| Literature DB >> 34070469 |
Ping Li1,2, Qun Ma1, Su Xu1, Wenha Liu1,2, Zengling Ma3, Guangyan Ni4.
Abstract
Shift of phytoplankton niches from low to high latitudes has altered their experienced light exposure durations and temperatures. To explore this interactive effect, the growth, physiology, and cell compositions of smaller Alexandrium minutum and largerEntities:
Keywords: Alexandrium; antioxidant activity; cell size; growth; photoperiod; respiration; rubisCO; temperature
Year: 2021 PMID: 34070469 PMCID: PMC8229041 DOI: 10.3390/plants10061056
Source DB: PubMed Journal: Plants (Basel) ISSN: 2223-7747
Figure 1Growth rate (µ, d−1) versus culture temperature (°C) for smaller dinoflagellate Alexandrium minutum (A) and larger Alexandrium catenella (B) under light:dark (L:D) cycles of 8:16, 16:8, and 24:0 and temperatures of 18, 22, 25, and 28 °C. Points show averages of three growth determinations on independently grown cultures; error bars show standard deviations (n = 3), often within symbols.
Figure 2Cell biovolume-based chlorophyll a (A,B; Chl a, fg µm−3) and RubisCO contents (C,D; fg µm−3) across growth temperature (°C) for A. minutum (A,C) and A. catenella (B,D) at L:D cycles of 8:16, 16:8, and 24:0. Note: there is a 10-fold difference in the Y-axis scales of panels A and B. Points show averages of three determinations on independently replicated cultures; error bars show standard deviations, often within symbols.
Figure 3Maximal photochemical quantum yield (FV/FM) of Photosystem II (PSII) (A,B) and effective PSII quantum yield (C,D) across growth temperature (°C) for A. minutum (A,C) and A. catenella (B,D) at L:D cycles of 8:16, 16:8, and 24:0. Points show averages of three determinations on independently replicated cultures; error bars show standard deviations, often within symbols.
Figure 4The rapid light curve-derived light utilization efficiency (α) (A,B), saturation irradiance (EK, µmol photons m−2 s−1) (C,D), and maximal relative electron transfer rate (rETRmax) (E,F) across growth temperature (°C) of A. minutum (A,C,E) and A. catenella (B,D,F) at L:D cycles of 8:16, 16:8, and 24:0. Points show averages of three determinations on independently replicated cultures; error bars show standard deviations, often within symbols.
Figure 5Cell biovolume-based dark respiration (A,B; fmol O2 µm−3 min−1) and antioxidant capability (C,D; fmol Tolox µm-3) across growth temperature (°C) for A. minutum (A,C) and A. catenella (B,D) at L:D cycles of 8:16, 16:8, and 24:0. Note: there is a 10-fold difference in the Y-axis scales of panels C and D. Points show averages of three determinations on independently replicated cultures; error bars show standard deviations, often within symbols.
Figure 6Effects of temperature/photoperiod to biochemical and physiological parameters and their relations for A. minutum (A) and A. catenella (B), with color gradient denoting Pearson’s rank correlation coefficients and edge width showing p value.
Figure 7Cell biovolume-based RubisCO content (A,B, fmol µm−3) and antioxidant capability (C,D, fmol Tolox µm−3) versus biovolume-based 1/Chl a [(fg µm−3)−1] for A. minutum (A,C) and A. catenella (B,D) at L:D cycles of 8:16, 16:8, and 24:0. Bold lines in panels (A,C,D) show pooled linear regression (R2 = 0.42–0.54, p < 0.05) and in panel B shows one phase decay (R2 = 0.85); thin dashed lines show 95% confidence intervals on the fitted curve.