| Literature DB >> 29213185 |
Annette Bruhn1, Tina Janicek1, Dirk Manns2, Mette Møller Nielsen1,3, Thorsten Johannes Skovbjerg Balsby1, Anne S Meyer2, Michael Bo Rasmussen1, Xiaoru Hou4, Bodo Saake5, Cordula Göke6, Anne Belinda Bjerre4.
Abstract
Fucoidans areEntities:
Keywords: Cultivation; Ecotypes; Exposure; Irradiance; Laminariales; Nutrients; Salinity; Storage carbohydrates
Year: 2017 PMID: 29213185 PMCID: PMC5705760 DOI: 10.1007/s10811-017-1204-5
Source DB: PubMed Journal: J Appl Phycol ISSN: 0921-8971 Impact factor: 3.215
Overview of published fucoidan content in Laminariales and suggested factors with impact on tissue fucoidan content: E environment, R reproduction, T part of thallus, S season, A age of plant, Sporo sporophyll
| Species | Part of thallus | Country | Sea | Content (% of DM) | Impact | Reference |
|---|---|---|---|---|---|---|
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| Frond | Russia | OS | 0.7 | T | Usov et al. ( |
| Midrib | 0.6 | |||||
| Sporo | 7.8 | |||||
| Stipes | 0.5 | |||||
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| Sporo | Russia | OS | 3.4–7.0 | R | Skriptsova et al. ( |
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| Frond | Russia | OS | 3.8 | R | Vishchuk et al. ( |
| Sporo | 5.7 | |||||
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| Whole plant | Australia | SO | 2.3–3.2 | Lorbeer et al. ( | |
| Whole plant | Australia | SO | 3–3.7 | Charoensiddhi et al. ( | ||
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| Stipes | England | NA | 1.8–3.4 | T S | Black ( |
| Frond | NA | 2.4-4.5 | T S | |||
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| Frond | England | NA | 2.2–3.8 | S | |
| Frond | France | NA | 3.5 | Mabeau et al. ( | ||
| 5.5 | MacArtain et al. ( | |||||
| Frond | Denmark | NS | 3.4–11.2 | S (E) (R) | This study | |
| BA | 2.8–7.4 | E S | ||||
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| – | Russia | SJ | 3.5–7.8 | S A | Zvyagintseva et al. ( |
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| Frond | Japan | PO | 2.2–4.3 | S | Honya et al. ( |
| – | Russia | SJ | 2.4–2.9 | A | Zvyagintseva et al. ( | |
| 1.7 | Mizuno et al. ( | |||||
| Whole plant | Russia | OS | 6–8 | R | Skriptsova et al. ( | |
| Frond | Russia | OS | 0.7 | R | Vishchuk et al. ( | |
| Sori | 1.4 | |||||
| Whole plant | Russia | SJ | 0.9–4.3 | E S A | Skriptsova ( | |
| Sori | 2.6–3.4 | A R | ||||
|
| Frond | England | NA | 2.1–2.7 | S | Black ( |
| Frond | Russia | BS | 8.8 | Obluchinskaya ( | ||
| Frond | Faroe Islands | NA | 3.8–4.2 | E S | Ehrig and Alban ( | |
| Frond | Germany | BA | 1.8–2.3 | E S | ||
| Frond | Denmark | BA | 2.3–6.2 | E S | This study | |
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| Frond | Canada | NA | 1.8–4.5 | S | Rioux et al. ( |
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| Frond | Japan | PO | 2.6 | Kitamura et al. ( | |
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| Whole plant | Russia | SJ | 3.2–16.0 | R S | Skriptsova et al. ( |
| Frond | New Zealand | SPO | 3–13 | R S | Mak et al. ( | |
| Sporo | 25–69 | R S |
The different seas are abbreviated as follows: OS Okotsk Sea, SO Southern Ocean, NA North Atlantic, NS North Sea, BA Baltic Sea, SJ Sea of Japan, PO Pacific Ocean, BS Barent Sea, SPO South Pacific Ocean
Fig. 1Map of Denmark showing the locations of the populations of kelp sampled for determination of seasonal variation (Hanstholm and Aarhus) and for experimental work (Aarhus and Hjarnø Havbrug). Marine environmental monitoring stations from which data was supplied on salinity, temperature and nutrient concentrations are indicated as black squares. Meteorological monitoring stations from which data was supplied on wind and irradiance are indicated as black triangles and crosses, respectively
Fig. 2Seasonal variation of environmental factors at Aarhus (Kattegat) and Hanstholm (North Sea): a salinity and temperature; b inorganic nutrient concentrations, DIN and ortho-P; and c irradiance and exposure (relative exposure index (REI)). Data derived from the Danish National Marine Monitoring programme
Pearson correlation coefficients of key environmental parameters at Aarhus (Baltic Sea)
| Aarhus ( | REI | PAR | DIN | Ortho-P | Temperature | NDM (SL) | NDM (LD) |
|---|---|---|---|---|---|---|---|
| Salinity | 0.096 | −0.089 | −0.302 | −0.148 |
| −0.373 | −0.508 |
| REI | −0.136 | 0.476 | 0.161 | 0.129 | −0.188 | −0.328 | |
| PAR |
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| 0.507 |
| −0.583 | ||
| DIN |
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| Ortho-P |
