We report the crystal structure of dihydrofolate reductase (DHFR) from the psychropiezophilic bacterium Moritella profunda, which was isolated from the deep ocean at 2 °C and 280 bar. The structure is typical of a chromosomal DHFR and we were unable to identify any obvious structural features that would suggest pressure adaptation. In particular, the core regions of the enzyme are virtually identical to those of the DHFR from the mesophile Escherichia coli. The steady-state rate at pH 9, which is limited by hydride transfer at atmospheric pressure, is roughly constant between 1 and 750 bar, falling at higher pressures. However, the value of KM increases with increasing pressure, and as a result kcat/KM decreases over the entire pressure ran...
Determining how enzymes in piezophilic microbes function at high pressure can give insights into how...
Dihydrofolate reductase (DHFR) has long been used as a model system in studies of the relationship b...
We report here solvent kinetic isotope effects for two dihydrofolate reductases, namely the monomeri...
We report the crystal structure of dihydrofolate reductase (DHFR) from the psychropiezophilic bacter...
To understand the pressure-adaptation mechanism of deep-sea enzymes, we studied the effects of press...
To elucidate the effects of pressure on the function of Escherichia coli dihydrofolate reductase (DH...
Enzymes from extremophilic microbes that live in extreme conditions are generally adapted so that th...
Proteins from “pressure-loving” piezophiles appear to adapt by greater compressibility via larger to...
The influence of temperature and pH on the stability and catalytic activity of dihydrofolate reducta...
Dihydrofolate reductase (DHFR) maintains the intracellular pool of tetrahydrofolate through catalysi...
Adapting metabolic enzymes of microorganisms to low temperature environments may require a difficult...
International audienceDihydroorotase is involved in the de novo synthesis of pyrimidine in virtually...
Determining how enzymes in piezophilic microbes function at high pressure can give insights into how...
Dihydrofolate reductase (DHFR) has long been used as a model system in studies of the relationship b...
We report here solvent kinetic isotope effects for two dihydrofolate reductases, namely the monomeri...
We report the crystal structure of dihydrofolate reductase (DHFR) from the psychropiezophilic bacter...
To understand the pressure-adaptation mechanism of deep-sea enzymes, we studied the effects of press...
To elucidate the effects of pressure on the function of Escherichia coli dihydrofolate reductase (DH...
Enzymes from extremophilic microbes that live in extreme conditions are generally adapted so that th...
Proteins from “pressure-loving” piezophiles appear to adapt by greater compressibility via larger to...
The influence of temperature and pH on the stability and catalytic activity of dihydrofolate reducta...
Dihydrofolate reductase (DHFR) maintains the intracellular pool of tetrahydrofolate through catalysi...
Adapting metabolic enzymes of microorganisms to low temperature environments may require a difficult...
International audienceDihydroorotase is involved in the de novo synthesis of pyrimidine in virtually...
Determining how enzymes in piezophilic microbes function at high pressure can give insights into how...
Dihydrofolate reductase (DHFR) has long been used as a model system in studies of the relationship b...
We report here solvent kinetic isotope effects for two dihydrofolate reductases, namely the monomeri...