journal article Dec 01, 1973

A theoretical study on the amount of ATP required for synthesis of microbial cell material

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References
45
[1]
Ackrell, B. A. C. andJones, C. W. 1971a. The respiratory system ofAzotobacter vinelandii. 1. Properties of phosphorylating respiratory membranes. — Eur. J. Biochem.20: 22–28. 10.1111/j.1432-1033.1971.tb01357.x
[2]
Ackrell, B. A. C. andJones, C. W. 1971b. The respiratory system ofAzotobacter vinelandii 2. Oxygen effects. — Eur. J. Biochem.20: 29–35. 10.1111/j.1432-1033.1971.tb01358.x
[3]
Barnes, E. M., Jr. 1972. Respiration-coupled glucose transport in membrane vesicles from Azotobacter vinelandii. — Arch. Biochem. Biophys.152: 795–799. 10.1016/0003-9861(72)90275-5
[4]
Bauchop, T. andElsden, S. R. 1960. The growth of microorganisms in relation to their energy supply. — J. Gen. Microbiol.23: 457–469. 10.1099/00221287-23-3-457
[5]
Benemann, J. R., Yoch, D. C., Valentine, R. C. andArnon, D. I. 1971. The electron transport system in nitrogen fixation byAzotobacter. III. Requirements for NADPH-supported nitrogenase activity. — Biochim. Biophys. Acta226: 205–212. 10.1016/0005-2728(71)90087-9
[6]
Bragg, P. D., Davies, P. L. andHou, C. 1972. Function of energy-dependent transhydrogenase inEscherichia coli. — Biochem. Biophys. Res. Comm.47: 1248–1255. 10.1016/0006-291x(72)90969-2
[7]
Chung, A. E. 1970. Pyridine nucleotide transhydrogenase fromAzotobacter vinelandii. — J. Bacteriol.102: 438–447. 10.1128/jb.102.2.438-447.1970
[8]
Colowick, S. P., Kaplan, N. O., Neufield, E. F. andCiotti, M. M. 1952. Pyridine nucleotide transhydrogenase. I. Indirect evidence for the reaction and purification of the enzyme. — J. Biol. Chem.195: 95–106. 10.1016/s0021-9258(19)50877-8
[9]
Dalton, H. and Postgate, J. R. 1969. Growth and physiology ofAzotobacter chroococcum in continuous culture. — J. Gen. Microbiol.56: 307–319. 10.1099/00221287-56-3-307
[10]
Decker, K., Jungermann, K. andThauer, R. K. 1970. Energy production in anaerobic organisms. — Angew. Chem. Int. Ed.9: 138–158. 10.1002/anie.197001381
[11]
Forrest, W. W. andWalker, D. J. 1971. The generation and utilization of energy during growth. — Advan. Microb. Physiol.5: 213–274. 10.1016/s0065-2911(08)60408-7
[12]
Fraenkel, D. G. 1968. Selection ofEscherichia coli mutants lacking glucose-6-phosphate dehydrogenase or gluconate-6-phosphate dehydrogenase. — J. Bacteriol.95: 1267–1271. 10.1128/jb.95.4.1267-1271.1968
[13]
Goldfine, H. 1972. Comparative aspects of bacterial lipids. — Advan. Microb. Physiol.8: 1–58. 10.1016/s0065-2911(08)60187-3
[14]
Gunsalus, I. C. andShuster, C. W. 1961. Energy-yielding metabolism in bacteria, p. 1–58.In I. C. Gunsalus and R. Y. Stanier, (eds.), The Bacteria, Vol. 2. — Academic Press, New York and Londen.
[15]
Hadjipetrou, L. P., Gerrits, J. P., Teulings, F. A. G. andStouthamer, A. H. 1964. Relation between energy production and growth ofAerobacter aerogenes. — J. Gen. Microbiol.36: 139–150. 10.1099/00221287-36-1-139
[16]
Harold, F. M. 1972. Conservation and transformation of energy by bacterial membranes. — Bacteriol. Rev.36: 172–230. 10.1128/mmbr.36.2.172-230.1972
[17]
Hernandez, E. andJohnson, M. J. 1967. Energy supply and cell yield in aerobically grown microorganisms. — J. Bacteriol.94: 996–1001. 10.1128/jb.94.4.996-1001.1967
[18]
Hill, S., Drozd, J. W. andPostgate, J. R. 1972. Environmental effects on the growth of nitrogen-fixing bacteria. — J. Appl. Chem. Biotechnol.22: 541–558. 10.1002/jctb.5020220413
[19]
Jones, C. W., Brice, J. M., Wright, V. andAckrell, B. A. C. 1973. Respiratory protection of nitrogenase inAzotobacter vinelandii. — FEBS Letters29: 77–81. 10.1016/0014-5793(73)80530-7
[20]
Kaback, H. R. 1970. Transport. — Annu. Rev. Biochem.39: 561–598. 10.1146/annurev.bi.39.070170.003021
[21]
Kaback, H. R. 1972. Transport across isolated bacterial cytoplasmic membranes. — Biochim. Biophys. Acta265: 367–416. 10.1016/0304-4157(72)90014-7
[22]
Kapralek, F. 1972. The physiological role of tetrathionate respiration in growingCitrobacter. — J. Gen. Microbiol.71: 133–139. 10.1099/00221287-71-1-133
[23]
Keister, D. L. andHemmes, R. B. 1966. Pyridine nucleotide transhydrogenase fromChromatium. — J. Biol. Chem.241: 2820–2825. 10.1016/s0021-9258(18)96537-3
[24]
Lengyel, P. andSöll, D. 1969. Mechanism of protein biosynthesis. — Bacteriol. Rev.33: 264–301. 10.1128/br.33.2.264-301.1969
[25]
Lucas-Lenard, J. andLipmann, F. 1971. Protein biosynthesis. — Annu. Rev. Biochem.40: 409–448. 10.1146/annurev.bi.40.070171.002205
[26]
McGill, D. J. andDawes, E. A. 1971. Glucose and fructose metabolism inZymomonas anaerobia. — Biochem. J.125: 1059–1068. 10.1042/bj1251059
[27]
McKechnie, I. andDawes, E. A. 1969. An evaluation of the pathways of metabolism of glucose, gluconate and 2-oxogluconate byPseudomonas aeruginosa by measurement of molar growth yields. — J. Gen. Microbiol.55: 341–349. 10.1099/00221287-55-3-341
[28]
Mahler, H. R. andCordes, E. H. 1966. Biological chemistry, p. 872. — Harper and Row, New York.
