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1.
Sci Total Environ ; 829: 154576, 2022 Jul 10.
Article in English | MEDLINE | ID: mdl-35302017

ABSTRACT

We intend to assess how macrophyte cover affects planktonic microbial communities by changing the physical and chemical environment, and how macrophyte-derived DOC affects the balance between autotrophy and heterotrophy/chemoorganotrophy in a shallow lake. The structure and production of phytoplankton and bacterioplankton in the open water of a large shallow lake and in the littoral zone were compared at two sampling stations with different macrophyte cover. According to the obtained results, uncoupling between bacterioplankton and phytoplankton was observed due to the high content of organic carbon of emergent macrophyte origin. While phytoplankton were regulated by TSS, bacterioplankton (in both heterotrophic and photoheterotrophic forms) were determined by dissolved organic carbon. As a result of these processes, the littoral and pelagic zones in the lake are completely separated from each other. In open water the autotrophic processes dominated, but at the sampling stations inside the reed belt, the metabolic processes shifted in the direction of chemoorganotrophy. Our results suggest that increase of macrophyte cover in shallow water bodies will increase the significance of microbe-based carbon pathways and weakens the efficiency of carbon transport from primary producers to higher trophic levels through the planktonic food chain.


Subject(s)
Microbiota , Plankton , Bacteria/metabolism , Carbon/metabolism , Ecosystem , Lakes/microbiology , Phytoplankton/metabolism , Water
2.
Sci Rep ; 10(1): 19871, 2020 11 16.
Article in English | MEDLINE | ID: mdl-33199773

ABSTRACT

Astatic soda pans of the Pannonian Steppe are unique environments with respect to their multiple extreme physical and chemical characteristics (high daily water temperature fluctuation, high turbidity, alkaline pH, salinity, polyhumic organic carbon concentration, hypertrophic state and special ionic composition). However, little is known about the seasonal dynamics of the bacterial communities inhabiting these lakes and the role of environmental factors that have the main impact on their structure. Therefore, two soda pans were sampled monthly between April 2013 and July 2014 to reveal changes in the planktonic community. By late spring in both years, a sudden shift in the community structure was observed, the previous algae-associated bacterial communities had collapsed, resulting the highest ratio of Actinobacteria within the bacterioplankton (89%, with the dominance of acIII-A1 lineage) ever reported in the literature. Before these peaks, an extremely high abundance (> 10,000 individuum l-1) of microcrustaceans (Moina brachiata and Arctodiaptomus spinosus) was observed. OTU-based statistical approaches showed that in addition to algal blooms and water-level fluctuations, zooplankton densities had the strongest effect on the composition of bacterial communities. In these extreme environments, this implies a surprisingly strong, community-shaping top-down role of microcrustacean grazers.


Subject(s)
Actinobacteria/classification , Cladocera/microbiology , Copepoda/microbiology , Lakes/microbiology , Phytoplankton/microbiology , Zooplankton/microbiology , Actinobacteria/genetics , Actinobacteria/growth & development , Animals , DNA, Bacterial/genetics , Extreme Environments , Grassland , Herbivory , Phylogeny , Phytoplankton/classification , Salinity , Seasons , Sequence Analysis, DNA , Zooplankton/classification
3.
FEMS Microbiol Ecol ; 95(8)2019 08 01.
Article in English | MEDLINE | ID: mdl-31291460

