| Literature DB >> 27917888 |
Pascale Tremblay1, Andrea Gori1, Jean François Maguer2, Mia Hoogenboom3, Christine Ferrier-Pagès1.
Abstract
Symbiotic scleractinian corals are particularly affected by climate change stress and respond by bleaching (losing their symbiotic dinoflagellate partners). Recently, the energetic status of corals is emerging as a particularly important factor that determines the corals' vulnerability to heat stress. However, detailed studies of coral energetic that trace the flow of carbon from symbionts to host are still sparse. The present study thus investigates the impact of heat stress on the nutritional interactions between dinoflagellates and coral Stylophora pistillata maintained under auto- and heterotrophy. First, we demonstrated that the percentage of autotrophic carbon retained in the symbionts was significantly higher during heat stress than under non-stressful conditions, in both fed and unfed colonies. This higher photosynthate retention in symbionts translated into lower rates of carbon translocation, which required the coral host to use tissue energy reserves to sustain its respiratory needs. As calcification rates were positively correlated to carbon translocation, a significant decrease in skeletal growth was observed during heat stress. This study also provides evidence that heterotrophic nutrient supply enhances the re-establishment of normal nutritional exchanges between the two symbiotic partners in the coral S. pistillata, but it did not mitigate the effects of temperature stress on coral calcification.Entities:
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Year: 2016 PMID: 27917888 PMCID: PMC5137022 DOI: 10.1038/srep38112
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Effect of heat stress and heterotrophy on the main physiological parameters of Stylophora pistillata.
(a) Symbiont concentration, (b) gross photosynthesis, P, (c) holobiont respiration, R, (d) host respiration, R, (e) symbiont respiration, R, and (f) calcification, C, for fed and unfed nubbins over the course of heat stress (day 28) and recovering (day 56). Data are expressed as means ± standard error of the mean of n = 4 measurements. Bars with different letters (A to E) are significantly different (p < 0.05). CTF: control temperature and fed; CTU: control temperature and unfed; HTF: high temperature and fed; and HTU: high temperature and unfed. Day 28: samples in HTF and HTU were taken 28 days after the start of the heat stress at 31 °C; Day 56: samples in HTF and HTU tanks under the recovering process, taken 28 days after the end of the heat stress.
Figure 2Mass-balanced results of photosynthate translocation and carbon budget of Stylophora pistillata.
Results for nubbins at day 28 maintained fed under (a) control temperature at 25 °C (CTF) or (b) after the start of the heat stress at 31 °C (HTF), and unfed under (c) control temperature at 25 °C (CTU) or (d) after the start of the heat stress at 31 °C (HTU); at day 56 maintained fed under (e) control temperature at 25 °C (CTF) or (f) after the end of the heat stress at 31 °C (HTF), and unfed under (g) control temperature at 25 °C (CTU) or (h) after the end of the heat stress at 31 °C (HTU). Symbols are defined in the text. Data represent means and standard errors of means of n = 4 measurements. The significance of ρand ρ was tested using a t-test on differences in the amount of carbon lost (C = R + ρ + ρ) and total holobiont respiration (R). For fed corals, the zooplankton value was comes from Ferrier-Pagès et al.34 and Tremblay et al.71. Symbols are defined in the text, and a list of symbols and definitions is given in Table 5.
Results of the three-way analyses of variance (ANOVA) testing the effect of time, temperature and feeding on physiological parameters in Stylophora pistillata.
| Factor | d.f. | ||
|---|---|---|---|
| Time | 1 | 20.21 | |
| Temperature | 1 | 10.65 | |
| Feeding | 1 | 66.42 | |
| Time × Temperature | 1 | 0.0508 | 4.15 |
| Time × Feeding | 1 | 6.61 | |
| Temperature × Feeding | 1 | 6.18 | |
| Time × Temperature × Feeding | 1 | 7.19 | |
| Error | 29 | — | — |
| Time | 1 | 0.1731 | 2.00 |
| Temperature | 1 | 21.53 | |
| Feeding | 1 | 31.14 | |
| Time × Temperature | 1 | 0.9391 | 0.01 |
| Time × Feeding | 1 | 5.11 | |
| Temperature × Feeding | 1 | 0.8769 | 0.02 |
| Time × Temperature × Feeding | 1 | 0.6710 | 0.19 |
| Error | 19 | — | — |
| Time | 1 | 0.9102 | 0.01 |
| Temperature | 1 | 0.0812 | 3.39 |
| Feeding | 1 | 54.28 | |
| Time × Temperature | 1 | 0.3910 | 0.77 |
| Time × Feeding | 1 | 0.2770 | 1.25 |
| Temperature × Feeding | 1 | 0.5174 | 0.44 |
| Time × Temperature × Feeding | 1 | 0.8543 | 0.03 |
| Error | 19 | — | — |
| Time | 1 | 0.9102 | 0.01 |
| Temperature | 1 | 0.0812 | 3.39 |
| Feeding | 1 | < | 54.28 |
| Time × Temperature | 1 | 0.3910 | 0.77 |
| Time × Feeding | 1 | 0.2770 | 1.25 |
| Temperature × Feeding | 1 | 0.5174 | 0.44 |
| Time × Temperature × Feeding | 1 | 0.8543 | 0.03 |
| Error | 19 | — | — |
| Time | 1 | 0.5201 | 0.43 |
| Temperature | 15.78 | ||
| Feeding | 1 | 20.54 | |
| Time × Temperature | 1 | 0.8918 | 0.02 |
| Time × Feeding | 1 | 10.08 | |
| Temperature × Feeding | 1 | 0.8671 | 0.03 |
| Time × Temperature × Feeding | 1 | 0.3670 | 0.85 |
| Error | 19 | — | — |
| Time | 1 | 0.9251 | 0.01 |
| Temperature | 1 | < | 120.16 |
| Feeding | 1 | < | 22.65 |
| Time × Temperature | 1 | 0.0914 | 3.02 |
| Time × Feeding | 1 | 0.7713 | 0.09 |
| Temperature × Feeding | 1 | 0.0538 | 3.99 |
| Time × Temperature × Feeding | 1 | 0.8156 | 0.06 |
| Error | 34 | — | — |
Symbiont concentrations were ln-transformed prior to analysis. n = 4 replicates; significant p-values are in bold.
