Enzyme‐producing bacteria isolated from fish gut: a review

Digestion of food depends on three main factors: (i) the ingested food and the extent to which the food is susceptible to the effects of digestive enzymes, (ii) the activity of the digestive enzymes and (iii) the length of time the food is exposed to the action of the digestive enzymes. Each of these factors is affected by a multitude of secondary factors. The present review highlights the experimental results on the secondary factor, enzymatic activity and possible contribution of the fish gut microbiota in nutrition. It has been suggested that fish gut microbiota might have positive effects to the digestive processes of fish, and these studies have isolated and identified the enzyme-producing microbiota. In addition to Bacillus genera, Enterobacteriaceae and Acinetobacter, Aeromonas, Flavobacterium, Photobacterium, Pseudomonas, Vibrio, Microbacterium, Micrococcus, Staphylococcus, unidentified anaerobes and yeast are also suggested to be possible contributors. However, in contrast to endothermic animals, it is difficult to conclude the exact contribution of the gastrointestinal microbiota because of the complexity and variable ecology of the digestive tract of different fish species, the presence of stomach and pyloric caeca and the relative intestinal length. The present review will critically evaluate the results to establish whether or not intestinal microbiota do contribute to fish nutrition.

[1]  A. Ray,et al.  The effect of different feeding regimes on enzyme activities of gut microbiota in Atlantic cod (Gadus morhua L.) , 2013 .

[2]  Zhigang Zhou,et al.  Use of chitin and krill in aquaculture - the effect on gut microbiota and the immune system: a review. , 2012 .

[3]  Zhigang Zhou,et al.  Culturable autochthonous gut bacteria in Atlantic salmon (Salmo salar L.) fed diets with or without chitin. Characterization by 16S rRNA gene sequencing, ability to produce enzymes and in vitro growth inhibition of four fish pathogens , 2012 .

[4]  E. Ringø,et al.  The effect of lactic acid bacteria administration on growth, digestive enzyme activity and gut microbiota in Persian sturgeon (Acipenser persicus) and beluga (Huso huso) fry , 2011 .

[5]  A. Latała,et al.  The Comparison of Spectrophotometric Method and High-Performance Liquid Chromatography in Photosynthetic Pigments Analysis , 2011 .

[6]  S. Chatterjee,et al.  Phytase-Producing Rhodococcus sp. (MTCC 9508) from Fish Gut: A Preliminary Study , 2011, Proceedings of the Zoological Society.

[7]  I. Yoon,et al.  Gut microbial status induced by antibiotic growth promoter alters the prebiotic effects of dietary DVAQUA® on Aeromonas hydrophila-infected tilapia: production, intestinal bacterial community and non-specific immunity. , 2011, Veterinary microbiology.

[8]  A. Brandelli,et al.  Cellulase‐producing Bacillus strains isolated from the intestine of Amazon basin fish , 2011 .

[9]  Xinjun Chen,et al.  Cellulase‐producing bacteria of Aeromonas are dominant and indigenous in the gut of Ctenopharyngodon idellus (Valenciennes) , 2011 .

[10]  E. Ringø,et al.  Gastrointestinal bacteria in Rohu, Labeo rohita (Actinopterygii: Cypriniformes: Cyprinidae): scanning electron microscopy and bacteriological study. , 2010 .

[11]  D. A. Stone,et al.  Effect of water temperature on gut transit time, digestive enzyme activity and nutrient digestibility in yellowtail kingfish (Seriola lalandi) , 2010 .

[12]  S. Nayak Role of gastrointestinal microbiota in fish , 2010 .

[13]  K. Meng,et al.  Effects of the antibiotic growth promoters flavomycin and florfenicol on the autochthonous intestinal microbiota of hybrid tilapia (Oreochromis niloticus ♀ × O. aureus ♂) , 2010, Archives of Microbiology.

[14]  J. Balcázar,et al.  The effect of Pediococcus acidilactici on the gut microbiota and immune status of on‐growing red tilapia (Oreochromis niloticus) , 2010, Journal of applied microbiology.

[15]  S. Nayak Probiotics and immunity: a fish perspective. , 2010, Fish & shellfish immunology.

[16]  M. Yamabhai,et al.  Chitin Research Revisited , 2010, Marine drugs.

[17]  A. Ray,et al.  Characterization and Identification of Enzyme-producing Bacteria Isolated from the Digestive Tract of Bata, Labeo bata , 2010 .

[18]  Marcio A. Mazutti,et al.  A Review on Microbial Lipases Production , 2010 .

[19]  J. Bøgwald,et al.  The current status and future focus of probiotic and prebiotic applications for salmonids , 2010 .

[20]  T. Mayhew,et al.  Lactic acid bacteria vs. pathogens in the gastrointestinal tract of fish: a review , 2010 .

[21]  Å. Krogdahl,et al.  Important antinutrients in plant feedstuffs for aquaculture: an update on recent findings regarding responses in salmonids , 2010 .

