Activity and post-prandial regulation of digestive enzyme activity along the Pacific hagfish (Eptatretus stoutii) alimentary canal
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[1] C. Glover,et al. Feeding in Eptatretus cirrhatus: effects on metabolism, gut structure and digestive processes, and the influence of post-prandial dissolved oxygen availability. , 2019, Comparative biochemistry and physiology. Part A, Molecular & integrative physiology.
[2] G. Goss,et al. Lipid acquisition and tissue storage in hagfish: new insights from an ancient vertebrate , 2018, Journal of Comparative Physiology B.
[3] Y. Shao,et al. Improvement in the quantification of reducing sugars by miniaturizing the Somogyi-Nelson assay using a microtiter plate. , 2018, Food chemistry.
[4] G. Goss,et al. Functional redundancy of glucose acquisition mechanisms in the hindgut of Pacific hagfish (Eptatretus stoutii). , 2018, Comparative biochemistry and physiology. Part A, Molecular & integrative physiology.
[5] J. Sun,et al. Histochemical distribution of four types of enzymes and mucous cells in the gastrointestinal tract of reared half-smooth tongue sole Cynoglossus semilaevis. , 2018, Journal of fish biology.
[6] G. Goss,et al. Post-prandial physiology and intestinal morphology of the Pacific hagfish (Eptatretus stoutii) , 2017, Journal of Comparative Physiology B.
[7] D. Gourlay,et al. Intestinal alkaline phosphatase: a summary of its role in clinical disease. , 2016, The Journal of surgical research.
[8] Juliane Jung. Methods Of Enzymatic Analysis , 2016 .
[9] C. Glover,et al. Feeding, digestion, and nutrient absorption in hagfish , 2015 .
[10] G. Goss,et al. Anatomy of the Pacific hagfish (Eptatretus stoutii) , 2015 .
[11] S. Secor,et al. Physiological responses to short-term fasting among herbivorous, omnivorous, and carnivorous fishes , 2014, Journal of Comparative Physiology B.
[12] J. Lallès. Intestinal alkaline phosphatase: novel functions and protective effects. , 2014, Nutrition reviews.
[13] Xiao‐qiu Zhou,et al. Growth, body composition, intestinal enzyme activities and microflora of juvenile Jian carp (Cyprinus carpio var. Jian) fed graded levels of dietary phosphorus , 2013 .
[14] J. Postlethwait,et al. Dynamic Evolution of the LPS-Detoxifying Enzyme Intestinal Alkaline Phosphatase in Zebrafish and Other Vertebrates , 2012, Front. Immun..
[15] Euan S. Harvey,et al. Hagfish predatory behaviour and slime defence mechanism , 2011, Scientific reports.
[16] K. Carpenter,et al. Conservation status of the world's hagfish species and the loss of phylogenetic diversity and ecosystem function , 2011 .
[17] A. Farrell,et al. The multifunctional gut of fish , 2011 .
[18] I. Tibbetts,et al. Enzymatic digestion in stomachless fishes: how a simple gut accommodates both herbivory and carnivory , 2011, Journal of Comparative Physiology B.
[19] A. Channa,et al. Histochemical Distribution of Lipase and Acid Phosphatase in the Intestinal Tract of the Snow Trout, Schizothorax curvifrons Heckel. , 2010 .
[20] David H. Evans,et al. Feast to famine: The effects of food quality and quantity on the gut structure and function of a detritivorous catfish (Teleostei: Loricariidae). , 2010, Comparative biochemistry and physiology. Part A, Molecular & integrative physiology.
[21] D. German,et al. Digestive enzyme activities and gastrointestinal fermentation in wood-eating catfishes , 2009, Journal of Comparative Physiology B.
[22] D. Tocher,et al. Atlantic salmon (Salmo salar) postsmolts adapt lipid digestion according to elevated dietary wax esters from Calanus finmarchicus. , 2009 .
[23] S. Secor,et al. Matched regulation of gastrointestinal performance in the Burmese python, Python molurus , 2008, Journal of Experimental Biology.
[24] B. Nichols,et al. Human intestinal maltase-glucoamylase: crystal structure of the N-terminal catalytic subunit and basis of inhibition and substrate specificity. , 2008, Journal of molecular biology.
[25] K. Clements,et al. Contrasting digestive strategies in four New Zealand herbivorous fishes as reflected by carbohydrase activity profiles. , 2007, Comparative biochemistry and physiology. Part A, Molecular & integrative physiology.
[26] M. Horn,et al. Structure and function of the stomachless digestive system in three related species of New World silverside fishes (Atherinopsidae) representing herbivory, omnivory, and carnivory , 2006 .
[27] M. Horn,et al. Digestive Enzyme Activities in Herbivorous and Carnivorous Prickleback Fishes (Teleostei: Stichaeidae): Ontogenetic, Dietary, and Phylogenetic Effects , 2004, Physiological and Biochemical Zoology.
[28] S. Teh,et al. Histological and histochemical changes in the digestive tract of white sturgeon larvae during ontogeny , 1995, Fish Physiology and Biochemistry.
[29] Go Nagase. Contribution to the physiology of digestion in Tilapia mossambica Peters: Digestive enzymes and the effects of diets on their activity , 1964, Zeitschrift für vergleichende Physiologie.
[30] J. Millán,et al. Accelerated Fat Absorption in Intestinal Alkaline Phosphatase Knockout Mice , 2003, Molecular and Cellular Biology.
[31] I. Huërou-Luron,et al. Chapter 16 Production and gene expression of brush border disaccharidases and peptidases during development in pigs and calves , 2002, Biology of Growing Animals.
