STRATEGIES OF NUTRIENT TRANSPORT BY RUMINAL BACTERIA

被引:25
作者
RUSSELL, JB
STROBEL, HJ
MARTIN, SA
机构
[1] CORNELL UNIV,DEPT ANIM SCI,ITHACA,NY 14853
[2] UNIV GEORGIA,DEPT ANIM & DAIRY SCI,ATHENS,GA 30602
[3] UNIV GEORGIA,DEPT MICROBIOL,ATHENS,GA 30602
关键词
ionophores; ruminal bacteria; transport;
D O I
10.3168/jds.S0022-0302(90)78987-4
中图分类号
S8 [畜牧、 动物医学、狩猎、蚕、蜂];
学科分类号
0905 ;
摘要
The survival of bacteria in natural environments like the rumen depends on the ability of the bacteria to scavenge nutrients. It is now evident that ruminal bacteria use a variety of transport mechanisms. Hydrophobic substances, such as ammonia and acetate, are permeable to the lipid bilayers of cell membranes and can be taken up by passive diffusion. Hydrophilic compounds (e.g., sugars, amino acids, peptides) do not easily pass through lipid bilayers and must be transported across cell membranes on carrier proteins. Facilitated diffusion can display saturable kinetics but does not result in accumulation of solute. Active transport can establish extremely high concentration gradients, and this work may be driven by the hydrolysis of chemical bonds (e.g., ATP) or ion gradients, which are coupled to solute symport. Many solute symports involve protons, but sodium systems also are common in ruminal bacteria. The phosphotransferase system chemically modifies sugars as they pass across the cell membrane, and several ruminal bacteria have this method of group translocation. Many feed additives have either a direct or indirect effect on rumen bacterial transport. For instance, ionophores can inhibit transport by destroying (sometimes even reversing) ion gradients, lowering intracellular pH, or causing excessive ATP hydrolysis. © 1990, American Dairy Science Association. All rights reserved.
引用
收藏
页码:2996 / 3012
页数:17
相关论文
共 100 条
[1]  
Allison M.J, 1970, PHYSL DIGESTION META, P456
[2]   STUDIES ON METABOLIC FUNCTION OF BRANCHED-CHAIN VOLATILE FATTY ACIDS, GROWTH FACTORS FOR RUMINOCOCCI .1. INCORPORATION OF ISOVALERATE INTO LEUCINE [J].
ALLISON, MJ ;
BRYANT, MP ;
DOETSCH, RN .
JOURNAL OF BACTERIOLOGY, 1962, 83 (03) :523-&
[4]  
BERGER EA, 1974, J BIOL CHEM, V249, P7747
[5]  
BOGGS DE, 1959, THESIS CORNELL U ITH
[6]   TALKING POINT - BIOENERGETIC COUPLING TO PROTONMOTIVE FORCE - SHOULD WE BE CONSIDERING HYDRONIUM ION COORDINATION AND NOT GROUP PROTONATION [J].
BOYER, PD .
TRENDS IN BIOCHEMICAL SCIENCES, 1988, 13 (01) :5-7
[7]   LATERAL DIFFUSION OF PROTEINS IN THE PERIPLASM OF ESCHERICHIA-COLI [J].
BRASS, JM ;
HIGGINS, CF ;
FOLEY, M ;
RUGMAN, PA ;
BIRMINGHAM, J ;
GARLAND, PB .
JOURNAL OF BACTERIOLOGY, 1986, 165 (03) :787-795
[8]  
BRYANT MP, 1973, FED PROC, V32, P1809
[9]   A BIOTIN-DEPENDENT SODIUM-PUMP - GLUTACONYL-COA DECARBOXYLASE FROM ACIDAMINOCOCCUS-FERMENTANS [J].
BUCKEL, W ;
SEMMLER, R .
FEBS LETTERS, 1982, 148 (01) :35-38
[10]   NA+(LI+)-PROLINE COTRANSPORT IN ESCHERICHIA-COLI [J].
CHEN, CC ;
TSUCHIYA, T ;
YAMANE, Y ;
WOOD, JM ;
WILSON, TH .
JOURNAL OF MEMBRANE BIOLOGY, 1985, 84 (02) :157-164