Articles | Volume 10, issue 1
https://doi.org/10.5194/bg-10-297-2013
https://doi.org/10.5194/bg-10-297-2013
Research article
 | 
22 Jan 2013
Research article |  | 22 Jan 2013

Response of bacterioplankton activity in an Arctic fjord system to elevated pCO2: results from a mesocosm perturbation study

J. Piontek, C. Borchard, M. Sperling, K. G. Schulz, U. Riebesell, and A. Engel

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Cited articles

Arrhenius, S.: Über die Reaktionsgeschwindigkeit bei der Inversion von Rohrzucker durch Säuren, Z. Phys. Chem., 4, 226–248, 1889.
Arrieta, J. M. and Herndl, G. J.: Changes in bacterial β-glucosidase diversity during a coastal phytoplankton bloom, Limnol. Oceanogr., 47, 549–599, 2002.
Baltar, F., Arístegui, J., Sintes, E., van Aken, H. M., Gasol, J. M., and Herndl, G. J.: Prokaryotic extracellular enzymatic activity in relation to biomass production and respiration in the mesopelagic and bathypelagic waters of the (sub)tropical Atlantic, Environ. Microbiol., 11, 1998–2014, 2009.
Billen, G. and Becquevorts, S.: Phytoplankton-bacterial relationship in the Antarctic Marine Ecosystem, Polar Res., 10, 245–253, 1991.
Bird, D. F. and Karl, D. M.: Uncoupling of bacteria and phytoplankton during the austral spring bloom in Gerlache Strait, Antarctic Peninsula, Aquat. Microb. Ecol., 19, 13–27, 1999.
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