[29]
Mandelstamm, J. andMcQuillen, K. 1968. Biochemistry of bacterial growth, p. 540. — Blackwell Scientific Publications, Oxford and Edinburgh.
[30]
Mitchell, P. 1970. Membrane of cells and organelles: Morphology, transport and metabolism, p. 121–166.In Organization and control in procaryotic and eucaryotic cells, Symp. Soc. Gen. Microbiol., 20th. — Cambridge University Press, London.
[31]
Morowitz, H. J. 1968. Energy flow in biology: biological organization as a problem in thermal physics. — Academic Press, New York.
[32]
Nagai, S., Nishizawa, Y. andAiba, S. 1969. Energetics of growth ofAzotobacter vinelandii in a glucose-limited chemostat culture. — J. Gen. Microbiol.59: 163–169. 10.1099/00221287-59-2-163
[33]
Norris, T. E. andKoch, A. L. 1972. Effect of growth rate on the relative rates of synthesis of messenger, ribosomal and transfer RNA inEscherichia coli. — J. Mol. Biol.64: 633–649. 10.1016/0022-2836(72)90088-5
[34]
Payne, W. J. 1970. Energy yields and growth of heterotrophs. Annu. Rev. Microbiol.24: 17–52. 10.1146/annurev.mi.24.100170.000313
[35]
Pirt, S. J. 1965. The maintenance energy of bacteria in growing cultures. — Proc. Roy. Soc. London163B: 224–231. 10.1098/rspb.1965.0069
[36]
Reaveley, D. A. andBurge, R. E. 1972. Walls and membranes in bacteria. — Advan. Microb. Physiol.7: 1–81. 10.1016/s0065-2911(08)60076-4
[37]
Schairer, H. U. andHaddock, B. A. 1972. β-Galactoside accumulation in a Mg2+-, Ca2+-activated ATPase deficient mutant ofE. coli. — Biochem. Biophys. Res. Comm.48: 544–551. 10.1016/0006-291x(72)90382-8
[38]
Simoni, R. D. andShallenberger, M. K. 1972. Coupling of energy to active transport of amino acids inEscherichia coli. — Proc. Nat. Acad. Sci.69: 2663–2667. 10.1073/pnas.69.9.2663
[39]
Stouthamer, A. H. 1969. Determination and significance of molar growth yields, p. 629–663.In J. R. Norris and D. W. Ribbons, (eds.), Methods in microbiology, Vol. 1. — Academic Press, New York and London. 10.1016/s0580-9517(08)70150-8
[40]
Stouthamer, A. H. andBettenhaussen, C. W. 1972. Influence of hydrogen acceptors on growth and energy production ofProteus mirabilis. — Antonie van Leeuwenhoek38: 81–90. 10.1007/bf02328079
[41]
Stouthamer, A. H. andBettenhaussen, C. 1973. Utilization of energy for growth and maintenance in continuous and batch cultures of microorganisms. A reevaluation of the method for the determination of ATP production by measuring molar growth yields. — Biochim. Biophys. Acta301: 53–70. 10.1016/0304-4173(73)90012-8
[42]
Tempest, D. W., Dicks, J. W. andHunter, J. R. 1966. The interrelationship between potassium, magnesium and phosphorus in potassium-limited chemostat cultures ofAerobacter aerogenes. — J. Gen. Microbiol.45: 135–146. 10.1099/00221287-45-1-135
[43]
van Uden, N. 1969. Kinetics of nutrient-limited growth. — Annu. Rev. Microbiol.23: 473–486. 10.1146/annurev.mi.23.100169.002353
[44]
de Vries, W., Kapteijn, W. M. C., van der Beek, E. G. andStouthamer, A. H. 1970. Molar growth yields and fermentation balances ofLactobacillus casei L3 in batch cultures and in continuous cultures. — J. Gen. Microbiol.63: 333–345. 10.1099/00221287-63-3-333
[45]
White, D. C. andSinclair, P. R. 1971. Branched electron-transport systems in bacteria. — Advan. Microb. Physiol.5: 173–211. 10.1016/s0065-2911(08)60407-5
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Published
Dec 01, 1973
Vol/Issue
39(1)
Pages
545-565
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A. H. Stouthamer (1973). A theoretical study on the amount of ATP required for synthesis of microbial cell material. Antonie van Leeuwenhoek, 39(1), 545-565. https://doi.org/10.1007/bf02578899