[22]  Å. Krogdahl,et al.  2 - Feeding, digestion and absorption of nutrients , 2010 .

[23]  Deniz Çoban,et al.  Organogenesis of exocrine pancreas in sharpsnout sea bream (Diplodus puntazzo) larvae: characterization of trypsin expression , 2010, Fish Physiology and Biochemistry.

[24]  A. Ray,et al.  Identification of gut-associated amylase, cellulase and protease-producing bacteria in three species of Indian major carps. , 2009 .

[25]  A. Ruiz,et al.  Evolution of Herbivory in a Carnivorous Clade of Minnows (Teleostei: Cyprinidae): Effects on Gut Size and Digestive Physiology , 2009, Physiological and Biochemical Zoology.

[26]  E. Ringø,et al.  Possible influence of probiotic adhesion to intestinal mucosa on the activity and morphology of rainbow trout (Oncorhynchus mykiss) enterocytes , 2009 .

[27]  T. Inagaki,et al.  Colonization and probiotic effects of lactic acid bacteria in the gut of the abalone Haliotis gigantea , 2009, Fisheries Science.

[28]  D. German,et al.  Digestive enzyme activities and gastrointestinal fermentation in wood-eating catfishes , 2009, Journal of Comparative Physiology B.

[29]  D. German Inside the guts of wood-eating catfishes: can they digest wood? , 2009, Journal of Comparative Physiology B.

[30]  S. Rowland Review of Aquaculture Research and Development of the Australian Freshwater Fish Silver Perch, Bidyanus bidyanus , 2009 .

[31]  H. Smidt,et al.  Effect of dietary administration of probiotics on growth and intestine functionality of juvenile Senegalese sole (Solea senegalensis, Kaup 1858) , 2009 .

[32]  A. Ray,et al.  Phytase-producing bacteria in the digestive tracts of some freshwater fish. , 2009 .

[33]  K. Clements,et al.  Nutritional ecology of marine herbivorous fishes: ten years on , 2009 .

[34]  V. Skrodenytė-Arbačiauskienė Enzymatic activity of intestinal bacteria in roach Rutilus rutilus L. , 2007, Fisheries Science.

[35]  P. Iyapparaj,et al.  Evaluation of Protease-producing Ability of Fish Gut Isolate Bacillus cereus for Aqua Feed , 2009 .

[36]  He Li,et al.  Isolation of cellulose—producing microbes from the intestine of grass carp (Ctenopharyngodon idellus) , 2009, Environmental Biology of Fishes.

[37]  P. Navarrete,et al.  Molecular Analysis of Microbiota Along the Digestive Tract of Juvenile Atlantic Salmon (Salmo salar L.) , 2009, Microbial Ecology.

[38]  H. Peter,et al.  An evaluation of methods to study the gut bacterial community composition of freshwater zooplankton , 2008 .

[39]  Z. Chi,et al.  Production of phytase by a marine yeast Kodamaea ohmeri BG3 in an oats medium: optimization by response surface methodology. , 2008, Bioresource technology.

[40]  Deniz Çoban,et al.  Lactobacillus spp. bacteria as probiotics in gilthead sea bream (Sparus aurata, L.) larvae: Effects on growth performance and digestive enzyme activities , 2008 .

[41]  Shubhadeep Ghosh,et al.  Dietary probiotic supplementation in growth and health of live-bearing ornamental fishes , 2008 .

[42]  R. Philip,et al.  Marine yeasts—a review , 2008, Yeast.

[43]  S. Sen,et al.  Distribution of enzyme-producing bacteria in the digestive tracts of some freshwater fish , 2008 .

[44]  B. Yao,et al.  Effect of intraperitoneal injection of immunostimulatory substances on allochthonous gut microbiota of Atlantic salmon (Salmo salar L.) determined using denaturing gradient gel electrophoresis , 2008 .

[45]  J. Meseguer,et al.  In vitro studies of Lactobacillus delbrueckii subsp. lactis in Atlantic salmon (Salmo salar L.) foregut: tissue responses and evidence of protection against Aeromonas salmonicida subsp. salmonicida epithelial damage. , 2008, Veterinary microbiology.

[46]  A. Kesarcodi-Watson,et al.  Probiotics in aquaculture: The need, principles and mechanisms of action and screening processes , 2008 .

[47]  Huijuan Li,et al.  Phytase Production by a Marine Yeast Kodamea ohmeri BG3 , 2008, Applied biochemistry and biotechnology.

[48]  E. Kornegay,et al.  Microbial probiotics for pigs and poultry , 2007 .

[49]  B. Lunestad,et al.  Molecular characterisation of the intestinal microbiota of farmed Atlantic salmon (Salmo salar L.) , 2007 .

[50]  G. I. Izvekova,et al.  Symbiotic microflora in fishes of different ecological groups , 2007, Biology Bulletin.

