Halogenated compound secreted by marine bacteria halts larval urchin development


Meeting Abstract

P1-142  Saturday, Jan. 4  Halogenated compound secreted by marine bacteria halts larval urchin development AKKIPEDDI, SMK*; XU, M; CHAN, KYK; Swarthmore College, Swarthmore, PA; Swarthmore College, Swarthmore, PA; Swarthmore College, Swarthmore, PA sakkipe1@swarthmore.edu

Marine bacteria are ubiquitous and yet their ecological functions have not been fully characterized. The globally distributed Pseudoalteromonas genus, well known for their pervasive biofilms, produce a variety of potentially bioactive yet understudied halogenated organic products. One such secreted compound, 2,3,4,5-tetrabromopyrrole (TBP), has been found to be biocidal for several taxa of plankton while stimulating the settlement and metamorphosis of coral at nanomolar doses. Here, we tested whether the presence of TBP affects early development in sea urchins that are not in direct contact with a benthic microbial film. Lytechinus variegatus embryos were exposed to varying TBP concentrations for different durations of time over the first 48 hours post-fertilization. Concentrations as low as 500nM markedly reduced larval survivorship and retarded development. These deleterious effects became more pronounced as the concentration and duration of exposure to TBP were increased. Impairments in development when exposed to TBP appeared to be reversible, provided low exposure concentrations (< 500nM-1000nM) for limited exposure durations (< 1-4 hours). Immunofluorescence staining showed spindle defects in dividing embryos when exposed to TBP at high concentrations, which may contribute to mortality and impaired growth. Therefore, while TBP and other bacterial compounds like it may serve as settlement cues for corals, their cytotoxicity to single-cell algae and larval urchins could hint at the dangers of the benthos to developing embryos. If true, such compounds, along with the bacterial taxa that produce them, likely play underappreciated roles in the ecology, and potentially the evolution, of planktonic development in macroinvertebrates.

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