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(anteriormente2026-06-23
) en Dominance of small-sized phytoplankton in a Mediterranean eutrophic coastal lagoon
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| 94 | "name": "6db952af-243b-5fc1-87e7-7b86ac6ad5af", | 104 | "name": "6db952af-243b-5fc1-87e7-7b86ac6ad5af", | ||
| 95 | "notes": "The predator-prey relationship is generally size-specific | 105 | "notes": "The predator-prey relationship is generally size-specific | ||
| 96 | in the pelagic food webs. Phytoplankton cell size structure can | 106 | in the pelagic food webs. Phytoplankton cell size structure can | ||
| 97 | provide information on the successive levels of consumers and | 107 | provide information on the successive levels of consumers and | ||
| 98 | therefore on the energy that can flow towards the top consumers. This | 108 | therefore on the energy that can flow towards the top consumers. This | ||
| 99 | work focuses on phytoplankton cell size structure in a coastal lagoon | 109 | work focuses on phytoplankton cell size structure in a coastal lagoon | ||
| 100 | (Cabras Lagoon, Italy) considered one of the most important for | 110 | (Cabras Lagoon, Italy) considered one of the most important for | ||
| 101 | fishing productivity in the Mediterranean. The inter-annual and | 111 | fishing productivity in the Mediterranean. The inter-annual and | ||
| 102 | seasonal dynamics of picophytoplankton (Pico, cell size <3 \u03bcm) | 112 | seasonal dynamics of picophytoplankton (Pico, cell size <3 \u03bcm) | ||
| 103 | and Uterm\u00f6hl Fraction of Phytoplankton (UFP, cell size >3 | 113 | and Uterm\u00f6hl Fraction of Phytoplankton (UFP, cell size >3 | ||
| 104 | \u03bcm) were considered during almost three years in relation to the | 114 | \u03bcm) were considered during almost three years in relation to the | ||
| 105 | temporal dynamics of selected environmental variables and zooplankton. | 115 | temporal dynamics of selected environmental variables and zooplankton. | ||
| 106 | Small-sized cells with a mean linear cell size <10 \u03bcm and a mean | 116 | Small-sized cells with a mean linear cell size <10 \u03bcm and a mean | ||
| 107 | cell volume <103 \u03bcm3 mainly represented UFP along the entire | 117 | cell volume <103 \u03bcm3 mainly represented UFP along the entire | ||
| 108 | study period. This size class contributed the most to total | 118 | study period. This size class contributed the most to total | ||
| 109 | phytoplankton biomass (up to 86%) and density (up to 99%) during the | 119 | phytoplankton biomass (up to 86%) and density (up to 99%) during the | ||
| 110 | first part of the investigation period. A compositional change was | 120 | first part of the investigation period. A compositional change was | ||
| 111 | detected: smaller species of Chlorophyceae, Bacillariophyceae, | 121 | detected: smaller species of Chlorophyceae, Bacillariophyceae, | ||
| 112 | filamentous Cyanophyceae, and autotrophic nanoflagellates thrived in | 122 | filamentous Cyanophyceae, and autotrophic nanoflagellates thrived in | ||
| 113 | the second part of the study, replacing larger Mediophyceae that | 123 | the second part of the study, replacing larger Mediophyceae that | ||
| 114 | dominated UFP at the beginning. Picocyanobacteria rich in phycocyanin | 124 | dominated UFP at the beginning. Picocyanobacteria rich in phycocyanin | ||
| 115 | were the dominant taxa of Pico along the entire investigation period | 125 | were the dominant taxa of Pico along the entire investigation period | ||
| 116 | and this size class contributed the most to total phytoplankton | 126 | and this size class contributed the most to total phytoplankton | ||
| 117 | biomass (up to 30%) and density (up to 96%) at the end of the study. | 127 | biomass (up to 30%) and density (up to 96%) at the end of the study. | ||
| 118 | The observed shift towards different and even smaller UFP and Pico in | 128 | The observed shift towards different and even smaller UFP and Pico in | ||
| 119 | the second part of the study was most probably due to complex | 129 | the second part of the study was most probably due to complex | ||
| 120 | interactions between top-down and bottom-up effects. Indeed, an | 130 | interactions between top-down and bottom-up effects. Indeed, an | ||
| 121 | increased temperature, a decreased salinity and decreased | 131 | increased temperature, a decreased salinity and decreased | ||
| 122 | concentrations of nutrients (mainly ammonium and orthophosphate), as | 132 | concentrations of nutrients (mainly ammonium and orthophosphate), as | ||
| 123 | well as an increased grazing pressure of rotifers on the larger | 133 | well as an increased grazing pressure of rotifers on the larger | ||
| 124 | Mediophyceae were simultaneous with the changes detected in | 134 | Mediophyceae were simultaneous with the changes detected in | ||
| 125 | phytoplankton. The obtained results highlight a longer planktonic | 135 | phytoplankton. The obtained results highlight a longer planktonic | ||
| 126 | trophic web in Cabras Lagoon that includes small phytoplankton at the | 136 | trophic web in Cabras Lagoon that includes small phytoplankton at the | ||
| 127 | base, ciliates, rotifers, and copepods. This suggests low energy | 137 | base, ciliates, rotifers, and copepods. This suggests low energy | ||
| 128 | availability for planktivorous fish, with possible future relevant | 138 | availability for planktivorous fish, with possible future relevant | ||