[51]  A. Panigrahi,et al.  Microbial intervention for better fish health in aquaculture: the Indian scenario , 2007, Fish Physiology and Biochemistry.

[52]  F. Gatesoupe Live yeasts in the gut: Natural occurrence, dietary introduction, and their effects on fish health and development , 2007 .

[53]  S. Sen,et al.  Optimization of fermentation conditions for cellulase production by Bacillus subtilis CY5 and Bacillus circulans TP3 isolated from fish gut , 2007 .

[54]  B. Austin,et al.  Microbial diversity of intestinal contents and mucus in rainbow trout (Oncorhynchus mykiss) , 2007, Journal of applied microbiology.

[55]  M. L. L. Martins,et al.  Effect of the culture conditions on the production of an extracellular protease by thermophilic Bacillus sp and some properties of the enzymatic activity , 2007 .

[56]  K. Dąbrowski,et al.  Expanding the utilization of sustainable plant products in aquafeeds: a review , 2007 .

[57]  B. K. Bajaj,et al.  Production and biochemical characterization of xylanase from an alkalitolerant novel species Aspergillus niveus RS2 , 2007 .

[58]  K. Clements,et al.  Clostridia dominate 16S rRNA gene libraries prepared from the hindgut of temperate marine herbivorous fishes , 2007 .

[59]  A. Ray,et al.  Nutritional evaluation of fermented black gram (Phaseolus mungo) seed meal in compound diets for rohu, Labeo rohita (Hamilton), fingerlings , 2007 .

[60]  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.

[61]  W. Chu Optimization of extracellular alkaline protease production from species of Bacillus , 2007, Journal of Industrial Microbiology & Biotechnology.

[62]  H. Sugita,et al.  Chitinolytic bacteria in the intestinal tract of Japanese coastal fishes. , 2006, Canadian journal of microbiology.

[63]  G. Vacca,et al.  Fish protein hydrolysis by a psychrotrophic marine bacterium isolated from the gut of hake (Merluccius hubbsi). , 2006, Canadian journal of microbiology.

[64]  D. Stone,et al.  Comparison of conventional and molecular techniques to investigate the intestinal microflora of rainbow trout (Oncorhynchus mykiss) , 2006 .

[65]  H. Sugita,et al.  Identification of intest\inal bacteria from Japanese flounder (Paralichthys olivaceus) and their ability to digest chitin , 2006, Letters in applied microbiology.

[66]  F. Gatesoupe,et al.  Cross effects of the strain of dietary Saccharomyces cerevisiae and rearing conditions on the onset of intestinal microbiota and digestive enzymes in rainbow trout, Onchorhynchus mykiss, fry , 2006 .

[67]  B. Austin The Bacterial Microflora of Fish, Revised , 2006, TheScientificWorldJournal.

[68]  M. Rinaudo,et al.  Chitin and chitosan: Properties and applications , 2006 .

[69]  Zi-rong Xu,et al.  Effect of probiotics for common carp (Cyprinus carpio) based on growth performance and digestive enzyme activities , 2006 .

[70]  R. Dhanusha,et al.  Effect of different growth parameters on endoglucanase enzyme activity by bacteria isolated from coir retting effluents of estuarine environment , 2006 .

[71]  R. Roy,et al.  Characterization of cellulase-producing bacteria from the digestive tract of tilapia, Oreochromis mossambica (Peters) and grass carp, Ctenopharyngodon idella (Valenciennes) , 2006 .

[72]  K. Ishihara,et al.  Production of docosahexaenoic acid by marine bacteria isolated from deep sea fish , 1994, Lipids.

[73]  R. Olsen,et al.  Production of eicosapentaenoic acid by freshwaterVibrio , 1992, Lipids.

[74]  R. G. Jensen Detection and determination of lipase (acylglycerol hydrolase) activity from various sources , 1983, Lipids.

[75]  J. Kandel,et al.  Characterizing the resident, fermentative microbial consortium in the hindgut of the temperate-zone herbivorous fish, Hermosilla azurea (Teleostei: Kyphosidae) , 2006 .

[76]  M. Brito,et al.  Composition and antagonistic activity of the indigenous intestinal microbiota of Prochilodus argenteus Agassiz , 2005 .

[77]  T. Mayhew,et al.  Acute stress alters intestinal function of rainbow trout, Oncorhynchus mykiss (Walbaum) , 2005 .

[78]  A. Ray,et al.  Improvement of nutritive value of grass pea (Lathyrus sativus) seed meal in the formulated diets for rohu, Labeo rohita (Hamilton) fingerlings after fermentation with a fish gut bacterium. , 2005, Bioresource technology.

[79]  S. Cutting,et al.  The use of bacterial spore formers as probiotics. , 2005, FEMS microbiology reviews.

[80]  G. Baeverfjord,et al.  Lactic acid fermentation eliminates indigestible carbohydrates and antinutritional factors in soybean meal for Atlantic salmon (Salmo salar) , 2005 .

