The Biokinetic Spectrum for Temperature.

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The Biokinetic Spectrum for Temperature. is …
instance of (P31):
scholarly articleQ13442814

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P819ADS bibcode2016PLoSO..1153343C
P356DOI10.1371/JOURNAL.PONE.0153343
P932PMC publication ID4835062
P698PubMed publication ID27088362

P50authorR CorkreyQ73404667
Tom RossQ74210862
John P. BowmanQ41680751
P2093author name stringDavid A Ratkowsky
June Olley
Tom A McMeekin
P2860cites workUnifying temperature effects on the growth rate of bacteria and the stability of globular proteinsQ43017038
Toward a metabolic theory of ecologyQ55879845
The thermal limits to life on EarthQ55953320
Bayesian quantile regressionQ57194385
Unculturable microbes detected by molecular sequences and probesQ58425213
Protein-length distributions for the three domains of lifeQ60017703
Common features of protein unfolding and dissolution of hydrophobic compoundsQ68703538
Maintenance energy: a general model for energy-limited and energy-sufficient growthQ70593754
Protein length in eukaryotic and prokaryotic proteomesQ24529556
Transproteomic evidence of a loop-deletion mechanism for enhancing protein thermostabilityQ28138509
Effects of size and temperature on metabolic rateQ28188474
Hyperthermophilic enzymes: sources, uses, and molecular mechanisms for thermostabilityQ28203641
The stability of thermophilic proteins: a study based on comprehensive genome comparisonQ28215682
Protein thermodynamics can be predicted directly from biological growth ratesQ28538355
Dominant forces in protein foldingQ29616390
Computational systems biologyQ29616655
Stability of protein structure and hydrophobic interaction.Q30403599
Contribution of hydration to protein folding thermodynamics. I. The enthalpy of hydrationQ30422336
Contribution of hydration to protein folding thermodynamics. II. The entropy and Gibbs energy of hydrationQ30422341
Prokaryotic diversity--magnitude, dynamics, and controlling factorsQ34127920
Universality of thermodynamic constants governing biological growth rates.Q34163806
Dynamic regulation of mitochondrial respiratory chain efficiency in Saccharomyces cerevisiae.Q34220827
How do thermophilic proteins deal with heat?Q34385538
Finding a second sample of life on earthQ34409538
Similar temperature dependencies of glycolytic enzymes: an evolutionary adaptation to temperature dynamics?Q34502397
Scaling laws governing stochastic growth and division of single bacterial cellsQ34526498
Growth temperature and genome size in bacteria are negatively correlated, suggesting genomic streamlining during thermal adaptationQ36905240
Temperature dependence of the hydrophobic interaction in protein foldingQ37404841
Why can't a cell grow infinitely fast?Q38193900
Model for bacterial culture growth rate throughout the entire biokinetic temperature range.Q39976055
SYSTEMS BIOLOGY. Systems biology (un)certainties.Q40400334
Quantitative analysis of the high temperature-induced glycolytic flux increase in Saccharomyces cerevisiae reveals dominant metabolic regulation.Q40451225
P275copyright licenseCreative Commons Attribution 4.0 InternationalQ20007257
P6216copyright statuscopyrightedQ50423863
P433issue4
P407language of work or nameEnglishQ1860
P304page(s)e0153343
P577publication date2016-04-18
P1433published inPLOS OneQ564954
P1476titleThe Biokinetic Spectrum for Temperature
P478volume11

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cites work (P2860)
Q96171819A synthesis of bacterial and archaeal phenotypic trait data
Q38998871Astrobiology as a framework for investigating antibiotic susceptibility: a study of Halomonas hydrothermalis
Q91260166Community-level respiration of prokaryotic microbes may rise with global warming
Q42727944Correction: The Biokinetic Spectrum for Temperature
Q39445652Temperature Impacts on Soil Microbial Communities and Potential Implications for the Biodegradation of Turfgrass Pesticides
Q64085055Thermophiles; or, the Modern Prometheus: The Importance of Extreme Microorganisms for Understanding and Applying Extracellular Electron Transfer

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