Carbohydrate utilisation by microbial symbionts in the marine herbivorous fishes Odax cyanomelas and Crinodus lophodon

被引:35
作者
Seeto, GS
Veivers, PC
Clements, KD
Slaytor, M
机构
[1] UNIV SYDNEY,DEPT BIOCHEM,SYDNEY,NSW 2006,AUSTRALIA
[2] UNIV SYDNEY,SCH BIOL SCI,SYDNEY,NSW 2006,AUSTRALIA
关键词
temperate marine fish; marine herbivorous fish; carbohydrate fermentation; herring cale; Odax cyanomelas; sea carp; Crinodus lophodon;
D O I
10.1007/BF00387519
中图分类号
Q4 [生理学];
学科分类号
071003 ;
摘要
Carbohydrate uptake and catabolism by the gut microbiota of two species of temperate marine herbivorous fish were investigated using enzyme extracts prepared from microbial pellets. The fish studied were the herring cale Odax cyanomelas (Family Odacidae), which feeds on Ecklonia radiata, and the sea carp Crinodus lophodon (Family Aplodactylidae), which feeds primarily on red and green algae. Constitutive phosphoenolpyruvate phosphotransferase systems for glucose, galactose, fructose and mannitol were present in the microbiota of both fish. Hexokinase, fructokinase and mannitol dehydrogenase activities indicated that transport of the corresponding substrates may be coupled to permeases. Galactokinase activity was only detected in C. lophodon, as expected from its diet. Phosphofructokinase and pyruvate kinase activities were taken to indicate that carbohydrate metabolism proceeded via the fructose bisphosphate pathway. Differences in the transport and metabolism of the different monomers by the microbiota of O. cyanomelas and C. lophodon correlated strongly with predicted monomer availability in the gut of each species, suggesting that the microbiota are an integral component of digestion in these fish. The rates of production in adult fish of acetate, the major short-chain fatty acid, were estimated as 136 mu mol . h(-1) in O. cyanomelas and 166 mu mol . h(-1) in C. lophodon. These rates indicate that microbial fermentation is a potentially important source of energy for the host fish.
引用
收藏
页码:571 / 579
页数:9
相关论文
共 45 条
[1]  
Anderson R L, 1975, Methods Enzymol, V42, P39
[2]   MECHANISMS OF DIGESTION IN THE MARINE HERBIVORE, THE LUDERICK, GIRELLA-TRICUSPIDATA (QUOY AND GAIMARD) [J].
ANDERSON, TA .
JOURNAL OF FISH BIOLOGY, 1991, 39 (04) :535-547
[3]   PATCH FORMATION BY HERBIVOROUS FISH IN A TEMPERATE AUSTRALIAN KELP FOREST [J].
ANDREW, NL ;
JONES, GP .
OECOLOGIA, 1990, 85 (01) :57-68
[4]   SELECTION OF POTENTIALS FOR PULSED AMPEROMETRIC DETECTION OF CARBOHYDRATES AT GOLD ELECTRODES [J].
ANDREWS, RW ;
KING, RM .
ANALYTICAL CHEMISTRY, 1990, 62 (19) :2130-2134
[5]  
[Anonymous], FEMS MICROBIOLOGY EC
[6]   URIC-ACID SYNTHESIS IN FRESHLY COLLECTED AND LABORATORY-MAINTAINED NASUTITERMES-WALKERI HILL [J].
CHAPPELL, DJ ;
SLAYTOR, M .
INSECT BIOCHEMISTRY AND MOLECULAR BIOLOGY, 1993, 23 (04) :499-506
[7]   OCCURRENCE AND CHARACTERISTICS OF UNUSUAL PROTISTAN SYMBIONTS FROM SURGEONFISHES (ACANTHURIDAE) OF THE GREAT BARRIER-REEF, AUSTRALIA [J].
CLEMENTS, KD ;
SUTTON, DC ;
CHOAT, JH .
MARINE BIOLOGY, 1989, 102 (03) :403-412
[8]   SHORT-CHAIN FATTY-ACID METABOLISM IN TEMPERATE MARINE HERBIVOROUS FISH [J].
CLEMENTS, KD ;
GLEESON, VP ;
SLAYTOR, M .
JOURNAL OF COMPARATIVE PHYSIOLOGY B-BIOCHEMICAL SYSTEMIC AND ENVIRONMENTAL PHYSIOLOGY, 1994, 164 (05) :372-377
[9]  
CLEMENTS KD, 1991, THESIS J COOK U N QU
[10]  
CRANS DC, 1987, METHOD ENZYMOL, V136, P271