Clostridium thermobutyricum:: growth studies and stimulation of butyrate formation by acetate supplementation

被引:43
作者
Canganella, F [1 ]
Kuk, SU
Morgan, H
Wiegel, J
机构
[1] Univ Georgia, Dept Microbiol, Athens, GA 30602 USA
[2] Univ Georgia, Ctr Biol Resource Recovery, Athens, GA 30602 USA
关键词
C; thermobutyricum; butyric acid; anaerobic metabolism;
D O I
10.1078/0944-5013-00140
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Clostridium thermobutyricum produces butyrate as the main fermentation product from glucose, and from yeast extract, which is required for substantial growth. After sequential transfer in the presence of increasing butyrate concentrations, strain JW 171 K grew in the presence of up to 350 mM butyrate either at pH 5.5 or at pH 8.0 and at 40 degreesC as well as at 60 degreesC. This result indicated that butyrate-dependent growth inhibition was independent from the concentration of undissociated butyric acid. Increased butyrate concentration decreased the level of tolerated glucose from above 15% to below 10%. At 0.05 and 2.0% (wt/vol) yeast extract, the Y-Glucose was 30 and 55 g dry weight cells per mole glucose, respectively. Y-ATP values between 18 and 21 g weight cells per mole ATP, obtained after growth in the presence of 2% yeast extract, indicate that the butyrate fermentation under thermophilic growth conditions is as energy efficient as it is under mesophilic conditions. Externally added acetate stimulated the production of butyrate. Supplemented C-14-acetate was converted to butyrate, resulting in the formation of 44% labeled butyrate (i.e. formed from C-14-acetate) and 56% unlabeled butyrate (formed from glucose and yeast extract). Continuous removal of H-2 in batch cultures led to a shift in the fermentation products from more butyrate to the more oxidized and more energy yielding acetate.
引用
收藏
页码:149 / 156
页数:8
相关论文
共 26 条
[11]   SYMBIOSIS IN THERMOPHILIC CELLULOSE FERMENTATION [J].
ENEBO, L .
NATURE, 1949, 163 (4151) :805-805
[12]   CHARACTERIZATION OF CLOSTRIDIUM-THERMOCELLUM JW20 [J].
FREIER, D ;
MOTHERSHED, CP ;
WIEGEL, J .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1988, 54 (01) :204-211
[13]  
Gottschalk G., 1986, Bacterial Metabolism
[14]  
KENEALY WR, 1985, ARCH MICROBIOL, V47, P187
[15]  
KUTZNER HJ, 1963, ZBL BAKT PARASIT, V191, P441
[16]  
LJUNGDAHL LG, 1964, THESIS CASE W RESERV
[17]   THE USE OF ACETATE AS AN ADDITIONAL COSUBSTRATE IMPROVES METHYLOTROPHIC GROWTH OF THE ACETOGENIC ANAEROBE EUBACTERIUM-LIMOSUM WHEN CO-2 FIXATION IS RATE-LIMITING [J].
LOUBIERE, P ;
LINDLEY, ND .
JOURNAL OF GENERAL MICROBIOLOGY, 1991, 137 :2247-2251
[18]   THE ANAEROBIC THERMOPHILIC CELLULOLYTIC BACTERIA [J].
MCBEE, RH .
BACTERIOLOGICAL REVIEWS, 1950, 14 (01) :51-63
[19]   Clostridium acetireducens sp nov, a novel amino acid-oxidizing, acetate-reducing anaerobic bacterium [J].
Orlygsson, J ;
Krooneman, J ;
Collins, MD ;
Pascual, C ;
Gottschall, JC .
INTERNATIONAL JOURNAL OF SYSTEMATIC BACTERIOLOGY, 1996, 46 (02) :454-459
[20]   UTILIZATION OF ENERGY FOR GROWTH AND MAINTENANCE IN CONTINUOUS AND BATCH CULTURES OF MICROORGANISMS - RE-EVALUATION OF METHOD FOR DETERMINATION OF ATP PRODUCTION BY MEASURING MOLAR GROWTH YIELDS [J].
STOUTHAMER, AH ;
BETTENHAUSSEN, C .
BIOCHIMICA ET BIOPHYSICA ACTA, 1973, 301 (01) :53-70