全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

相关文章

更多...
PLOS ONE  2012 

Stable Isotope Composition of Fatty Acids in Organisms of Different Trophic Levels in the Yenisei River

DOI: 10.1371/journal.pone.0034059

Full-Text   Cite this paper   Add to My Lib

Abstract:

We studied four-link food chain, periphytic microalgae and water moss (producers), trichopteran larvae (consumers I), gammarids (omnivorous – consumers II) and Siberian grayling (consumers III) at a littoral site of the Yenisei River on the basis of three years monthly sampling. Analysis of bulk carbon stable isotopes and compound specific isotope analysis of fatty acids (FA) were done. As found, there was a gradual depletion in 13C contents of fatty acids, including essential FA upward the food chain. In all the trophic levels a parabolic dependence of δ13C values of fatty acids on their degree of unsaturation/chain length occurred, with 18:2n-6 and 18:3n-3 in its lowest point. The pattern in the δ13C differences between individual fatty acids was quite similar to that reported in literature for marine pelagic food webs. Hypotheses on isotope fractionation were suggested to explain the findings.

References

[1]  Chamberlain PM, Bull ID, Black HIJ, Ineson P, Evershed RP (2004) Lipid content and carbon assimilation in Collembola, implications for the use of compound-specific carbon isotope analysis in animal dietary studies. Oecologia 139: 325–335.
[2]  Budge SM, Wooller MJ, Springer AM, Iverson SJ, McRoy CP, et al. (2008) Tracing carbon flow in an arctic marine food web using fatty acid-stable isotope analysis. Oecologia 157: 117–129.
[3]  Koussoroplis A-M, Bec A, Perga M-E, Koutrakis E, Desvilettes C, et al. (2010) Nutritional importance of minor dietary sources for leaping grey mullet Liza saliens (Mugilidae) during settlement, insights from fatty acid δ13C analysis. Mar Ecol Prog Ser 404: 207–217.
[4]  Veefkind RJ (2003) Carbon isotope ratios and composition of fatty acids: Tags and trophic markers of pelagic organisms. Ph.D. thesis. Victoria: University of Victoria. 291 p.
[5]  Boschker HTS, Kromkamp JC, Middelburg JJ (2005) Biomarker and carbon isotopic constraints on bacterial and algal community structure and functioning in a turbid, tidal estuary. Limnol Oceanogr 50: 70–80.
[6]  Bec A, Perga M-E, Koussoroplis A, Bardoux G, Desvilettes C, et al. (2011) Assessing the reliability of fatty acid–specific stable isotope analysis for trophic studies. Meth Ecol Evolut 2: 651–659.
[7]  Chamberlain PM, Bull ID, Black HIJ, Ineson P, Evershed RP (2006) The effect on isotopic turnover in Collembola examined using the stable carbon isotopic compositions of lipids. Soil Biol Biochem 38: 1146–1157.
[8]  Budge SM, Wang SW, Hollmen TE, Wooller MJ (2011) Carbon isotopic fractionation in eider adipose tissue varies with fatty acid structure: implications for trophic studies. J Exp Biol 214: 3790–3800.
[9]  Abrajano TA, Murphy DE, Fang J, Comet P, Brooks JM (1994) 13C/12C ratios in individual fatty acids of marine mytilids with and without bacterial symbionts. Org Geochem 21: 611–617.
[10]  DeNiro MJ, Epstein S (1977) Mechanism of carbon isotope fractionation associated with lipid synthesis. Science 197: 261–263.
[11]  Johnston M, Yellowlees D, Gilmour I (1995) Carbon isotopic analysis of the free fatty acids in a tridacnid-algal symbiosis: interpretation and implications for the symbiotic association. Proc Royal Soc B Biol Sci 260: 293–297.
[12]  Pond DW, Fallick AE, Stevens CJ, Morrison DJ, Dixon DR (2008) Vertebrate nutrition in a deep-sea hydrothermal vent ecosystem, Fatty acid and stable isotope evidence. Deep-Sea Res I 55: 1718–1726.
[13]  Telang SA, Pocklington R, Naidu AS, Romankevich EA, Gitelson II, et al. (1991) Carbon and mineral transport in major North American, Russian Arctic, and Siberian Rivers, the St Lawrence, the Mackenze, the Yukon, the Arctic Alaskan Rivers, the Arctic Basin rivers in the Soviet Union, and the Yenisei. In: Degens ET, Kempe S, Richey JE, editors. Biogeochemistry of Major World Rivers. Chichester e a: Wiley and Sons. pp. 75–104.
[14]  Sushchik NN, Gladyshev MI, Kravchuk ES, Ivanova EA, Ageev AV, et al. (2007) Seasonal dynamics of long-chain polyunsaturated fatty acids in littoral benthos in the upper Yenisei River. Aquat Ecol 41: 349–365.
[15]  Sushchik NN, Gladyshev MI, Ivanova EA, Kravchuk ES (2010) Seasonal distribution and fatty acid composition of littoral microalgae in the Yenisei River. J Appl Phycol 22: 11–24.
[16]  Anishchenko OV, Gladyshev MI, Kravchuk ES, Ivanova EA, Gribovskaya IV, et al. (2010) Seasonal variations of metal concentrations in periphyton and taxonomic composition of the algal community at a Yenisei River littoral site. Cent Eur J Biol 5: 125–134.
[17]  Kolmakov VI, Anishchenko OV, Ivanova EA, Gladyshev MI, Sushchik NN (2008) Estimation of periphytic microalgae gross primary production with DCMU-fluorescence method in Yenisei River (Siberia, Russia). J Appl Phycol 20: 289–297.
