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Biology subjects

Giannopoulos, G.

Publications and source records attributed to Giannopoulos, G..

2 recordsLinked to original sources

Response relationships between CO2, CH4 and N2O emissions and microbial functional groups in wetland sediments after trace metal addition.

We investigated the effects of trace metal additions on microbial nitrogen and carbon cycling using freshwater wetland sediment microcosms amended with M concentrations of copper (Cu), molybdenum (Mo), iron (Fe), and all combinations. In addition to monitoring inorganic nitrogen transformations (NO3-, NO2-, N2O, NH4+) and carbon mineralization (CO2, CH4), we tracked changes in functional gene abundance associated with denitrification (nirS, nirK, nosZ), DNRA (nrfA), and methanogenesis (mcrA). Greater availability of Cu led to more complete denitrification (i.e., less N2O accumulation) and a higher abundance of the nirK and nosZ genes, which encode for Cu-dependent reductases. We found sparse evidence of DNRA activity and no consistent effect on CO2 production. Contrary, net CH4 production was stimulated by the trace metal amendments and the Mo additions, in particular, led to increased mcrA gene abundance. Taken together, these findings demonstrate that trace metal effects on microbial physiology, which have heretofore only been studied in pure culture, can impact community-level function. We observed direct and indirect effects on both nitrogen and carbon biogeochemistry that culminated in increased production of greenhouse gasses, and the shifts in functional group abundance that we documented suggest these responses may have been mediated through changes in microbial community composition. Overall, this work supports a more holistic consideration of metal effects on environmental microbial communities that recognizes the key role that metal limitation plays in microbial physiology.

ecology

A simple and effective sampler to collect undisturbed cores from tidal marshes

Core sampling is a common procedure in wetland ecology. PVC tubes are widely used to collect soil cores; however several studies fail to describe even the most typical characteristics of their sampling auger. This work aims to fill this gap and provide a simple and standardized core sampler design. A simple and inexpensive sampler is described for field use. Its main advantages are: 1) extraction of undisturbed cores; 7.6 cm diameter and up to 100 cm depth, 2) it is light-weight, sturdy and reliable, 3) it is made from widely available PVC items and 4) it requires minimal skills to assemble. The sampler is introduced in the wetland soil, by rotation, to the desired depth; the tooth-like edge can cut and penetrate through the dense root systems. The sampler is capped with an industrial-type stopper, and pulled up. The core is held in the sampler by suction - negative pressure. A plunger is then used to slowly remove the soil - core and sub - samples are collected. Alternatively, both ends of sampler could be sealed and taken to the lab. An 8 cm long sub-sample was adequate for soil physical, biogeochemical and molecular analysis. The sampler has been tested for 2 years with more than 200 cores taken from tidal wetlands in Chesapeake Bay, Virginia, USA. A negative correlation between salinity and organic matter content at 3 - 5 and 8 - 10 cm was found. For the deeper samples (48 - 50 cm), a positive correlation between salinity and organic matter was observed. The sampler worked satisfactory and it required no maintenance besides cleaning.

ecology