[81]  Å. Krogdahl,et al.  Carbohydrates in fish nutrition: digestion and absorption in postlarval stages , 2005 .

[82]  K. Clements,et al.  Gut carbohydrases from the New Zealand marine herbivorous fishes Kyphosus sydneyanus (Kyphosidae), Aplodactylus arctidens (Aplodactylidae) and Odax pullus (Labridae). , 2005, Comparative biochemistry and physiology. Part B, Biochemistry & molecular biology.

[83]  M. Woodward,et al.  Screening for Bacillus Isolates in the Broiler Gastrointestinal Tract , 2005, Applied and Environmental Microbiology.

[84]  T. Jeffries,et al.  Alkaline-active xylanase produced by an alkaliphilicBacillus sp isolated from kraft pulp , 1995, Journal of Industrial Microbiology.

[85]  L. Gram,et al.  Chapter 17 Prospects of fish probiotics , 2005 .

[86]  U. Schillinger,et al.  Chapter 18 Antimicrobial activity of lactic acid bacteria isolated from aquatic animals and the use of lactic acid bacteria in aquaculture 1 1 Financial support from the Norwegian Research Council (Grant No. 122851/122) is gratefully acknowledged. , 2005 .

[87]  Marian M. Cahill Bacterial flora of fishes: A review , 2005, Microbial Ecology.

[88]  Jia-an Cheng,et al.  Cellulase activity in five species of important termites in China , 2004 .

[89]  N. Şahin,et al.  Optimization of extracellular endoxylanase, endoglucanase and peroxidase production by Streptomyces sp. F2621 isolated in Turkey , 2004, Journal of applied microbiology.

[90]  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.

[91]  J. Swings,et al.  Identification of lactic acid bacteria: culture-dependent and culture-independent methods , 2004 .

[92]  R. Greiner,et al.  Bacterial phytase: potential application, in vivo function and regulation of its synthesis , 2004 .

[93]  D. Tovar‐Ramírez,et al.  Influence of dietary live yeast on European sea bass (Dicentrarchus labrax) larval development , 2004 .

[94]  S. Sen,et al.  Evaluation of the nutritive value of Leucaena leucocephala leaf meal, inoculated with fish intestinal bacteria Bacillus subtilis and Bacillus circulans in formulated diets for rohu, Labeo rohita (Hamilton) fingerlings , 2004 .

[95]  S. Salminen,et al.  Microbial-gut interactions in health and disease. Probiotics. , 2004, Best practice & research. Clinical gastroenterology.

[96]  A. Brandelli,et al.  Bacteriocin‐like substance production by Bacillus licheniformis strain P40 , 2004, Letters in applied microbiology.

[97]  A. Henriques,et al.  Characterization of Bacillus Probiotics Available for Human Use , 2004, Applied and Environmental Microbiology.

[98]  S. Sen,et al.  Enzyme producing bacterial flora isolated from fish digestive tracts , 2002, Aquaculture International.

[99]  K. Sasaki,et al.  Production of a cellulase-free xylanase from agricultural waste materials by a thermotolerant Streptomyces sp. , 2001, Biotechnology Letters.

[100]  F. Alarcón,et al.  Characterization of digestive carbohydrase activity in the gilthead seabream (Sparus aurata) , 2001, Hydrobiologia.

[101]  F. Shanahan,et al.  Probiotics: from myth to reality. Demonstration of functionality in animal models of disease and in human clinical trials , 1999, Antonie van Leeuwenhoek.

[102]  A. Ray,et al.  Cellulase activity in rohu fingerlings , 1998, Aquaculture International.

[103]  C. Cahu,et al.  Dietary spermine supplementation induces intestinal maturation in sea bass (Dicentrarchus labrax) larvae , 1997, Fish Physiology and Biochemistry.

[104]  L. Gustafsson,et al.  Yeast colonizing the intestine of rainbow trout (Salmo gairdneri) and turbot (Scophtalmus maximus) , 1995, Microbial Ecology.

[105]  K. Clements,et al.  Short-chain fatty acid metabolism in temperate marine herbivorous fish , 1994, Journal of Comparative Physiology B.

[106]  M. Beveridge,et al.  Ingestion of bacteria in suspension Indian major carps (Catla catla, Labeo rohita) and Chinese carps (Hypophthalmichthys molitrix, Aristichthys nobilis) , 1993, Hydrobiologia.

[107]  J. M. Harris,et al.  The presence, nature, and role of gut microflora in aquatic invertebrates: A synthesis , 1993, Microbial Ecology.

[108]  K. Dąbrowski,et al.  Studies on the role of exogenous proteolytic enzymes in digestion processes in fish , 1977, Hydrobiologia.

[109]  K. Clements,et al.  Carbohydrate utilisation by microbial symbionts in the marine herbivorous fishes Odax cyanomelas and Crinodus lophodon , 2004, Journal of Comparative Physiology B.

