A transgenic Lytechinus pictus line that constitutively and ubiquitously expresses a large fragment of mNeonGreen is used, providing 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.
Abstract
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.
Brown algae represent one of the few eukaryotic lineages to have independently evolved complex multicellularity, providing a powerful comparative system for investigating the molecular and evolutionary principles underlying multicellular development. Ectocarpus has emerged as the principal model for this lineage, supported by extensive genomic and transcriptomic resources. However, mechanistic and functional studies have remained limited by the available reverse-genetic tools. While recent CRISPR-Cas developments have enabled targeted gene knock-outs, the lack of knock-in (KI) approaches for endogenous protein tagging and precise genomic insertion remains a major experimental bottleneck. Here, we establish a comprehensive CRISPR-Cas genome-engineering framework for Ectocarpus that enables both targeted gene disruption and precise genomic insertion. We demonstrate efficient knock-in of multiple peptide tags at endogenous loci, enabling direct analysis of native proteins. By combining robust gene knock-out with endogenous protein tagging, this framework substantially expands the experimental possibilities for brown algal research and establishes Ectocarpus as a genetically tractable system for functional genomics, providing a foundation for genome engineering across stramenopiles.
Alexandre Paix, Morgane Raphalen, Elena Avdievich et al.· bioRxiv· 0 citations
MCCas is established as a promising gene editing tool with enhanced ls-KI capacity and relies on the canonical HR pathway, as inhibition of key processes such as end resection and strand invasion abolished the enhancement.
This study establishes a streamlined and highly efficient framework for precise insertional mutagenesis and double-mutant generation in Ulva, thereby expanding the genetic engineering toolkit for this macroalga.
K. Ichihara, Chikako Nagasato, T. Yamazaki et al.· Phycology Journal· 0 citations
The potential of these CRISPR-Cas9 systems to serve as a robust foundation for the functional genomics and metabolic engineering of A. limacinum is demonstrated.
Kai Tomita, Yuji Nishida, D. Matsumoto et al.· Scientific Reports· 0 citations
Findings establish Cas7-11 as a precise and efficient RNA knockdown tool for functional studies in embryonic development and stem cell biology, providing a versatile alternative to DNA-based gene-editing approaches.
Huan Yan, Imtiaz Ul Hassan, Kai Yan et al.· Cell & Bioscience· 0 citations
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