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| Temperature |
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Two numbers are given for each correlation: the top number gives the correlation coefficient, bottom number the probability (p value). Numbers in italics indicate significant correlations (p < 0.05)
REI relative exposure index, PAR photosynthetic active radiation (μmol photons m−2 s−1), DIN dissolved inorganic nitrogen (μM), ortho-P ortho-phosphate (μM); water temperature (°C) and tissue nitrogen content (NDM) of Saccharina latissima (SL) and Laminaria digitata (LD) given as percentage of DM
Pearson correlation coefficients of key environmental parameters at Hanstholm (North Sea)
| Hanstholm ( | REI | PAR | DIN | Ortho-P | Temperature | NDM (LD) |
|---|---|---|---|---|---|---|
| Salinity | 0.589 | −0.462 |
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| REI | −0.212 | 0.588 | 0.655 | −0.383 | 0.287 | |
| PAR | −0.641 |
| 0.640 | −0.348 | ||
| DIN |
| −0.623 |
| |||
| Ortho-P | −0.643 | 0.724 | ||||
| Temperature |
|
Two numbers are given for each correlation: the top number gives the correlation coefficient, bottom number the probability (p value). Numbers in italics indicate significant correlations (p < 0.05)
REI relative exposure index, PAR photosynthetic active radiation (μmol photons m−2 s−1), DIN dissolved inorganic nitrogen (μM), ortho-P ortho-phosphate (μM); water temperature (°C) and tissue nitrogen content (NDM) of Laminaria digitata (LD) given as percentage of DM
Fig. 3Seasonal variation in the tissue content of crude fucoidan and reproductive status (circles) in a Saccharina latissima and Laminaria digitata from Kattegat; b Laminaria digitata from the North Sea; and c relation between the tissue content of fucose and the calculated crude fucoidan content (R 2 = 0.86). Data represent average ± SE, n = 3
Fig. 4The tissue content of crude fucoidan as a function of single environmental factors: a salinity; b irradiance; c exposure (relative exposure index (REI)); d tissue N content (% of DM). Data represent average ± SE, n = 3. Statistics are given in Table 4. Only significant relations are indicated by lines
The impact of abiotic environmental factors on the tissue content of crude fucoidan of the two kelp species, S. latissima and L. digitata, sampled at two different locations in Denmark: Aarhus (Baltic Sea, Kattegat) and Hanstholm (North Sea). Results of the statistical analyses, testing by general linear models, including the following variables: salinity, irradiance, degree of exposure and tissue N content. p values < 0.05, indicating significant relation to the specific environmental parameter, are marked in italics
| Species | Predictor |
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| Tissue N (% of DM) | 0.87 | 28 | −0.168 | 0.360 | |
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| Salinity | 0.32 | 28 | 0.028 | 0.576 |
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| Salinity | 0.18 | 16 | −0.391 | 0.680 |
| Exposure (REI) | 0.38 | 16 | −4.0E-5 | 0.550 | |
| PAR (μmol photons m−2 s−1) | 2.19 | 16 | −0.002 | 0.159 | |
| Tissue N (% of DM) | 1.44 | 16 | 0.834 | 0.247 |
Fig. 5Relations between a the tissue content of crude fucoidan and storage carbohydrates (laminarin + mannitol); b the ratio between crude fucoidan and alginate in the cell wall, and the tissue content of storage carbohydrates. The significant linear correlation is indicated (p < 0.0001, R 2 = 0.326). Data represent average ± SE, n = 3
Fig. 6Results from experiments 1 and 2, showing the relation between crude fucoidan or storage carbohydrates (laminarin + mannitol) and salinity, irradiance or tissue N content (a–c) or the relation between crude fucoidan and storage carbohydrates (d). Data represent average ± SE, n = 2: a salinity (experiment 1, S. latissima). Letters a and b indicate significant differences between crude fucoidan contents. Contents of storage carbohydrates were not significantly different between salinity treatments; b irradiance (experiment 2, L. digitata). The two specific experimental treatments: high light and high nutrient concentration (HL/HN) and low light and low nutrient concentration (LL/LN) are indicated; c tissue N content (% of DM) (experiment 2, L. digitata). The solid line indicates the significant relation between crude fucoidan content and tissue N content (GLM F 2,8 = 10.16, E = 5.12, p = 0.013); and d relations between crude fucoidan content and content of storage carbohydrates from both experiments