[110]  T. Mayhew,et al.  Electron microscopy of the intestinal microflora of fish , 2003 .

[111]  R. F. Ramirez,et al.  Enzyme production by obligate intestinal anaerobic bacteria isolated from oscars (Astronotus ocellatus), angelfish (Pterophyllum scalare) and southern flounder (Paralichthys lethostigma) , 2003 .

[112]  D. A. Stone,et al.  Dietary Carbohydrate Utilization by Fish , 2003 .

[113]  L. Ellestad,et al.  The effect of exogenously administered recombinant bovine somatotropin on intestinal phytase activity and in vivo phytate hydrolysis in hybrid striped bass Morone chrysops × M. saxatilis , 2003 .

[114]  Q. Beg,et al.  Purification and characterization of an oxidation-stable, thiol-dependent serine alkaline protease from Bacillus mojavensis , 2003 .

[115]  H. Sugita,et al.  Characterization of the goldfish fecal microflora by the fluorescent in situ hybridization method , 2003 .

[116]  T. Satyanarayana,et al.  Phytases: Microbial Sources, Production, Purification, and Potential Biotechnological Applications , 2003, Critical reviews in biotechnology.

[117]  B. Austin,et al.  Probiotics in aquaculture , 2002 .

[118]  H. Balakrishnan,et al.  Characterization of alkaline thermoactive cellulase-free xylanases from alkalophilic Bacillus (NCL 87-6-10). , 2002, Journal of biochemistry, molecular biology, and biophysics : JBMBB : the official journal of the Federation of Asian and Oceanian Biochemists and Molecular Biologists.

[119]  R. Kuhad,et al.  Properties and application of a partially purified alkaline xylanase from an alkalophilic fungus Aspergillus nidulans KK-99. , 2002, Bioresource technology.

[120]  A. Ray,et al.  Duckweed (Lemna polyrhiza) leaf meal as a source of feedstuff in formulated diets for rohu (Labeo rohita Ham.) fingerlings after fermentation with a fish intestinal bacterium. , 2002, Bioresource technology.

[121]  W. Holben,et al.  Phylogenetic Analysis of Intestinal Microflora Indicates a Novel Mycoplasma Phylotype in Farmed and Wild Salmon , 2002, Microbial Ecology.

[122]  S. Sen,et al.  Characterization of Bacilli Isolated from the Gut of Rohu, Labeo rohita, Fingerlings and Its Significance in Digestion , 2002 .

[123]  M. Kihara,et al.  Production of short-chain fatty acids and gas from various oligosaccharides by gut microbes of carp (Cyprinus carpio L.) in micro-scale batch culture. , 2002, Comparative biochemistry and physiology. Part A, Molecular & integrative physiology.

[124]  Q. Beg,et al.  Bacterial alkaline proteases: molecular approaches and industrial applications , 2002, Applied Microbiology and Biotechnology.

[125]  A. Bomba,et al.  The possibilities of potentiating the efficacy of probiotics , 2002 .

[126]  K. Clements,et al.  Hindgut Fermentation in Three Species of Marine Herbivorous Fish , 2002, Applied and Environmental Microbiology.

[127]  F. Gatesoupe,et al.  Effect of live yeast incorporation in compound diet on digestive enzyme activity in sea bass (Dicentrarchus labrax) larvae , 2002 .

[128]  C. Cahu,et al.  Substitution of live food by formulated diets in marine fish larvae , 2001 .

[129]  K. Becker,et al.  Antinutritional factors present in plant-derived alternate fish feed ingredients and their effects in fish , 2001 .

[130]  I. Fernandez,et al.  Characterization of α-amylase activity in five species of Mediterranean sparid fishes (Sparidae, Teleostei) , 2001 .

[131]  S. Salminen,et al.  Characterization of the Properties of Human- and Dairy-Derived Probiotics for Prevention of Infectious Diseases in Fish , 2001, Applied and Environmental Microbiology.

[132]  J. Walter,et al.  Detection of Lactobacillus, Pediococcus, Leuconostoc, and Weissella Species in Human Feces by Using Group-Specific PCR Primers and Denaturing Gradient Gel Electrophoresis , 2001, Applied and Environmental Microbiology.

[133]  D. Daffonchio,et al.  Thuricin 7: a novel bacteriocin produced by Bacillus thuringiensis BMG1.7, a new strain isolated from soil , 2001, Letters in applied microbiology.

[134]  M. Rao,et al.  pH dependent conformational and structural changes of xylanase from an alkalophilic thermophilic Bacillus sp (NCIM 59). , 2001, Enzyme and microbial technology.

[135]  R. Sobti,et al.  Serine alkaline protease from a newly isolated Bacillus sp. SSR1 , 2001 .

[136]  M. Gismondo,et al.  The use of probiotics in medical practice. , 2000, International journal of antimicrobial agents.

[137]  W. Verstraete,et al.  Probiotic Bacteria as Biological Control Agents in Aquaculture , 2000, Microbiology and Molecular Biology Reviews.

