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Raphalen, M.

Publications and source records attributed to Raphalen, M..

3 recordsLinked to original sources

Endogenous gene tagging in the model brown alga Ectocarpus using a simplified CRISPR/Cas method

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.

developmental biology↗

PKN is a sex- and species-specific fertilization factor in brown algae

Fertilization, the union of male and female gametes, is central to sexual reproduction, yet the molecular mechanisms that ensure partner recognition and enforce species specificity remain elusive. Here we identify PKN, a previously uncharacterized transmembrane protein expressed exclusively in female gametes of brown algae, as an essential determinant of fertilization. Loss of PKN abolishes fertilization without affecting earlier mating steps, including gamete attraction, placing its function as a key mediator of male-female recognition. PKN contains extracellular {beta}-propeller and mucin-like domains that are enriched in predicted glycosylation sites and rapidly evolving, consistent with a role in species-specific cell-cell recognition. Notably, PKN enforces reproductive isolation within the genus Scytosiphon by preventing interspecific fertilization. Together, these findings uncover a female-encoded recognition mechanism in brown algae and reveal protein-glycan interfaces as a conserved strategy for enforcing sex- and species-specific fertilization across Eukaryotes.

developmental biology↗

Efficient CRISPR Cas genome editing in brown algae

Brown algae represent the third most complex lineage to evolve multicellularity, independently from plants and animals. However, functional studies of their development, evolution, and biology have been constrained by the lack of efficient and scalable genome editing tools. Here, we report a robust, high-efficiency, and transgene-free CRISPR-Cas12-based genome editing method applicable across four ecologically and biotechnologically important brown algal species. Using Ectocarpus as a model, we optimized a PEG-mediated RNP delivery system employing a temperature-tolerant Cas12 variant, achieving reproducible, high-efficiency editing across multiple loci without the need for cloning or specialized equipment. As proof of concept, we precisely recapitulated the hallmark imm mutant phenotype by editing the IMMEDIATE UPRIGHT (IMM) locus, a phenotype previously described only from a rare spontaneous mutation. APT/2-FA-based selection further improved specificity with minimal false positives. The protocol was readily transferrable to other species, including kelps long considered recalcitrant to transformation. This platform now makes functional genomics accessible in brown algae, enabling mechanistic dissection of developmental processes, life cycle transitions, and the independent origins of complex multicellularity. Our work enables the broader adoption of brown algae as experimental models and provides a valuable platform for marine biotechnology and evolutionary research. MotivationAlthough most of biodiversity on Earth lives in oceans, a significant proportion of its organisms remain largely uncharacterized. Brown algae represent one of such understudied group of marine photosynthetic eukaryotes. Despite their importance as emerging models for developmental evolution and blue biotechnology, functional genomics in brown algae has remained largely inaccessible due to a lack of efficient and scalable genome editing tools. Our aim is to democratize genome editing in brown algae by developing a high-efficiency, transgene-free protocol that works across multiple species, without the need for specialized equipment. This high-efficiency method fully enables the field of functional genomics in an unexplored multicellular lineage. HighlightsO_LIHigh-efficiency, low-cost genome editing in brown algae without specialized equipment. C_LIO_LI{middle dot}Applicable to non-model species, including those of economic importance. C_LI

molecular biology↗