Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 2 de 2
Filter
Add more filters

Database
Language
Affiliation country
Publication year range
1.
Bull Environ Contam Toxicol ; 102(2): 231-238, 2019 Feb.
Article in English | MEDLINE | ID: mdl-30623206

ABSTRACT

Pico-cyanobacteria and micro-cyanobacteria coexist ubiquitously in many lakes. Differences in cell size and abilities to utilize nutrients may influence their distribution patterns. In this study, Synechococcus sp. and Microcystis aeruginosa were chosen as pico- and micro-cyanobacteria, respectively. Gradient phosphorus treatments (0.002, 0.01, 0.05, and 0.25 mg P L-1) were designed in mono- and co-cultures. Growth curves were recorded and fitted by the Monod equation. Moreover, the interspecific competition was analyzed by the Lotka-Volterra model. When mono-cultured in lower P conditions (≤ 0.01 mg P L-1), Synechococcus sp. obtained much higher biomass than M. aeruginosa. But, M. aeruginosa grew faster than Synechococcus sp. in higher P groups (≥ 0.05 mg P L-1) (p < 0.05). Synechococcus sp. has abilities to thrive in low-phosphorus environments, whereas M. aeruginosa favored high-phosphorus conditions. In co-cultures, Synechococcus sp. strongly inhibited M. aeruginosa at each P treatment.


Subject(s)
Microcystis/drug effects , Phosphorus/pharmacology , Synechococcus/drug effects , Biomass , Ecosystem , Lakes , Microcystis/cytology , Microcystis/growth & development , Species Specificity , Synechococcus/cytology , Synechococcus/growth & development
2.
Harmful Algae ; 89: 101661, 2019 11.
Article in English | MEDLINE | ID: mdl-31672227

ABSTRACT

Micro-cyanobacteria and pico-cyanobacteria coexist in many lakes throughout the world. Their distinct cell sizes and nutrient utilization strategies may lead to dominance of one over the other at varying nutrient levels. In this study, Microcystis aeruginosa and Synechococcus sp. were chosen as representative organisms of micro- and pico-cyanobacteria, respectively. A series of nitrate and ammonia conditions (0.02, 0.1, 0.5, and 2.5 mg N L-1) were designed in mono- or co-cultured systems, respectively. Growth rates of the two species were calculated and fitted by the Monod and Logistic equations. Furthermore, the interspecific competition was analyzed using the Lotka-Volterra model. In mono-cultures, the two cyanobacteria displayed faster growth rates in ammonia than in nitrate. Meanwhile, Synechococcus sp. showed faster growth rates compared to M. aeruginosa in lower N groups (≤ 0.5 mg N L-1). However, in the highest nitrate treatment (2.5 mg N L-1), M. aeruginosa achieved much higher biomass and faster growth rates than Synechococcus sp.. In co-cultures, Synechococcus sp. dominated in the lowest N treatment (0.02 mg N L-1), but M. aeruginosa dominated under the highest nitrate condition (2.5 mg N L-1). Based on the analysis of Raman spectra of living cells in mono-cultures, nitrate (2.5 mg N L-1) upgraded the pigmentary contents of M. aeruginosa better than ammonia (2.5 mg N L-1), but nitrogen in different forms showed little effects on the pigments of Synechococcus sp.. Findings from this study can provide valuable information to predict cyanobacterial community succession and aquatic ecosystem stability.


Subject(s)
Microcystis , Synechococcus , Cell Size , Ecology , Ecosystem , Nitrogen
SELECTION OF CITATIONS
SEARCH DETAIL