Exploring the potential of otolith microchemistry to enhance diet analysis in pinnipeds
暂无分享,去创建一个
[1] M. Fitzsimons,et al. Multi-element otolith chemistry of juvenile sole (Solea solea), whiting (Merlangius merlangus) and European seabass (Dicentrarchus labrax) in the Thames Estuary and adjacent coastal regions , 2009 .
[2] Dominic J. Tollit,et al. Quantitative analysis of prey DNA in pinniped faeces: potential to estimate diet composition? , 2007, Conservation Genetics.
[3] S. Ludsin,et al. Effects of crystal structure on the uptake of metals by lake trout (Salvelinus namaycush) otoliths , 2005 .
[4] S. Hamilton,et al. Elevated levels of trace elements in cores of otoliths and their potential for use as natural tags , 2005 .
[5] S. Thorrold,et al. Temperature and salinity effects on magnesium, manganese, and barium incorporation in otoliths of larval and early juvenile spot Leiostomus xanthurus , 2005 .
[6] P. Sale,et al. Using otolith microchemistry ofHaemulon flavolineatum (French grunt) to characterize mangroves and coral reefs throughout Turneffe Atoll, Belize: Difficulties at small spatial scales , 2005 .
[7] M. Hindell,et al. Molecular scatology as a tool to study diet: analysis of prey DNA in scats from captive Steller sea lions , 2005, Molecular ecology.
[8] P. Hammond,et al. FEEDING METHOD AFFECTS OTOLITH DIGESTION IN CAPTIVE GRAY SEALS: IMPLICATIONS FOR DIET COMPOSITION ESTIMATION , 2005 .
[9] Cynthia M. Jones,et al. Temperature and salinity effects on strontium incorporation in otoliths of larval spot (Leiostomus xanthurus) , 2004 .
[10] D. Tollit,et al. QUANTIFYING ERRORS ASSOCIATED WITH USING PREY SKELETAL STRUCTURES FROM FECAL SAMPLES TO DETERMINE THE DIET OF STELLER'S SEA LION (EUMETOPIAS JUBATUS) , 2003 .
[11] T. Elsdon,et al. Relationship between water and otolith elemental concentrations in juvenile black bream Acanthopagrus butcheri , 2003 .
[12] R. E. Strauss,et al. EVALUATION OF THE PRINCIPAL-COMPONENT AND EXPECTATION-MAXIMIZATION METHODS FOR ESTIMATING MISSING DATA IN MORPHOMETRIC STUDIES , 2003 .
[13] E. Sinclair,et al. SEASONAL AND SPATIAL DIFFERENCES IN DIET IN THE WESTERN STOCK OF STELLER SEA LIONS (EUMETOPIAS JUBATUS) , 2002 .
[14] D. Somerton,et al. Diurnal vertical migration of the Atka mackerel Pleurogrammus monopterygius as shown by archival tags , 2002 .
[15] M. Biuw,et al. Phylogenetic analyses of sexual selection and sexual size dimorphism in pinnipeds , 2002, Behavioral Ecology and Sociobiology.
[16] R. Vargas,et al. DIET OF SOUTH AMERICAN FUR SEALS (ARCTOCEPHALUS AUSTRALIS) IN ISLA DE LOBOS, URUGUAY , 2002 .
[17] A. Trites,et al. CLASSIFYING PREY HARD PART STRUCTURES RECOVERED FROM FECAL REMAINS OF CAPTIVE STELLER SEA LIONS (EUMETOPIAS JUBATUS) , 2002 .
[18] J. Harvey,et al. Quantifying errors associated with using fecal samples to determine the diet of the California sea lion (Zalophus californianus) , 2001 .
[19] D. Secor,et al. Is otolith strontium a useful scalar of life cycles in estuarine fishes? Fisheries Research 46:359-3 , 2000 .
[20] W. Bowen. Reconstruction of pinniped diets: accounting for complete digestion of otoliths and cephalopod beaks , 2000 .
[21] S. Campana. Chemistry and composition of fish otoliths : pathways, mechanisms and applications , 1999 .
[22] G. Pierce,et al. Assessment of errors in cetacean diet analysis: in vitro digestion of otoliths , 1999, Journal of the Marine Biological Association of the United Kingdom.
[23] Cynthia M. Jones,et al. Accurate classification of juvenile weakfish Cynoscion regalis to estuarine nursery areas based on chemical signatures in otoliths , 1998 .
[24] A. S. Blix,et al. Gut length, food transit time and diving habit in phocid seals , 1998, Polar Biology.
[25] S. Campana,et al. Experimental assessment of the effect of temperature and salinity on elemental composition of otoliths using laser ablation ICPMS , 1995 .
[26] J. Schumacher,et al. An example of fisheries oceanography: Walleye pollock in Alaskan waters (95RG00189) , 1995 .
[27] D. Secor,et al. Manual for Otolith Removal and Preparation for Microstructural Examination , 1992 .
[28] P. Olesiuk,et al. AN ENCLOSED ELUTRIATOR FOR PROCESSING MARINE MAMMAL SCATS , 1990 .
[29] D. Demaster,et al. ASSESSING NORTHERN ELEPHANT SEAL FEEDING HABITS BY STOMACH LAVAGE , 1987 .
[30] S. Campana,et al. Microstructure of Fish Otoliths , 1985 .
[31] Cynthia M. Jones,et al. Simultaneous Determination of 33 Major, Minor, and Trace Elements in Juvenile and Larval Fish Otoliths by High Resolution Double Focusing Sector Field Inductively Coupled Plasma Mass Spectrometry * , 2006 .
[32] S. Kirkman,et al. A refined fish consumption model for lactating Cape fur seals (Arctocephalus pusillus pusillus), based on scat analyses , 2006 .
[33] Katherine A. Call,et al. A method to improve size estimates of walleye pollock (Theragra chalcogramma) Atka mackerel (Pleurogrammus monopterygius) consumed by pinnipeds: digestion correction factors applied to bones and otoliths recovered in scats , 2004 .
[34] D. Townsend,et al. Strontium:cakium concentration ratios in otoliths of herring larvae as indicators of environmental histories , 2004, Environmental Biology of Fishes.
[35] M. Arim,et al. Pinniped diets inferred from scats: analysis of biases in prey occurrence , 2003 .
[36] Cynthia M. Jones,et al. New techniques for sampling larval and juvenile fish otoliths for trace-element analysis with laser-ablation sector-field inductively-coupled-plasma mass spectrometry ( SF-ICP-MS ) , 2003 .
[37] R. Mikus,et al. Aging fish otoliths recovered from Pacific harbor seal (Phoca vitulina) fecal samples , 2002 .
[38] B. Gillanders. Trace metals in four structures of fish and their use for estimates of stock structure , 2001 .
[39] J. Harvey,et al. Relationship between Fish Size and Otolith Length for 63 Species of Fishes from the Eastern North Pacific Ocean , 2000 .
[40] P. Thompson,et al. Species and size differences in the digestion of otoliths and beaks: Implications for estimates of pinniped diet composition , 1997 .
[41] D. Lassuy,et al. Species Profiles: Life Histories and Environmental Requirements of Coastal Fishes and Invertebrates (Pacific Northwest) Pacific Razor Clam , 1989 .
[42] E.. Chemistry and composition of fish otoliths: pathways, mechanisms and applications , 2022 .