ABSTRACT

Aerobic anoxygenic phototrophs (AAPs) are a group of photoheterotrophic bacteria common in natural waters. Here, AAP abundance and contribution to total bacterial abundance and biomass were investigated to test whether the trophic status of a lake or content of coloured dissolved organic matter (CDOM) play a role in determining AAP distribution and abundance in shallow inland lakes, with special focus on hypertrophic and polyhumic waters. Twenty-six different shallow lakes in Hungary were monitored. AAP abundance and biomass were determined by epifluorescence microscopy. The lakes exhibit a broad range of CDOM (2-7000 mg Pt L-1) and phytoplankton biomass (2-1200 µg L-1 chlorophyll a concentration). Very high AAP abundance (up to 3 × 107 cells mL-1) was observed in polyhumic and hypertrophic shallow lakes. AAP abundance was influenced by phytoplankton biomass and CDOM content, and these effects were interrelated. As determined, 40 µg L-1 chlorophyll a and 52 mg Pt L-1 CDOM are threshold levels above which these effects have a synergistic relationship. Hence, the observed high AAP abundance in some soda pans is a consequence of combined hypertrophy and high CDOM content. AAP contribution was influenced by total suspended solids (TSS) content: the success of AAP cells could be explained by high TSS levels, which might be explained by the decrease of their selective grazing control.


Subject(s)
Bacteria/isolation & purification , Bacteria/metabolism , Humic Substances/analysis , Water Microbiology , Biomass , Chlorophyll A/analysis , Heterotrophic Processes , Hungary , Lakes/chemistry , Lakes/microbiology , Phototrophic Processes , Phytoplankton/chemistry
4.
FEMS Microbiol Ecol ; 94(2)2018 02 01.
Article in English | MEDLINE | ID: mdl-29206918

ABSTRACT

Little is known about how various substances from living and decomposing aquatic macrophytes affect the horizontal patterns of planktonic bacterial communities. Study sites were located within Lake Kolon, which is a freshwater marsh and can be characterised by open-water sites and small ponds with different macrovegetation (Phragmites australis, Nymphea alba and Utricularia vulgaris). Our aim was to reveal the impact of these macrophytes on the composition of the planktonic microbial communities using comparative analysis of environmental parameters, microscopy and pyrosequencing data. Bacterial 16S rRNA gene sequences were dominated by members of phyla Proteobacteria (36%-72%), Bacteroidetes (12%-33%) and Actinobacteria (5%-26%), but in the anoxic sample the ratio of Chlorobi (54%) was also remarkable. In the phytoplankton community, Cryptomonas sp., Dinobryon divergens, Euglena acus and chrysoflagellates had the highest proportion. Despite the similarities in most of the measured environmental parameters, the inner ponds had different bacterial and algal communities, suggesting that the presence and quality of macrophytes directly and indirectly controlled the composition of microbial plankton.


Subject(s)
Lakes/microbiology , Lakes/parasitology , Phytoplankton/microbiology , Phytoplankton/parasitology , Actinobacteria/classification , Actinobacteria/genetics , Actinobacteria/isolation & purification , Bacteroidetes/classification , Bacteroidetes/genetics , Bacteroidetes/isolation & purification , Chlorobi/classification , Chlorobi/genetics , Chlorobi/isolation & purification , Cryptophyta/classification , Cryptophyta/genetics , Cryptophyta/isolation & purification , Euglena/classification , Euglena/genetics , Euglena/isolation & purification , Fresh Water/microbiology , Fresh Water/parasitology , Magnoliopsida/growth & development , Microbiota , Nymphaea/growth & development , Phylogeny , Phytoplankton/classification , Poaceae/growth & development , Proteobacteria/classification , Proteobacteria/genetics , Proteobacteria/isolation & purification , RNA, Ribosomal, 16S/genetics
5.
Plant Cell Rep ; 32(12): 1913-23, 2013 Dec.
Article in English | MEDLINE | ID: mdl-24013762

