Nitrogen fixation by nitrogenase begins with the accumulation of four reducing equivalents at the active-site FeMo-cofactor (FeMo-co), generating a state (denoted E4(4H)) with two [Fe-H-Fe] bridging hydrides. Recently, photolytic reductive elimination (re) of the E4(4H) hydrides showed that enzymatic re of E4(4H) hydride yields an H2-bound complex (E4(H2,2H)), in a process corresponding to a formal 2-electron reduction of the metal-ion core of FeMo-co. The resulting electron-density redistribution from Fe-H bonds to the metal ions themselves enables N2 to bind with concomitant H2 release, a process illuminated here by QM/MM molecular dynamics simulations. What is the nature of this redistribution? Although E4(H2,2H) has not been trapped, cr...
Of the three forms of nitrogenase (Mo-nitrogenase, V-nitrogenase, and Fe-nitrogenase), Fe-nitrogenas...
Nitrogenase is activated for N2 reduction through the accumulation of four reducing equivalents at t...
The enzyme nitrogenase naturally hydrogenates N2 to NH3, achieved through the accumulation of H atom...
Nitrogen fixation by nitrogenase begins with the accumulation of four reducing equivalents at the ac...
The nitrogenase active-site cofactor must accumulate 4e-/4H+ (E4(4H) state) before N2 can bind and b...
The nitrogenase active-site cofactor must accumulate 4e-/4H+ (E4(4H) state) before N2 can bind and b...
The nitrogenase active-site cofactor must accumulate 4e-/4H+ (E4(4H) state) before N2 can bind and b...
The catalytic mechanism of N2 fixation by nitrogenase remains unresolved in how the strong N≡N bond ...
The catalytic mechanism of N2 fixation by nitrogenase remains unre-solved in how the strong N=N bond...
The catalytic mechanism of N2 fixation by nitrogenase remains unre-solved in how the strong N=N bond...
Nitrogen is an essential component of many biomolecules such as DNA and proteins. Biological nitroge...
Nitrogen is an essential component of many biomolecules such as DNA and proteins. Biological nitroge...
We proposed a reductive elimination/oxidative addition (re/oa) mechanism for reduction of N2 to 2NH3...
Three genetically distinct, but structurally similar, isozymes of nitrogenase catalyze biological N2...
Three genetically distinct, but structurally similar, isozymes of nitrogenase catalyze biological N2...
Of the three forms of nitrogenase (Mo-nitrogenase, V-nitrogenase, and Fe-nitrogenase), Fe-nitrogenas...
Nitrogenase is activated for N2 reduction through the accumulation of four reducing equivalents at t...
The enzyme nitrogenase naturally hydrogenates N2 to NH3, achieved through the accumulation of H atom...
Nitrogen fixation by nitrogenase begins with the accumulation of four reducing equivalents at the ac...
The nitrogenase active-site cofactor must accumulate 4e-/4H+ (E4(4H) state) before N2 can bind and b...
The nitrogenase active-site cofactor must accumulate 4e-/4H+ (E4(4H) state) before N2 can bind and b...
The nitrogenase active-site cofactor must accumulate 4e-/4H+ (E4(4H) state) before N2 can bind and b...
The catalytic mechanism of N2 fixation by nitrogenase remains unresolved in how the strong N≡N bond ...
The catalytic mechanism of N2 fixation by nitrogenase remains unre-solved in how the strong N=N bond...
The catalytic mechanism of N2 fixation by nitrogenase remains unre-solved in how the strong N=N bond...
Nitrogen is an essential component of many biomolecules such as DNA and proteins. Biological nitroge...
Nitrogen is an essential component of many biomolecules such as DNA and proteins. Biological nitroge...
We proposed a reductive elimination/oxidative addition (re/oa) mechanism for reduction of N2 to 2NH3...
Three genetically distinct, but structurally similar, isozymes of nitrogenase catalyze biological N2...
Three genetically distinct, but structurally similar, isozymes of nitrogenase catalyze biological N2...
Of the three forms of nitrogenase (Mo-nitrogenase, V-nitrogenase, and Fe-nitrogenase), Fe-nitrogenas...
Nitrogenase is activated for N2 reduction through the accumulation of four reducing equivalents at t...
The enzyme nitrogenase naturally hydrogenates N2 to NH3, achieved through the accumulation of H atom...