Colonization in the Photic Zone and Subsequent Changes during Sinking Determine Bacterial Community Composition in Marine Snow
<jats:title>ABSTRACT</jats:title> <jats:p> Due to sampling difficulties, little is known about microbial communities associated with sinking marine snow in the twilight zone. A drifting sediment trap was equipped with a viscous cryogel and deployed to collect intact marine snow from depths of 100 and 400 m off Cape Blanc (Mauritania). Marine snow aggregates were fixed and washed <jats:italic>in situ</jats:italic> to prevent changes in microbial community composition and to enable subsequent analysis using catalyzed reporter deposition fluorescence <jats:italic>in situ</jats:italic> hybridization (CARD-FISH). The attached microbial communities collected at 100 m were similar to the free-living community at the depth of the fluorescence maximum (20 m) but different from those at other depths (150, 400, 550, and 700 m). Therefore, the attached microbial community seemed to be “inherited” from that at the fluorescence maximum. The attached microbial community structure at 400 m differed from that of the attached community at 100 m and from that of any free-living community at the tested depths, except that collected near the sediment at 700 m. The differences between the particle-associated communities at 400 m and 100 m appeared to be due to internal changes in the attached microbial community rather than <jats:italic>de novo</jats:italic> colonization, detachment, or grazing during the sinking of marine snow. The new sampling method presented here will facilitate future investigations into the mechanisms that shape the bacterial community within sinking marine snow, leading to better understanding of the mechanisms which regulate biogeochemical cycling of settling organic matter. </jats:p>
AWI Organizations > Climate Sciences > Junior Research Group: SEAPUMP
Atlantic Ocean
Atlantic Ocean > North Atlantic Ocean > Northeast Atlantic Ocean (40w)