a valuable resource for studying gene function, morphogenesis, and toxicant response in this classic developmental model.

developmental biology↗

The Establishment of Cell-Type Specific Gene Regulation in the Sea Urchin Embryo

Cell-fate commitment in metazoan development relies on precise gene regulatory programs. This study presents a comprehensive single-cell atlas of gene expression (scRNA-seq), nascent transcription (scSLAM-seq), and chromatin accessibility (scATAC-seq) in the purple sea urchin, Strongylocentrotus purpuratus, from early cleavage to pluteus larva stages. Our findings reveal a dynamic regulatory landscape with extensive usage of distal and intronic regulatory elements, which often exhibit cell-type-specific motifs and accessibility profiles that closely track gene expression. We identify a major wave of zygotic genome activation (ZGA) at the 128-cell stage, coinciding with the loss of developmental plasticity, alongside evidence of restricted, lineage-specific gene activation preceding widespread ZGA. Motif analysis highlights distinct regulatory grammars for these early accessible regions. Regulatory element usage largely clusters by germ layer, indicating shared accessibility among related cell types. We delve into the regulatory intricacies of neurons and skeletogenic cells. Sea urchin neurodevelopment proceeds through three distinct lineages, utilizing transcription factors with conserved roles in mammalian neurogenesis. Surprisingly, skeletogenic cells show significant transcriptional and regulatory diversity across their subpopulations, and we identify novel genes associated with calcification. This research offers unprecedented insights into the dynamic regulatory genome of a non-chordate deuterostome, highlighting both conserved principles of gene regulation and unique features that underscore the sea urchins importance as a model for understanding developmental and evolutionary genomics in ecologically critical marine species.

developmental biology↗

Automated, high-throughput in-situ hybridization of Lytechinus pictus embryos

Despite the reach of in situ hybridization (ISH) in developmental biology, it has rarely been used at scale. The major limitation has been the throughput of the assay, which typically relies upon labor intensive manual steps. The goal of this study was to develop a fully automated hybridization chain reaction (HCR) pipeline capable of large-scale gene expression pattern profiling, with dramatically reduced cost and effort, in the sea urchin Lytechinus pictus. Our resulting pipeline, which we term high throughput (HT)-HCR, can process 192 gene probe sets on whole-mount embryos within 32 hours. The unique qualities of the sea urchin embryo enabled us to automate the entire HCR assay in a 96-well plate format, and utilize highly miniaturized reaction volumes, a general purpose robotic liquid handler, and automated confocal microscopy. From this approach we produced high quality localization data for 101 target genes across three developmental stages of L. pictus. The results reveal the localization of previously undescribed physiological genes, as well as canonical developmental transcription factors. HT-HCR represents a log order increase in the rate at which spatial transcriptomic data can be resolved in the sea urchin. This study paves the way for localization of understudied genes and for sophisticated perturbation analysis. Summary StatementWe developed an automated high-throughput HCR pipeline to rapidly map expression of 101 genes in sea urchin embryos, enabling large-scale discovery of novel developmental gene expression patterns.

developmental biology↗