ABSTRACT

KEY MESSAGE: Nitric oxide improves copper tolerance via modulation of superoxide and hydrogen peroxide levels. This reflects the necessity of a well-coordinated interplay between NO and ROS during stress tolerance. Copper (Cu) excess causes toxicity and one probable consequence of this is the disturbance of cell redox state maintenance, inter alia, by reactive oxygen- (ROS) and nitrogen species (RNS). The objective of this paper was to examine the role of nitric oxide (NO) in Cu stress tolerance and its relationship with ROS in Arabidopsis. In agar-grown seedlings, concentration-dependent Cu accumulation was observed. The 5 µM Cu resulted in reduced cell viability in the NO overproducing nox1 and gsnor1-3 root tips compared to the wild-type (WT). In contrast, 25 and 50 µM Cu caused higher viability in these mutants, while in the NO-lacking nia1nia2 lower viability was detected than in the WT. The exogenous NO donor enhanced cell viability and scavenging endogenous NO decreased it in Cu-exposed WT seedlings. Besides, SNP in nia1nia2 roots led to the improvement of viability. The ascorbic acid-deficient mutants (vtc2-1, vtc2-3) possessing slightly elevated ROS levels proved to be Cu sensitive, while miox4 showing decreased ROS production was more tolerant to Cu than the WT. In nox1 and gsnor1-3, Cu did not induce superoxide formation, and H2O2 accumulation occurred only in the case of NO deficiency. Based on these, under mild stress NO intensifies cell injury, while in the case of severe Cu excess it contributes to better viability. ROS were found to be responsible for aggravation of Cu-induced damage. NO alleviates acute Cu stress via modulation of O2(·-) and H2O2 levels reflecting the necessity of a well-coordinated interplay between NO and ROS during stress tolerance.


Subject(s)
Arabidopsis/metabolism , Arabidopsis/physiology , Copper/toxicity , Nitric Oxide/pharmacology , Reactive Oxygen Species/metabolism , Adaptation, Physiological/drug effects , Arabidopsis/drug effects , Arabidopsis/growth & development , Ascorbic Acid/metabolism , Biological Transport/drug effects , Cell Survival/drug effects , Homeostasis/drug effects , Hydrogen Peroxide/metabolism , Mutation/genetics , Plant Roots/drug effects , Plant Roots/metabolism , Plant Shoots/drug effects , Plant Shoots/metabolism , Stress, Physiological/drug effects , Superoxides/metabolism
6.
Ecotoxicol Environ Saf ; 94: 179-89, 2013 Aug.
Article in English | MEDLINE | ID: mdl-23755862

ABSTRACT

Copper (Cu) is an essential microelement for growth and development, but in excess it can cause toxicity in plants. In this comparative study, the uptake and accumulation of Cu as well as the morphological and physiological responses of Indian mustard (Brassica juncea L. Czern.) and rapeseed (Brassica napus L.) roots to Cu treatment were investigated. The possible involvement of redox active molecules (reactive oxygen species and nitric oxide) and modification in cell wall structure associated with Cu-induced morphological responses were also studied. In short- and long-term treatments, B. juncea suffered more pronounced growth inhibition as compared with B. napus. In addition to the shortening of primary and lateral roots, the number and the density of the laterals were also decreased by Cu. Exposure to copper induced nitric oxide generation in the root tips and this event proved to be dependent on the duration of the exposure and on the plant species. In short- and long-term treatments, Indian mustard showed more significant activation of superoxide dismutase (SOD), inhibition of ascorbate peroxidase (APX) and oxidation of ascorbate (AsA) than B. napus. Moreover, H2O2-dependent lignification was also observed in the Cu-exposed plants. In longer term, significant AsA accumulation and callose deposition were observed, reflecting serious oxidative stress in B. juncea. Based on the morphological and physiological results, we conclude that rapeseed tolerates Cu excess better than Indian mustard.


Subject(s)
Brassica napus/physiology , Copper/toxicity , Mustard Plant/physiology , Plant Roots/drug effects , Soil Pollutants/toxicity , Adaptation, Physiological , Ascorbate Peroxidases/metabolism , Ascorbic Acid/metabolism , Brassica napus/anatomy & histology , Brassica napus/drug effects , Brassica napus/metabolism , Hydrogen Peroxide/metabolism , Mustard Plant/anatomy & histology , Mustard Plant/drug effects , Oxidation-Reduction , Oxidative Stress , Plant Roots/anatomy & histology , Plant Roots/physiology , Reactive Oxygen Species/metabolism , Superoxide Dismutase/metabolism
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