Origin, Enzymatic Response and Fate of Dissolved Organic Matter During Flood and Non-flood Conditions in a River-floodplain System of the Danube (Austria)
Overview
Authors
Affiliations
Spectroscopic techniques and extracellular enzyme activity measurements were combined with assessments of bacterial secondary production (BSP) to elucidate flood-pulse-linked differences in carbon (C) sources and related microbial processes in a river-floodplain system near Vienna (Austria). Surface connection with the main channel significantly influenced the quantity and quality of dissolved organic matter (DOM) in floodplain backwaters. The highest values of dissolved organic carbon (DOC) and chromophoric DOM (CDOM) were observed during the peak of the flood, when DOC increased from 1.36 to 4.37 mg l and CDOM from 2.94 to 14.32 m. The flood introduced DOC which consisted of more allochthonously-derived, aromatic compounds. Bacterial enzymatic activity, as a proxy to track the response to changes in DOM, indicated elevated utilization of imported allochthonous material. Based on the enzyme measurements, new parameters were calculated: metabolic effort and enzymatic indices (EEA 1 and EEA 2). During connection, bacterial glucosidase and protease activity were dominant, whereas during disconnected phases a switch to lignin degradation (phenol oxidase) occurred. The enzymatic activity analysis revealed that flooding mobilized reactive DOM, which then supported bacterial metabolism. No significant differences in overall BSP between the two phases were detected, indicating that heterogeneous sources of C sufficiently support BSP. The study demonstrates that floods are important for delivering DOM, which, despite its allochthonous origin, is reactive and can be effectively utilized by aquatic bacteria in this river-floodplain systems. The presence of active floodplains, characterized by hydrological connectivity with the main channel, creates the opportunity to process allochthonous DOC. This has potential consequences for carbon flux, enhancing C sequestration and mineralization processes in this river-floodplain system.
Oh H, Choi J Int J Environ Res Public Health. 2022; 19(9).
PMID: 35564354 PMC: 9101428. DOI: 10.3390/ijerph19094958.
Yeh T, Krennmayr K, Liao C, Ejarque E, Schomakers J, Huang J Freshw Biol. 2020; 65(11):1973-1988.
PMID: 33288968 PMC: 7689783. DOI: 10.1111/fwb.13593.
Mayr M, Besemer K, Sieczko A, Demeter K, Peduzzi P Aquat Sci. 2020; 82(2):28.
PMID: 32165802 PMC: 7045780. DOI: 10.1007/s00027-020-0700-x.
Aquatic methane dynamics in a human-impacted river-floodplain of the Danube.
Sieczko A, Demeter K, Singer G, Tritthart M, Preiner S, Mayr M Limnol Oceanogr. 2016; 61(Suppl 1):S175-S187.
PMID: 27881883 PMC: 5117262. DOI: 10.1002/lno.10346.
Virus ecology of fluvial systems: a blank spot on the map?.
Peduzzi P Biol Rev Camb Philos Soc. 2015; 91(4):937-949.
PMID: 26105126 PMC: 5055098. DOI: 10.1111/brv.12202.