[138]  S. Sinchaikul,et al.  Purification and characterization of the highly thermostable proteases from Bacillus stearothermophilus TLS33. , 2000, Protein expression and purification.

[139]  J. Ha,et al.  Relative Contributions of Bacteria, Protozoa, and Fungi to In Vitro Degradation of Orchard Grass Cell Walls and Their Interactions , 2000, Applied and Environmental Microbiology.

[140]  O. Fagbenro,et al.  Haematological profile, food composition and digestive enzyme assay in the gut of the African bony-tongue fish, Heterotis (Clupisudis) niloticus (Cuvier 1829) (Osteoglossidae) , 2000 .

[141]  Bonnie J. Smith,et al.  Distribution of intestinal enzyme activities along the intestinal tract of cultured Nile tilapia, Oreochromis niloticus L. , 2000 .

[142]  J. Nielsen,et al.  The microflora of rainbow trout intestine : a comparison of traditional and molecular identification , 2000 .

[143]  B. Bhushan,et al.  Isolation, purification and characterization of xylanasefrom Staphylococcus sp. SG‐13 and its application in biobleaching of kraft pulp , 2000, Journal of applied microbiology.

[144]  V. Skrodenytė-Arbačiauskienė Proteolytic Activity of the Roach (Rutilus Rutilus L.) Intestinal Microflora , 2000 .

[145]  A. H. Ullah,et al.  Characterization of recombinant fungal phytase (phyA) expressed in tobacco leaves. , 1999, Biochemical and biophysical research communications.

[146]  S. Martínez‐Díaz,et al.  Feasible mechanisms for algal digestion in the king angelfish , 1999 .

[147]  G. Sarà,et al.  Experiences of integrated mariculture in a southern Tyrrhenian area (Mediterranean Sea) , 1999 .

[148]  L. Drago,et al.  Review of probiotics available to modify gastrointestinal flora. , 1999, International journal of antimicrobial agents.

[149]  C. Kumar,et al.  Novel alkaline serine proteases from alkalophilic Bacillus spp.: purification and some properties , 1999 .

[150]  K. Becker,et al.  Effects of dietary tannic acid and quebracho tannin on growth performance and metabolic rates of common carp (Cyprinus carpio L.) , 1999 .

[151]  D. J. Stewart,et al.  Wood‐eating catfishes of the genus Panaque: gut microflora and cellulolytic enzyme activities , 1999 .

[152]  Shih‐Chu Chen,et al.  The immune response of rainbow trout (Oncorhynchus mykiss) againstAphanomyces invadans , 1999 .

[153]  E. Ringø Does Carnobacterium divergens isolated from Atlantic salmon, Salmo salar L., colonize the gut of early developing turbot, Scophthalmus maximus L., larvae? , 1999 .

[154]  E. Ringø,et al.  INTESTINAL MICROFLORA OF FISH LARVAE AND FRY , 1999 .

[155]  A. Sanz,et al.  Comparative study of digestive enzymes in fish with different nutritional habits. Proteolytic and amylase activities , 1999 .

[156]  H. Sugita,et al.  Production of β- N -Acetylglucosaminidase and Chitinase by Aeromonas Species Isolated from River Fish , 1999 .

[157]  P. Jollès,et al.  Chitin and chitinases. , 1999 .

[158]  D. Irwin,et al.  Genetics and Properties of Cellulases , 1999 .

[159]  Glenn R. Gibson,et al.  Prebiotics, probiotics and human gut microbiology , 1999 .

[160]  E. Tamiya,et al.  Properties of a cold-active protease from psychrotrophic Flavobacterium balustinum P104 , 1998, Applied Microbiology and Biotechnology.

[161]  H. Mikkelsen,et al.  Effects of supplementing the feed to Atlantic cod (Gadus morhua) fry with lactic acid bacteria and immuno-stimulating peptides during a challenge trial with Vibrio anguillarum , 1998 .

[162]  G. Gibson,et al.  An Overview of Probiotics, Prebiotics and Synbiotics in the Functional Food Concept: Perspectives and Future Strategies , 1998 .

[163]  P. Quazuguel,et al.  Algal addition in sea bass (Dicentrarchus labrax) larvae rearing : effect on digestive enzymes , 1998 .

[164]  F. Gatesoupe,et al.  Lactic acid bacteria in fish: a review , 1998 .

[165]  P. Quazuguel,et al.  Early weaning of seabass larvae, Dicentrarchus labrax: the effect on microbiota, with particular attention to iron supply and exoenzymes , 1997 .

[166]  Ø. Øverli,et al.  Effect of dominance hierarchy formation on aerobic microbiota associated with epithelial mucosa of subordinate and dominant individuals of Arctic charr, Salvelinus alpinus (L.) , 1997 .

[167]  S. Kidd,et al.  Secreted enzymes of Aeromonas. , 1997, FEMS microbiology letters.