[32] I. Fernandez,et al. Characterization of α-amylase activity in five species of Mediterranean sparid fishes (Sparidae, Teleostei) , 2001 .
[33] A. Svendsen,et al. Lipase protein engineering. , 2000, Biochimica et biophysica acta.
[34] M. Nozaki,et al. Seasonal Migration of the Hagfish, Eptatretus burgeri, Girard , 2000 .
[35] Bonnie J. Smith,et al. Distribution of intestinal enzyme activities along the intestinal tract of cultured Nile tilapia, Oreochromis niloticus L. , 2000 .
[36] E. Niebergall-Roth. Biology of the Pancreas in Growing Animals , 2000 .
[37] W. Karasov,et al. Dietary modulation of intestinal enzymes of the house sparrow (Passer domesticus): testing an adaptive hypothesis. , 2000, Comparative biochemistry and physiology. Part A, Molecular & integrative physiology.
[38] A. Sanz,et al. Comparative study of digestive enzymes in fish with different nutritional habits. Proteolytic and amylase activities , 1999 .
[39] S. Pierzynowski,et al. Characteristics of pancreatic function in fish. , 1999 .
[40] L. Hersh,et al. Aminopeptidase activity in human nasal mucosa , 1998, Journal of Allergy and Clinical Immunology.
[41] T. Tamura,et al. Trienzyme Treatment for Food Folate Analysis: Optimal pH and Incubation Time for α-Amylase and Protease Treatments , 1998 .
[42] F. Martini,et al. The Ecology of Hagfishes , 1998 .
[43] D. Bardack. Relationships of Living and Fossil Hagfishes , 1998 .
[44] R. Weber,et al. The Biology of Hagfishes , 1998, Springer Netherlands.
[45] J. Villanueva,et al. Intestinal Alkaline Phosphatase of the Fish Cyprinus carpio: Regional Distribution and Membrane Association , 1997 .
[46] A. Gelman,et al. Membrane‐linked digestion in fish , 1997 .
[47] B. Ueberschär. The use of tryptic enzyme activity measurement as a nutritional condition index: Laboratory calibration data and field application , 1995 .
[48] A. Taylor. Aminopeptidases: structure and function , 1993, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[49] J. Conlon,et al. Neurohormonal peptides in the gut of the Atlantic hagfish (Myxine glutinosa) detected using antisera raised against mammalian regulatory peptides. , 1989, General and comparative endocrinology.
[50] M. Horn. Biology of marine herbivorous fishes , 1989 .
[51] T. Hecht,et al. Assays on the digestive enzymes of sharptooth catfish, Clarias gariepinus (Pisces: Clariidae) , 1987 .
[52] M. Reinecke. Substance P is a vasoactive hormone in the Atlantic hagfish Myxine glutinosa (Cyclostomata). , 1987, General and comparative endocrinology.
[53] E. Lied,et al. Lipid digestion in cod (gadus morhua) , 1987 .
[54] J. Diamond,et al. Pyloric ceca of fish: a "new" absorptive organ. , 1987, The American journal of physiology.
[55] T. W. Moon,et al. Enzyme activities in the Atlantic hagfish, Myxine glutinosa: changes with captivity and food deprivation , 1986 .
[56] H. Barnes. Oceanography and marine biology : an annual review , 1986 .
[57] B. Sidell,et al. Carbohydrate Is the Preferred Metabolic Fuel of the Hagfish (Myxine glutinosa) Heart , 1984, Physiological Zoology.
[58] A. Dahlqvist. Assay of intestinal disaccharidases. , 1984, Scandinavian journal of clinical and laboratory investigation.
[59] S. Emdin. Effects of hagfish insulin in the atlantic hagfish, Myxine glutinosa. The in vivo metabolism of [14C]glucose and [14C]leucine and studies on starvation and glucose-loading. , 1982, General and comparative endocrinology.
[60] S. Vigna,et al. Distinction between cholecystokinin-like and gastrin-like biological activities extracted from gastrointestinal tissues of some lower vertebrates. , 1979, General and comparative endocrinology.
[61] S. Vigna,et al. Stimulation of intestinal lipase secretion by porcine cholecystokinin in the hagfish, Eptatretus stouti. , 1979, General and comparative endocrinology.
[62] R. Crane,et al. Modification of an assay for trypsin and its application for the estimation of enteropeptidase. , 1975, Clinica chimica acta; international journal of clinical chemistry.
[63] M. Williams,et al. Exocrine secretion in the parotid gland: a stereological analysis at the electron microscopic level of the zymogen granule content before and after isoprenaline-induced degranulation. , 1973, Journal of anatomy.
[64] P. Desnuelle,et al. On the distribution of enterokinase in porcine intestine and on its subcellular localization. , 1973, Biochimica et biophysica acta.
[65] H. Kobayashi,et al. Seasonal Migration of the Hagfish, Eptatretus burgeri , 1972 .
[66] R. Fänge,et al. Digestive proteases in the cyclostome Myxine glutinosa (L). , 1970, Comparative biochemistry and physiology.
[67] H. Zuber,et al. Thermophilic aminopeptidases from Bacillus stearothermophilus. I. Isolation, specificity, and general properties of the thermostable aminopeptidase I. , 2009, International journal of protein research.
[68] A. Brodal,et al. The biology of myxine , 1963 .
[69] M. Smogyi,et al. Notes on sugar determination. , 1952, The Journal of biological chemistry.
[70] Norton Nelson,et al. A PHOTOMETRIC ADAPTATION OF THE SOMOGYI METHOD FOR THE DETERMINATION OF GLUCOSE , 1944 .