[18]  Sushchik NN, Gladyshev MI, Moskvichova AV, Makhutova ON, Kalachova GS (2003) Comparison of fatty acid composition in major lipid classes of the dominant benthic invertebrates of the Yenisei River. Comp Biochem Phys B 134: 111–122.
[19]  Sushchik NN, Gladyshev MI, Kalachova GS, Makhutova ON, Ageev AV (2006) Comparison of seasonal dynamics of the essential PUFA contents in benthic invertebrates and grayling Thymallus arcticus in the Yenisei river. Compar Biochem Physiol B 145: 278–287.
[20]  Gladyshev MI, Emelianova AY, Kalachova GS, Zotina TA, Gaevsky NA, et al. (2000) Gut content analysis of Gammarus lacustris from a Siberian lake using biochemical and biophysical methods. Hydrobiologia 431: 155–163.
[21]  Makhutova ON, Kalachova GS, Gladyshev MI (2003) A comparison of the fatty acid composition of Gammarus lacustris and its food sources from a freshwater reservoir, Bugach, and the saline Lake Shira in Siberia, Russia. Aquat Ecol 37: 159–167.
[22]  Kalachova GS, Gladyshev MI, Sushchik NN, Makhutova ON (2011) Water moss as a food item of the zoobenthos in the Yenisei River. Cent Eur J Biol 6: 236–245.
[23]  Fry B (1988) Food web structure on Georges Bank from stable C, N, and S isotopic compositions. Limnol Oceanogr 33: 1182–l190.
[24]  Vander Zanden MJ, Rasmussen JB (2001) Variation in δ15N and δ13C trophic fractionation, Implications for aquatic food web studies. Limnol Oceanogr 46: 2061–2066.
[25]  Lau DCP, Leung KMY, Dudgeon D (2009) What does stable isotope analysis reveal about trophic relationships and the relative importance of allochthonous and autochthonous resources in tropical streams? A synthetic study from Hong Kong. Freshwat Biol 54: 127–141.
[26]  Pond DW, Leakey RJG, Fallick AE (2006) Monitoring microbial predator–prey interactions, an experimental study using fatty acid biomarker and compound-specific stable isotope techniques. J Plank Res 28: 419–427.
[27]  Campbell RC (1967) Statistics for biologists. Cambridge: University Press. 242 p.
[28]  Becker G (1994) Food preference by five trichopteran scrapers. Hydrobiologia 273: 171–178.
[29]  Morino H, Kamaltynov RM, Nakai K, Mashiko K (2000) Phenetic analysis, trophic specialization and habitat partitioning in the Baikal amphipod genus Eulimnogammarus (Crustacea). Adv Ecol Res 31: 355–376.
[30]  MacNeil C, Dick JTA, Elwood RW (1997) The trophic ecology of freshwater Gammarus spp (Crustacea, Amphipoda), problems and perspectives concerning the functional feeding group concept. Biol Rev 72: 349–364.
[31]  Parrish CC, Whiticar M, Puvanendran V (2007) Is ω6 docosapentaenoic acid an essential fatty acid during early ontogeny in marine fauna? Limnol Oceanogr 52: 476–479.
[32]  Uhle ME, Macko SA, Spero HJ, Engel MH, Lea DW (1997) Sources of carbon and nitrogen in modern planktonic foraminifera, the role of algal symbionts as determined by bulk and compound specific stable isotopic analyses. Org Geochem 27: 103–113.
[33]  Lau DCP, Leung KMY, Dudgeon D (2009) Evidence of rapid shifts in the trophic base of lotic predators using experimental dietary manipulations and assimilation-based analyses. Oecologia 159: 767–776.
[34]  Rhee SK, Reed RG, Brenna JT (1997) Fatty acid carbon isotope ratios in humans on controlled diets. Lipids 32: 1257–1263.
[35]  Jim S, Ambrose SH, Evershed RP (2003) Natural abundance stable carbon isotope evidence for the routing and de novo synthesis of bone FA and cholesterol. Lipids 38: 179–186.
[36]  Schouten S, Klein Breteler WCM, Blokker P, Schogt N, Rijpstra WIC, et al. (1998) Biosynthetic effects on the stable carbon isotopic compositions of algal lipids: Implications for deciphering the carbon isotopic biomarker record. Geochim Cosmochim Acta 62: 1397–1406.
[37]  Pel R, Hoogveld H, Floris V (2003) Using the hidden isotopic heterogeneity in phyto- and zooplankton to unmask disparity in trophic carbon transfer. Limnol Oceanogr 48: 2200–2207.
[38]  Tolosa I, Vescovali I, LeBlond N, Marty J-C, de Mora S, et al. (2004) Distribution of pigments and fatty acid biomarkers in particulate matter from the frontal structure of the Alboran Sea (SW Mediterranean Sea). Mar Chem 88: 103–125.
[39]  Bell JG, Preston T, Henderson RJ, Strachan F, Bron JE, et al. (2007) Discrimination of wild and cultured European sea bass (Dicentrarchus labrax) using chemical and isotopic analyses. J Agric Food Chem 55: 5934–5941.
[40]  Morrison DJ, Preston T, Bron JE, Hemderson RJ, Cooper K, et al. (2007) Authenticating production origin of gilthead sea bream (Sparus aurata) by chemical and isotopic fingerprinting. Lipids 42: 537–545.
[41]  Dijkman NA, Boschker HTS, Middelburg JJ, Kromkamp JC (2009) Group-specific primary production based on stable-isotope labeling of phospholipid-derived fatty acids. Limnol Oceanogr Methods 7: 612–625.
[42]  Sperling P, Ternes P, Zank TK, Heinz E (2003) The evolution of desaturases. Prostag Leukotr Ess 68: 73–95.

Full-Text

Contact Us

service@oalib.com

QQ:3279437679

WhatsApp +8615387084133