| 129 | consequences for fishing activities in this coastal lagoon.", | 139 | consequences for fishing activities in this coastal lagoon.", | ||
| 130 | "notes_translated": { | 140 | "notes_translated": { | ||
| 131 | "es": "The predator-prey relationship is generally size-specific | 141 | "es": "The predator-prey relationship is generally size-specific | ||
| 132 | in the pelagic food webs. Phytoplankton cell size structure can | 142 | in the pelagic food webs. Phytoplankton cell size structure can | ||
| 133 | provide information on the successive levels of consumers and | 143 | provide information on the successive levels of consumers and | ||
| 134 | therefore on the energy that can flow towards the top consumers. This | 144 | therefore on the energy that can flow towards the top consumers. This | ||
| 135 | work focuses on phytoplankton cell size structure in a coastal lagoon | 145 | work focuses on phytoplankton cell size structure in a coastal lagoon | ||
| 136 | (Cabras Lagoon, Italy) considered one of the most important for | 146 | (Cabras Lagoon, Italy) considered one of the most important for | ||
| 137 | fishing productivity in the Mediterranean. The inter-annual and | 147 | fishing productivity in the Mediterranean. The inter-annual and | ||
| 138 | seasonal dynamics of picophytoplankton (Pico, cell size <3 \u03bcm) | 148 | seasonal dynamics of picophytoplankton (Pico, cell size <3 \u03bcm) | ||
| 139 | and Uterm\u00f6hl Fraction of Phytoplankton (UFP, cell size >3 | 149 | and Uterm\u00f6hl Fraction of Phytoplankton (UFP, cell size >3 | ||
| 140 | \u03bcm) were considered during almost three years in relation to the | 150 | \u03bcm) were considered during almost three years in relation to the | ||
| 141 | temporal dynamics of selected environmental variables and zooplankton. | 151 | temporal dynamics of selected environmental variables and zooplankton. | ||
| 142 | Small-sized cells with a mean linear cell size <10 \u03bcm and a mean | 152 | Small-sized cells with a mean linear cell size <10 \u03bcm and a mean | ||
| 143 | cell volume <103 \u03bcm3 mainly represented UFP along the entire | 153 | cell volume <103 \u03bcm3 mainly represented UFP along the entire | ||
| 144 | study period. This size class contributed the most to total | 154 | study period. This size class contributed the most to total | ||
| 145 | phytoplankton biomass (up to 86%) and density (up to 99%) during the | 155 | phytoplankton biomass (up to 86%) and density (up to 99%) during the | ||
| 146 | first part of the investigation period. A compositional change was | 156 | first part of the investigation period. A compositional change was | ||
| 147 | detected: smaller species of Chlorophyceae, Bacillariophyceae, | 157 | detected: smaller species of Chlorophyceae, Bacillariophyceae, | ||
| 148 | filamentous Cyanophyceae, and autotrophic nanoflagellates thrived in | 158 | filamentous Cyanophyceae, and autotrophic nanoflagellates thrived in | ||
| 149 | the second part of the study, replacing larger Mediophyceae that | 159 | the second part of the study, replacing larger Mediophyceae that | ||
| 150 | dominated UFP at the beginning. Picocyanobacteria rich in phycocyanin | 160 | dominated UFP at the beginning. Picocyanobacteria rich in phycocyanin | ||
| 151 | were the dominant taxa of Pico along the entire investigation period | 161 | were the dominant taxa of Pico along the entire investigation period | ||
| 152 | and this size class contributed the most to total phytoplankton | 162 | and this size class contributed the most to total phytoplankton | ||
| 153 | biomass (up to 30%) and density (up to 96%) at the end of the study. | 163 | biomass (up to 30%) and density (up to 96%) at the end of the study. | ||
| 154 | The observed shift towards different and even smaller UFP and Pico in | 164 | The observed shift towards different and even smaller UFP and Pico in | ||
| 155 | the second part of the study was most probably due to complex | 165 | the second part of the study was most probably due to complex | ||
| 156 | interactions between top-down and bottom-up effects. Indeed, an | 166 | interactions between top-down and bottom-up effects. Indeed, an | ||
| 157 | increased temperature, a decreased salinity and decreased | 167 | increased temperature, a decreased salinity and decreased | ||
| 158 | concentrations of nutrients (mainly ammonium and orthophosphate), as | 168 | concentrations of nutrients (mainly ammonium and orthophosphate), as | ||
| 159 | well as an increased grazing pressure of rotifers on the larger | 169 | well as an increased grazing pressure of rotifers on the larger | ||
| 160 | Mediophyceae were simultaneous with the changes detected in | 170 | Mediophyceae were simultaneous with the changes detected in | ||
| 161 | phytoplankton. The obtained results highlight a longer planktonic | 171 | phytoplankton. The obtained results highlight a longer planktonic | ||
| 162 | trophic web in Cabras Lagoon that includes small phytoplankton at the | 172 | trophic web in Cabras Lagoon that includes small phytoplankton at the | ||
| 163 | base, ciliates, rotifers, and copepods. This suggests low energy | 173 | base, ciliates, rotifers, and copepods. This suggests low energy | ||
| 164 | availability for planktivorous fish, with possible future relevant | 174 | availability for planktivorous fish, with possible future relevant | ||
| 165 | consequences for fishing activities in this coastal lagoon." | 175 | consequences for fishing activities in this coastal lagoon." | ||
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