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Biology subjects

Maithani, P.

Publications and source records attributed to Maithani, P..

2 recordsLinked to original sources

A beneficial megaplasmid transforms an opportunistic bacterial pathogen to benefit coral by extending their thermal range

Resilient turbid coral reefs, found 1{degrees} north of the equator, experience fewer and less intense bleaching events despite being situated within the worlds busiest shipping port in highly urbanised Singapore. We hypothesised that bacteria within the coral holobiont play a role in maintaining coral diversity within this extreme environment by conferring traits that enhance host tolerance. Eleven Pseudovibrio isolates, whose genomes differ by only four SNPs, were isolated from the scleractinian coral Pachyseris speciosa. A [~]490 kbp megaplasmid (pCJH) was found in 7 of the 11 Pseudovibrio isolates. This study identified an opportunistic Pseudovibrio sp. pathogen of P. speciosa, accelerating bleaching disease. However, presence of the megaplasmid alters the ecological strategy of Pseudovibrio sp. toward mutualism, delaying coral bleaching. The megaplasmid enhances Pseudovibrios host colonisation and establishment of symbiosis through increased attachment and extends its bioactive genetic potential, but reduces fecundity. The Pseudovibrio genomes and megaplasmid encode several diffusible antibiotic biosynthetic gene clusters and contact-dependent inhibition mechanisms, with both types of inhibitory activity shown against local (i.e. P. speciosa) and type-strain Vibrio spp. Interaction analyses in experimentally heat-stressed corals revealed negative associations between Pseudovibrio and Vibrio ASVs corresponding to these cultured isolates. They also showed increased coral thermal tolerance by a full degree (1{degrees}C) when it is associated with the megaplasmid-bearing strain. Together, these findings support the Coral Probiotic Hypothesis that bacteria enhance coral resilience through chemical defense and identifies additional aspects to this symbiosis by a mobile genetic element which could play an important role in coral reef resilience.

microbiology↗

Uncoupling of seagrass host selection and succession for microbial guilds in meadow chronosequence

Succession is an ecosystem building process in which a habitat and its community interact predictably by increasing diversity, habitat engineering, and ultimately reaching a climax community, where other ecological processes influence its dynamic. Key to succession is the establishment of primary producing habitat forming species, which drives niche differentiation leading to increasing diversity. Here, we use the primary colonizing and habitat forming seagrass, Halophila ovalis, to demonstrate that it drives bacterial succession in a meadow ecosystem, and its microbiome, both rhizoplane and phylloplane, are under host selection. Many of the characteristics attributed to plants for habitat modification are microbial processes such as nitrogen fixation and sulfide detoxification and succession is often extrapolated to such processes. To determine if succession (increasing diversity) or selection (reducing diversity) drives changes in diversity (16S rRNA gene) or habitat modifying processes (nifH, soxB, aprA, dsrA), molecular analysis was performed along chronosequences (as a proxy for succession) of seagrass patches. Bacterial communities were sampled within the meadow ecosystem and the microbiomes of H. ovalis (both rhizoplane and phylloplane). Genes involved in biogeochemical cycling are differentially impacted within the microbiome and meadow sediments, with only nifH under succession. All genes from all niches sampled for community analysis are under directional community trajectories, despite being subjected to distinct ecological processes, signifying that many ecological processes, including succession and host association, drive community assemblage.

ecology↗