Results of the three-way analyses of variance (ANOVA) testing the effect of time, temperature and feeding on autotrophic carbon parameters (carbon lost and translocation as well as incorporation rates and carbon fixed remaining in symbionts and coral host), after 48 hours in Stylophora pistillata.
| Factor | d.f. | Amount (μg C cm−2 h−1) | Percentage (%) | ||
|---|---|---|---|---|---|
| Time | 1 | 0.9562 | <0.01 | 0.0972 | 3.00 |
| Temperature | 1 | < | 222.09 | < | 85.16 |
| Feeding | 1 | < | 39.96 | 6.04 | |
| Time × Temperature | 1 | 0.8313 | 0.04 | 0.3323 | 0.98 |
| Time × Feeding | 1 | 37.97 | 11.24 | ||
| Temperature × Feeding | 1 | 0.3738 | 0.82 | 0.1919 | 1.82 |
| Time × Temperature × Feeding | 1 | 9.59 | 20.59 | ||
| Error | 22 | — | — | — | — |
| Time | 1 | 11.47 | 0.1861 | 1.86 | |
| Temperature | 1 | < | 351.23 | 18.49 | |
| Feeding | 1 | < | 5.99 | 4.88 | |
| Time × Temperature | 1 | < | 298.77 | 0.3076 | 1.09 |
| Time × Feeding | 1 | < | 90.81 | 6.19 | |
| Temperature × Feeding | 1 | 0.7312 | 0.12 | 0.1009 | 2.99 |
| Time × Temperature × Feeding | 1 | 12.11 | 7.54 | ||
| Error | 22 | — | — | — | — |
| Time | 1 | < | 27.69 | 0.4498 | 0.59 |
| Temperature | 1 | 5.77 | < | 129.86 | |
| Feeding | 1 | < | 194.06 | 4.60 | |
| Time × Temperature | 1 | 7.86 | 20.33 | ||
| Time × Feeding | 1 | 6.31 | 7.66 | ||
| Temperature × Feeding | 1 | 5.17 | 0.4377 | 0.62 | |
| Time × Temperature × Feeding | 1 | 5.25 | < | 31.07 | |
| Error | 22 | — | — | — | — |
| Time | 1 | 7.61 | 3.73 | ||
| Temperature | 1 | 0.7137 | 0.14 | 13.94 | |
| Feeding | 1 | < | 34.46 | 0.0865 | 3.22 |
| Time × Temperature | 1 | 7.31 | 6.50 | ||
| Time × Feeding | 1 | 0.4376 | 0.63 | 6.71 | |
| Temperature × Feeding | 1 | 0.3383 | 0.96 | 0.1977 | 1.76 |
| Time × Temperature × Feeding | 1 | 0.3053 | 1.10 | 0.0765 | 3.47 |
| Error | 22 | — | — | — | — |
Significant values are in bold.
Percentages of autotrophic carbon contributing to the total respiration of the holobiont (CZAR) as well as percentages of autotrophic and heterotrophic carbon contributing to the respiration of the host (CTAR and CHAR respectively), for fed and unfed nubbins of Stylophora pistillata over the course of heat-stress (day 28) and recovering (day 56).