[168]  I. Yumoto,et al.  Isolation of a Pseudomonas species from fish intestine that produces a protease active at low temperature , 1997, Letters in applied microbiology.

[169]  H. Sugita,et al.  Production of amylase by the intestinal microflora in cultured freshwater fish , 1997, Letters in applied microbiology.

[170]  B. K. Lonsane,et al.  Production and application of tannin acyl hydrolase: state of the art. , 1997, Advances in applied microbiology.

[171]  V. Kuz’mina Influence of age on digestive enzyme activity in some freshwater teleosts , 1996 .

[172]  N. Mukhopadhyay,et al.  The potential of deoiled sal (Shorea robusta) seed meal as a feedstuff in pelleted feed for Indian major carp, rohu, Labeo rohita (Hamilton), fingerlings , 1996 .

[173]  G. R. Castro,et al.  Thermostable alkaline proteases of Bacillus licheniformis MIR 29: isolation, production and characterization , 1996, Applied Microbiology and Biotechnology.

[174]  E. Ringø,et al.  Intestinal microflora of salmonids: a review , 1995 .

[175]  I. Chakrabarti,et al.  Digestive enzymes in 11 freshwater teleost fish species in relation to food habit and niche segregation , 1995 .

[176]  K. Clements,et al.  Fermentation in Tropical Marine Herbivorous Fishes , 1995, Physiological Zoology.

[177]  E. Stellwag,et al.  Characterization and Ecology of Carboxymethylcellulase-Producing Anaerobic Bacterial Communities Associated with the Intestinal Tract of the Pinfish, Lagodon rhomboides , 1995, Applied and environmental microbiology.

[178]  J. Kandel,et al.  Volatile fatty acids in the hindguts of herbivorous fishes from temperate and tropical marine waters , 1994 .

[179]  L. Gustafsson,et al.  Cell surface hydrophobicity and its relation to adhesion of yeasts isolated from fish gut , 1994 .

[180]  K. Horikoshi,et al.  Thermophilic Alkaline Xylanase from Newly Isolated Alkaliphilic and Thermophilic Bacillus sp. Strain TAR-1. , 1994, Bioscience, biotechnology, and biochemistry.

[181]  E. Stellwag,et al.  Isolation of cellulolytic microbes from the intestinal tract of the pinfish, Lagodon rhomboides: size-related changes in diet and microbial abundance , 1993 .

[182]  U. Sabapathy,et al.  A quantitative study of some digestive enzymes in the rabbitfish, Siganus canaliculatus and the sea bass, Lates calcarifer , 1993 .

[183]  J. Vernier Intestinal absorption of protein in teleost fish , 1992 .

[184]  H. Birkbeck,et al.  Production of Eicosapentaenoic Acid (20:5 n-3) by Vibrio pelagius Isolated from Turbot (Scophthalmus maximus (L.)) Larvae , 1992, Applied and environmental microbiology.

[185]  K. Clements Endosymbiotic communities of two herbivorous labroid fishes,Odax cyanomelas andO. pullus , 1991 .

[186]  G. Ahearn,et al.  TRANSINTESTINAL ACETATE TRANSPORT IN A HERBIVOROUS TELEOST: ANION EXCHANGE AT THE BASOLATERAL MEMBRANE , 1991 .

[187]  P. Bergot,et al.  Utilization of dietary pregelatinized starch by common carp (Cyprinus carpio L.) larvae , 1991 .

[188]  A. Yoshida,et al.  Hydrolysis of fish oil by marine bacterial lipase , 1991 .

[189]  A. Scalbert Antimicrobial properties of tannins , 1991 .

[190]  H. Sugita,et al.  The vitamin B12-producing ability of the intestinal microflora of freshwater fish , 1991 .

[191]  K. Das,et al.  Studies on the digestive enzymes of grass carp, Ctenopharyngodon idella (Val.) , 1991 .

[192]  R. Prins,et al.  Comparative aspects of plant cell wall digestion in insects , 1991 .

[193]  O. Fagbenro Food composition and digestive enzymes in the gut of pond‐cultured Clarias isheriensis (Sydenham 1980), (Siluriformes: Clariidae) , 1990 .

[194]  E. N. Bergman Energy contributions of volatile fatty acids from the gastrointestinal tract in various species. , 1990, Physiological reviews.

[195]  P Béguin,et al.  Molecular biology of cellulose degradation. , 1990, Annual review of microbiology.

[196]  K. Clements,et al.  Occurrence and characteristics of unusual protistan symbionts from surgeonfishes (Acanthuridae) of the Great Barrier Reef, Australia , 1989 .

[197]  A. Ball,et al.  Production and properties of xylanases from actinomycetes , 1989 .

[198]  R. Fuller,et al.  Probiotics in man and animals. , 1989, The Journal of applied bacteriology.

[199]  G. Rechkemmer,et al.  Absorption of short-chain fatty acids and their role in the hindgut of monogastric animals , 1989 .

