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Hesketh-Best, P.

Publications and source records attributed to Hesketh-Best, P..

2 recordsLinked to original sources

Globally distributed bacteriophage genomes reveal mechanisms of tripartite phage-bacteria-coral interactions

Reef-building corals depend on an intricate community of microorganisms for functioning and resilience. Bacteriophages are the most abundant and diverse members of these communities, yet very little is known about their functions in the holobiont due to methodological limitations that have prevented the recovery of high-quality viral genomes and bacterial host assignment from coral samples. Here, we introduce a size-fractionation approach which increased bacterial and viral recovery in coral metagenomes by 9-fold and 3-fold, respectively, and enabled the assembly and binning of bacterial and viral genomes at relatively low sequencing coverage. We combined these viral genomes with those derived from 677 publicly available metagenomes, viromes, and bacterial isolates from stony corals to build a Global Coral Virome Database of over 20,000 viral genomes and genome fragments spanning four viral realms. The tailed bacteriophage families Kyanoviridae and Ackermannviridae were the most abundant, replacing the since-abolished groups Podoviridae and Siphoviridae. Prophage and CRISPR spacer linkages between these viruses and 626 bacterial metagenome-assembled genomes and bacterial isolates showed that most viruses infected Alphaproteobacteria, the most abundant class, and less abundant taxa like Halanaerobiia and Bacteroidia. A host-phage-gene network identified keystone viruses with the genomic capacity to eavesdrop and modulate bacterial quorum sensing, interfere with sulfur cycling, and direct molecular interactions with eukaryotic cells through the release of extracellular effectors. This study reveals the basis of bacteriophage roles in modulating ecological interactions not only among bacterial community members but also directly affecting tripartite interactions with the coral host and its endosymbiotic algae.

genomics↗

Evolutionary and biological mechanisms underpinning chitin degradation in aquatic fungi

Fungal biology underpins major processes in ecosystems. The Chytridiomycota (chytrids) is a group of early-diverging fungi, many of which function in ecosystems as saprotrophs processing high molecular weight biopolymers, however the mechanisms underpinning chytrid saprotrophy are poorly understood. Genome sequences from representatives across the group and the use of model chytrids offers the potential to determine new insights into their evolution. In this study, we focused on the biology underpinning chitin saprotrophy, a common ecosystem function of aquatic chytrids. The genomes of chitinophilic chytrids have expanded inventories of glycoside hydrolase genes responsible for chitin processing, complemented with bacteria-like chitin-binding modules (CBMs) that are absent in other chytrids. In the model chitinophilic saprotroph Rhizoclosmatium globosum JEL800, the expanded repertoire of chitinase genes is diverse and almost half were detected as proteins in the secretome when grown with chitin. Predicted models of the secreted chitinases indicate a range of active site sizes and domain configurations. We propose that increased diversity of secreted chitinases is an adaptive strategy that facilitates chitin degradation in the complex heterologous organic matrix of the arthropod exoskeleton. Free swimming R. globosum JEL800 zoospores are chemotactic to the chitin monomer N-acetylglucosamine and accelerate zoospore development when grown with chitin. Our study sheds light on the underpinning biology and evolutionary mechanisms that have supported the saprotrophic niche expansion of some chytrids to utilise lucrative chitin-rich particles in aquatic ecosystems and is a demonstration of the adaptive capability of this successful fungal group.

evolutionary biology↗