
AbstractCoral disease outbreaks contribute to the ongoing degradation of reef ecosystems, however, microbial mechanisms underlying the onset and progression of most coral diseases are poorly understood. Black band disease (BBD) manifests as a cyanobacterial-dominated microbial mat that destroys coral tissues as it rapidly spreads over coral colonies. To elucidate BBD pathogenesis, we apply a comparative metagenomic and metatranscriptomic approach to identify taxonomic and functional changes within microbial lesions during in-situ development of BBD from a comparatively benign stage termed cyanobacterial patches. Results suggest that photosynthetic CO2-fixation in Cyanobacteria substantially enhances productivity of organic matter within the lesion during disease development. Photosynthates appear to subsequently promote sulfide-production by Deltaproteobacteria, facilitating the major virulence factor of BBD. Interestingly, our metagenome-enabled transcriptomic analysis reveals that BBD-associated cyanobacteria have a putative mechanism that enables them to adapt to higher levels of hydrogen sulfide within lesions, underpinning the pivotal roles of the dominant cyanobacterium within the polymicrobial lesions during the onset of BBD. The current study presents sequence-based evidence derived from whole microbial communities that unravel the mechanism of development and progression of BBD.
Water microbiology, PROTEIN, HYDROGEN-SULFIDE, Sulfides, Cyanobacteria, Models, Biological, Article, Microbial ecology, 106005 Bioinformatik, SDG 13 - Climate Action, Animals, TOLERANCE, Photosynthesis, Multidisciplinary, CLIMATE-CHANGE, GREAT-BARRIER-REEF, PHOTOSYNTHESIS, Gene Expression Profiling, CONSORTIUM, Genomics, CYANOBACTERIA, Anthozoa, 1000 General, SDG 13 – Maßnahmen zum Klimaschutz, POPULATIONS, Metagenome, BACTERIAL COMMUNITIES, Metagenomics, 106005 Bioinformatics, Transcriptome
Water microbiology, PROTEIN, HYDROGEN-SULFIDE, Sulfides, Cyanobacteria, Models, Biological, Article, Microbial ecology, 106005 Bioinformatik, SDG 13 - Climate Action, Animals, TOLERANCE, Photosynthesis, Multidisciplinary, CLIMATE-CHANGE, GREAT-BARRIER-REEF, PHOTOSYNTHESIS, Gene Expression Profiling, CONSORTIUM, Genomics, CYANOBACTERIA, Anthozoa, 1000 General, SDG 13 – Maßnahmen zum Klimaschutz, POPULATIONS, Metagenome, BACTERIAL COMMUNITIES, Metagenomics, 106005 Bioinformatics, Transcriptome
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