Literature DB >> 1116992

Energetics of Bacillus stearothermophilus growth: molar growth yield and temperature effects on growth efficiency.

T P Coultate, T K Sundaram.   

Abstract

The major growth yield of a prototrophic strain of Bacillus stearothermophilus under aerobic conditions on salts medium containing ammonium nitrate as the nitrogen source and glucose or succinate as the carbon source was maximal at the lowest growth temperature employed and decreased steadily as the temperature was raised. The temperature optima for growth yield and for growth rate were thus different. The molar growth yield values of the thermophile, especially at the lower growth temperatures, were similar to those reported for aerobically grown mesophilic bacteria, both on glucose and on succinate. At the higher growth temperatures, a lower proportion of glucose carbon was incorporated into cells and a correspondingly greater proportion was left incompletely utilized in the medium, mostly as acetate. This suggests a greater inefficiency in the coordination of the nonoxidative and oxidative phases of glucose metabolism at the gigher temperatures. Another factor causing a decreased cell yield at higher temperatures was possibly an uncoupling of energy production from respiration. The rates of respiration by intact cells of the thermophile on glucose and on succinate followed the Arrhenius relationship from 55 C to 20 C, which is some 20 C below the minimal growth temperature of the organism. The Arrhenius constant was 17.1 kcal/mol for glucose oxidation and 13.5 kcal/mol for succinate oxidation. These results are comparable to those reported for some mesophiles, and they suggest that the inability of the thermophile to grow at temperatures below about 41 C is not due to an abnormally high temperature coefficient for the uptake and oxidation of the carbon source.

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Year:  1975        PMID: 1116992      PMCID: PMC285612          DOI: 10.1128/jb.121.1.55-64.1975

Source DB:  PubMed          Journal:  J Bacteriol        ISSN: 0021-9193            Impact factor:   3.490


  10 in total

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2.  Growth of psychrophilic bacteria.

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3.  Effect of decreasing growth temperature on cell yield of Escherichia coli.

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Review 4.  Energy yields and growth of heterotrophs.

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5.  Physiological role of pyruvate carboxylase in a thermophilic bacillus.

Authors:  T K Sundaram
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6.  Anaplerotic CO2 fixation in mesophilic and thermophilic bacilli.

Authors:  T K Sundaram; J J Cazzulo; H L Kornberg
Journal:  Biochim Biophys Acta       Date:  1969-11-18

7.  Amino acid uptake, protein and nucleic acid synthesis and turnover in Bacillus stearothermophilus.

Authors:  B Bubela; E S Holdsworth
Journal:  Biochim Biophys Acta       Date:  1966-08-17

8.  Intracellular protein breakdown in a thermophile.

Authors:  I Epstein; N Grossowicz
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9.  Energies of activation and uncoupled growth in Streptococcus faecalis and Zymomonas mobilis.

Authors:  W W Forrest
Journal:  J Bacteriol       Date:  1967-11       Impact factor: 3.490

10.  Prototrophic thermophilic bacillus: isolation, properties, and kinetics of growth.

Authors:  I Epstein; N Grossowicz
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  10 in total
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1.  Growth Kinetics and Yield Coefficients of the Extreme Thermophile Thermothrix thiopara in Continuous Culture.

Authors:  D K Brannan; D E Caldwell
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2.  Effects of growth temperature on yield and maintenance during glucose-limited continuous culture of Escherichia coli.

Authors:  S E Mainzer; W P Hempfling
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3.  One carbon metabolism in methanogenic bacteria. Cellular characterization and growth of Methanosarcina barkeri.

Authors:  P J Weimer; J G Zeikus
Journal:  Arch Microbiol       Date:  1978-10-04       Impact factor: 2.552

4.  Cloning and characterization of a glutamine transport operon of Bacillus stearothermophilus NUB36: effect of temperature on regulation of transcription.

Authors:  L Wu; N E Welker
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Journal:  Arch Microbiol       Date:  1980-12       Impact factor: 2.552

6.  Universality of thermodynamic constants governing biological growth rates.

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7.  Protein thermodynamics can be predicted directly from biological growth rates.

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8.  Growth temperature and genome size in bacteria are negatively correlated, suggesting genomic streamlining during thermal adaptation.

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  8 in total

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