bioRxiv Science⌕ Search

Biology subjects

Agullo, F.

Publications and source records attributed to Agullo, F..

2 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↗

Latent endogenous viral elements drive active infection and inheritance in a multicellular host

Endogenous viral elements (EVEs) inserted in host genomes are often regarded as inert relics of past infections. Whether they can retain infective potential and contribute to active viral cycles has remained unresolved. Here, we demonstrate that EVEs in the brown alga Ectocarpus can reactivate and drive productive viral infections. Using long-read sequencing and transcriptomics, we identify full-length, transcriptionally active giant viruses integrated within the host genome. Reactivation of these elements is specific to reproductive cells, transforming gametangia into virus-producing structures, and viral symptoms strictly correlate to the presence of active EVEs. Genetic analyses show that these elements are stably inherited, while their activation is precisely regulated by developmental and environmental cues. By resolving the genomic integration sites, we propose a mechanism for Phaeovirus integration and replication. This work provides the first direct evidence that giant EVEs can reactivate, replicate, and transmit both horizontally and vertically in a multicellular eukaryote, establishing a new model to explore latency, inheritance and the evolutionary impact of large dsDNA viruses.

genetics↗