Nitrogenases are the only known family of enzymes that catalyze the reduction of molecular nitrogen (N-2) to ammonia (NH3). The N-2 reduction drives biological nitrogen fixation and the global nitrogen cycle. Besides the conversion of N-2, nitrogenases catalyze a whole range of other reductions, including the reduction of the small gaseous substrates carbon monoxide (CO) and carbon dioxide (CO2) to hydrocarbons. However, it remains an open question whether these 'side reactivities' play a role under environmental conditions. Nonetheless, these reactivities and particularly the formation of hydrocarbons have spurred the interest in nitrogenases for biotechnological applications. There are three different isozymes of nitrogenase: the molybden...
The vanadium (V)-nitrogenase of Azotobacter vinelandii catalyses the in vitro conversion of carbon m...
The vanadium (V)-nitrogenase of Azotobacter vinelandii catalyses the in vitro conversion of carbon m...
Three genetically distinct, but structurally similar, isozymes of nitrogenase catalyze biological N2...
Nitrogenases are complex metalloenzymes that catalyze the reduction of nitrogen gas (N2) to form bio...
Nitrogenases are complex metalloenzymes capable of catalyzing two of the most challenging reactions ...
AbstractNitrogenase is an enzyme found in many bacteria and archaea that catalyzes biological dinitr...
Three known nitrogenase isozymes, Mo-, V-, and Fe-, catalyze biological reduction of dinitrogen (N2)...
In a small-scale reaction, vanadium-dependent nitrogenase has previously been shown to catalyze redu...
As a basic building block in many biological molecules the element nitrogen (N) is essential for lif...
Nitrogenase is the enzyme that catalyzes biological N2 reduction to NH3. This enzyme achieves an imp...
Nitrogenase is a key enzyme in the nitrogen cycle, and it is often produced by soil bacteria such as...
The molybdenum and vanadium nitrogenases are two homologous enzymes with distinct structural and cat...
Abstract Nitrogenases are a family of metalloenzymes that catalyse a key step in the global nitrogen...
Even though nitrogen makes up almost 80% of the atmosphere, it is a limiting nutrient for biomass pr...
The iron (Fe) proteins of molybdenum (Mo) and vanadium (V) nitrogenases mimic carbon monoxide (CO) d...
The vanadium (V)-nitrogenase of Azotobacter vinelandii catalyses the in vitro conversion of carbon m...
The vanadium (V)-nitrogenase of Azotobacter vinelandii catalyses the in vitro conversion of carbon m...
Three genetically distinct, but structurally similar, isozymes of nitrogenase catalyze biological N2...
Nitrogenases are complex metalloenzymes that catalyze the reduction of nitrogen gas (N2) to form bio...
Nitrogenases are complex metalloenzymes capable of catalyzing two of the most challenging reactions ...
AbstractNitrogenase is an enzyme found in many bacteria and archaea that catalyzes biological dinitr...
Three known nitrogenase isozymes, Mo-, V-, and Fe-, catalyze biological reduction of dinitrogen (N2)...
In a small-scale reaction, vanadium-dependent nitrogenase has previously been shown to catalyze redu...
As a basic building block in many biological molecules the element nitrogen (N) is essential for lif...
Nitrogenase is the enzyme that catalyzes biological N2 reduction to NH3. This enzyme achieves an imp...
Nitrogenase is a key enzyme in the nitrogen cycle, and it is often produced by soil bacteria such as...
The molybdenum and vanadium nitrogenases are two homologous enzymes with distinct structural and cat...
Abstract Nitrogenases are a family of metalloenzymes that catalyse a key step in the global nitrogen...
Even though nitrogen makes up almost 80% of the atmosphere, it is a limiting nutrient for biomass pr...
The iron (Fe) proteins of molybdenum (Mo) and vanadium (V) nitrogenases mimic carbon monoxide (CO) d...
The vanadium (V)-nitrogenase of Azotobacter vinelandii catalyses the in vitro conversion of carbon m...
The vanadium (V)-nitrogenase of Azotobacter vinelandii catalyses the in vitro conversion of carbon m...
Three genetically distinct, but structurally similar, isozymes of nitrogenase catalyze biological N2...