[200]  G. Ahearn,et al.  Short-chain fatty acid transport in the intestine of a herbivorous teleost. , 1988, The Journal of experimental biology.

[201]  S. Watabe,et al.  Eicosapentaenoic acid productivity of the bacteria isolated from fish intestines , 1988 .

[202]  W. Wiebe,et al.  Fermentative microbial digestion in herbivorous fishes , 1987 .

[203]  A. Pointillart,et al.  Importance of cereal phytase activity for phytate phosphorus utilization by growing pigs fed diets containing triticale or corn. , 1987, The Journal of nutrition.

[204]  J. Russell,et al.  Relative contributions of ruminal bacteria and protozoa to the degradation of protein in vitro. , 1987, Journal of animal science.

[205]  B. Austin,et al.  Bacterial microflora in the gastro‐intestinal tract of Dover sole (Solea solea L.), with emphasis on the possible role of bacteria in the nutrition of the host , 1986 .

[206]  C. Fromageot,et al.  Cellulose digestibility in grass carp, Ctenopharyngodon idella and in goldfish, Carassius auratus , 1986 .

[207]  E. Danulat The effects of various diets on chitinase and ß-glucosidase activities and the condition of cod, Gadus morhua (L.) , 1986 .

[208]  G. J. Lindsay The significance of chitinolytic enzymes and lysozyme in rainbow trout (Salmo gairdneri) defence , 1986 .

[209]  T. Sakata,et al.  A numerical taxonomic study of the dominant bacteria isolated from tilapia intestines , 1986 .

[210]  W. L. Montgomery,et al.  A unique symbiosis in the gut of tropical herbivorous surgeonfish (acanthuridae: teleostei) from the red sea. , 1985, Science.

[211]  D. Savage,et al.  Host specificity of the colonization of murine gastric epithelium by lactobacilli , 1984 .

[212]  G. J. Lindsay Distribution and function of digestive tract chitinolytic enzymes in fish , 1984 .

[213]  E. Danulat,et al.  Chitinase activity in the digestive tract of the cod, Gadus morhua (L.) , 1984 .

[214]  L. Benitez,et al.  Studies on the carbohydrases in the digestive tract of the milkfish chanos chanos , 1981 .

[215]  W. Roediger Role of anaerobic bacteria in the metabolic welfare of the colonic mucosa in man. , 1980, Gut.

[216]  J. Lebeault,et al.  Bacteria Degrading Tannic Acid and Related Compounds , 1980 .

[217]  G. J. Lindsay,et al.  Carboxymethylcellulase activity in the digestive tracts of fish , 1980 .

[218]  T. Sakata,et al.  Variations in the intestinal microflora of Tilapia reared in fresh and sea water. , 1980 .

[219]  T. Trust,et al.  Obligate Anaerobic Bacteria in the Gastrointestinal Microflora of the Grass Carp (Ctenopharyngodon idella), Goldfish (Carassius auratus), and Rainbow Trout (Salmo gairdneri) , 1979 .

[220]  H. Henderickx,et al.  Quantitative in Vitro Evaluation of the Energy Metabolism Influenced by Virginiamycin and Spiramycin used as Growth Promoters in Pig Nutrition , 1979 .

[221]  K. Slettengren,et al.  Chitinolytic enzymes in the digestive system of marine fishes , 1979 .

[222]  T. Sakata,et al.  Microflora in the alimentary tract of gray mullet. IV. Estimation of enzymic activities of the intestinal bacteria. , 1979 .

[223]  B. G. Kapoor,et al.  The Alimentary Canal and Digestion in Teleosts , 1976 .

[224]  S. Shumway,et al.  Occurrence of cellulase activity in the stomachs of fishes , 1974 .

[225]  T. Trust,et al.  The bacterial flora in the alimentary tract of freshwater salmonid fishes. , 1974, Canadian journal of microbiology.

[226]  C. Jeuniaux,et al.  Distribution Et Localisation Tissulaire De La Synthèse Des Chitinases Chez Les Vertébrés Inférieurs , 1973 .

[227]  S. Kawai,et al.  Studies on Digestive Enzymes of Fishes-III , 1973 .

[228]  R. H. McBee Significance of Intestinal Microflora in Herbivory , 1971 .

[229]  R. Starkey,et al.  DECOMPOSITION OF PLANT TANNINS BY SOME SOIL MICROORGANISMS , 1969 .

[230]  A. Kanazawa,et al.  Studies on the Production of B Vitamins by Intestinal Bacteria of Fish-III , 1966 .

[231]  M. Kitamikado,et al.  STUDIES ON THE DIGESTIVE ENZYMES OF RAINBOW TROUT-III , 1960 .

[232]  E. Barrington CHAPTER III – THE ALIMENTARY CANAL AND DIGESTION , 1957 .

[233]  G. R. Fish Digestion in Tilapia esculenta , 1951, Nature.