| CZAR (%) | CTAR (%) | CHAR (%) | CTAR + CHAR (%) | |
|---|---|---|---|---|
| mean ± s.e.m.(Fisher) | mean ± s.e.m.(Fisher) | mean ± s.e.m.(Fisher) | mean ± s.e.m.(Fisher) | |
| Day 28 | ||||
| CTF | 102.1 ± 6.7(AB) | 94.3 ± 3.1(AB) | 43.5 ± 1.4(A) | 137.8 ± 4.5(A) |
| CTU | 112.0 ± 1.7(A) | 120.3 ± 4.3(B) | 120.3 ± 4.3(AB) | |
| HTF | 71.0 ± 1.9(D) | 52.1 ± 4.1(C) | 21.1 ± 1.7(B) | 73.2 ± 5.8(CD) |
| HTU | 90.8 ± 2.6(ABC) | 83.0 ± 11.0(D) | 83.0 ± 11.0(C) | |
| Day 56 | ||||
| CTF | 93.6 ± 13.2(ABC) | 89.5 ± 10.0(AD) | 41.0 ± 4.6(A) | 130.5 ± 14.6(A) |
| CTU | 87.8 ± 1.7(BC) | 85.3 ± 6.6(D) | 85.3 ± 6.6(BC) | |
| HTF | 78.1 ± 2.5(CD) | 76.2 ± 7.9(AD) | 44.8 ± 4.7(A) | 121.0 ± 12.6(A) |
| HTU | 56.9 ± 2.3(E) | 47.5 ± 3.8(C) | 47.5 ± 3.8(D) | |
Data are expressed as means ± standard error of the mean of n = 4 measurements. Numbers with different letters in parentheses (A to E) are significantly different (p < 0.05). Symbols are defined in the text, and a list of symbols and definitions is given in Table 5.
Figure 3Relationship between autotrophic carbon and calcification or respiration rates of Stylophora pistillata.
Relationship between calcification rates, C, and (a) gross photosynthesis, P, or (b) photosynthate translocation, T, and between holobiont respiration, R, and (c) gross photosynthesis, P, or (d) photosynthate translocation, T, for fed and unfed nubbins before (day 0), during (day 28) and after (day 56) the heat stress. Data are means ± standard errors of the mean of n = 4 measurements. Symbols are defined in the text, and a list of symbols and definitions is given in Table 5.
Equations used to calculate the autotrophic and heterotrophic carbon budget.
| Parameters | Equations | References | |
|---|---|---|---|
| = | Tremblay | ||
| = | Tremblay | ||
| = | Tremblay | ||
| = | Tremblay | ||
| = | Tremblay | ||
| = | Tremblay | ||
| CZAR | = | Muscatine | |
| CTAR | = | This paper | |
| CHAR | = | Grottoli | |
*The percentage of fixed carbon remaining (C) in symbionts or coral host as well as the percentage of C and T was obtained by dividing ρ or C or T by P, and multiplying by 100.
List of symbols, definition and units.
| Symbol | Definition (unit) |
|---|---|
| C | Carbon |
| Amount of carbon used by calcification (μg C cm−2 h−1) | |
| CHAR | Percentage of heterotrophic carbon contributing to the respiration of the host (%) |
| Atom percent of 13C in the non-enriched incubation medium (equal to 1.1%) | |
| Atom percent of 13C in the enriched incubation medium (%) | |
| Autotrophic carbon lost (μg C cm−2 h−1 or %) | |
| Atom percent of 13C measured in the enriched samples (%) | |
| Natural atom percent of 13C in non-enriched nubbins (%) | |
| Atom percent of 13C in the enriched incubation medium (equal to 23.5%) | |
| Percentage of autotrophic carbon remaining in symbionts or host tissue (%) | |
| CTF | Control temperature and fed corals |
| CTU | Control temperature and unfed corals |
| CTAR | Percentage of autotrophic carbon contributing to the respiration of the host (%) |
| CZAR | Percentage of autotrophic carbon contributing to the total respiration of the holobiont (%) |
| FSW | 0.45 μm-filtered seawater |
| Heterotrophic carbon grazing rate (μg C cm−2 h−1) | |
| HTF | High temperature and fed corals |
| HTU | High temperature and unfed corals |
| Mass of carbon per milligram of host tissue or symbionts (μg mg−1) | |
| Mass of the freeze-dried sample (mg) | |
| Amount of CaCO3 produced by calcification (μg CaCO3 cm−2 h−1) | |
| Amount of autotrophic carbon fixed by gross photosynthesis (μg C cm−2 h−1) | |
| Oxygen produced by gross photosynthesis (μmol O2 cm−2 h−1) | |
| Oxygen produced by net photosynthesis (μmol O2 cm−2 h−1) | |
| Photosynthetic quotient (equal to 1.1 mol O2:mol C) | |
| Oxygen consumed by respiration of holobiont (μmol O2 cm−2 h−1) | |
| Amount of carbon respired by holobiont (μg C cm−2 h−1) | |
| Amount of carbon respired by coral host (μg C cm−2 h−1) | |
| Respiratory quotient (equal to 0.8 mol C: mol O2) | |
| Amount of autotrophic carbon respired by symbionts (μg C cm−2 h−1) | |
| S | Nubbin surface area (cm2) |
| Autotrophic carbon translocated from symbionts to their host (μg C cm−2 h−1or %) | |
| Incubation time of the nubbins in the non-enriched medium in the light (equal to 24 h) | |
| Incubation time of the nubbins in the enriched medium (equal to 5 h) | |
| Amount of autotrophic carbon lost in released dissolved organic carbon (μg C cm−2 h−1) | |
| Amount of autotrophic carbon incorporated in the coral host (μg C cm−2 h−1) | |
| Amount of autotrophic carbon lost in released particulate organic carbon (μg C cm−2 h−1) | |
| Amount of autotrophic carbon incorporated in the symbionts (μg C cm−2 h−1) |