Nitrogenase: Difference between revisions

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<StructureSection load="1N2C" size="350" color="white" caption="Nitrogenase complex: α (grey and green) and β (pink and yellow) chains, nitrogenase iron protein ( purple,cyan, red and gold), showing Fe-Mo-S cluster complex with ADP, adipic acid, AlF4, Ca+2 and Mg+2 ions [[1n2c]]">
<StructureSection load="1N2C" size="350" color="white" caption="Nitrogenase complex: α (grey and green) and β (pink and yellow) chains, nitrogenase iron protein ( purple,cyan, red and gold), showing Fe-Mo-S cluster complex with ADP, adipic acid, AlF4, Ca+2 and Mg+2 ions [[1n2c]]">
__TOC__
==Function==
'''Nitrogenase''' (Nase) is an enzyme that fixes atmospheric nitrogen (N<sub>2</sub>) into ammonia. Though abundantly present in the atmosphere, most organisms cannot utilize N<sub>2</sub> directly, and must instead take it in through other forms, like ammonia or nitrate. The triple bond in N<sub>2</sub> is highly resistant to changes in oxidation state, and nitrogenases, found only in nitrogen-fixing bacteria, are the only proteins capable of reducing N<sub>2</sub> to ammonia.
'''Nitrogenase''' (Nase) is an enzyme that fixes atmospheric nitrogen (N<sub>2</sub>) into ammonia. Though abundantly present in the atmosphere, most organisms cannot utilize N<sub>2</sub> directly, and must instead take it in through other forms, like ammonia or nitrate. The triple bond in N<sub>2</sub> is highly resistant to changes in oxidation state, and nitrogenases, found only in nitrogen-fixing bacteria, are the only proteins capable of reducing N<sub>2</sub> to ammonia.


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N<sub>2</sub> + 8 H<sup>+</sup> + 16 MgATP + 8 e<sup>-</sup> &rarr; 2NH<sub>3</sub> + H<sub>2</sub> + 16 MgADP + 16 P<sub>i</sub>
N<sub>2</sub> + 8 H<sup>+</sup> + 16 MgATP + 8 e<sup>-</sup> &rarr; 2NH<sub>3</sub> + H<sub>2</sub> + 16 MgADP + 16 P<sub>i</sub>


Two different proteins comprise the nitrogenase complex. The FeMo protein binds substrate and reduces H<sup>+</sup> and N<sub>2</sub> to H<sub>2</sub> and ammonia, while the Fe protein receives electrons from ferredoxin, hydrolyzes ATP, and reduces the FeMo protein. To the right is shown a crystal structure (PDB entry [[1n2c]]<ref>PMID:9163420</ref>) where two complexes of FeMo protein bound to Fe protein were crystallized together. Click here to see only <scene name='Sandbox_10/1n2c_single_complex/2'>one complex</scene>.
Two different proteins comprise the nitrogenase complex. The '''FeMo protein''' or '''nitrogenase Mo-Fe protein''' binds substrate and reduces H<sup>+</sup> and N<sub>2</sub> to H<sub>2</sub> and ammonia, while the '''Fe protein''' or '''nitrogenase iron protein 1'''  receives electrons from ferredoxin, hydrolyzes ATP, and reduces the FeMo protein. To the right is shown a crystal structure (PDB entry [[1n2c]]<ref>PMID:9163420</ref>) where two complexes of FeMo protein bound to Fe protein were crystallized together. Click here to see only <scene name='Sandbox_10/1n2c_single_complex/2'>one complex</scene>.




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For these reasons, binding of Fe protein to FeMo protein results in hydrolysis of ATP. Additionally, the 4Fe:4S cluster is lowered close enough to the metal-sulfur clusters of the FeMo protein that electron transfer can occur. All three clusters found in the Fe protein-FeMo protein complex can be seen <scene name='Sandbox_10/1n2c_clusters/2'>here</scene>. Once the electrons have passed from the 4Fe:4S cluster of the Fe protein to the 8Fe:7S cluster of the FeMo protein, they then transfer to the 7Fe:Mo:9S:homocitrate:X cluster where X is an unidentified light atom. It is at this cluster where reduction of N<sub>2</sub> and H<sup>+</sup> occur. The exact mechanism of reduction, however, is still unknown.
For these reasons, binding of Fe protein to FeMo protein results in hydrolysis of ATP. Additionally, the 4Fe:4S cluster is lowered close enough to the metal-sulfur clusters of the FeMo protein that electron transfer can occur. All three clusters found in the Fe protein-FeMo protein complex can be seen <scene name='Sandbox_10/1n2c_clusters/2'>here</scene>. Once the electrons have passed from the 4Fe:4S cluster of the Fe protein to the 8Fe:7S cluster of the FeMo protein, they then transfer to the 7Fe:Mo:9S:homocitrate:X cluster where X is an unidentified light atom. It is at this cluster where reduction of N<sub>2</sub> and H<sup>+</sup> occur. The exact mechanism of reduction, however, is still unknown.
</StructureSection>


==3D structure of Nitrogenase==
==3D structure of Nitrogenase==
[[Nitrogenase 3D structures]]


Updated on {{REVISIONDAY2}}-{{MONTHNAME|{{REVISIONMONTH}}}}-{{REVISIONYEAR}}
</StructureSection>
{{#tree:id=OrganizedByTopic|openlevels=0|
 
*Nase Mo-Fe
 
**[[3pdi]] – AvNase α+β subunit [Fe4S4 Fe8S9] – ''Azotobacter vinelandii''<br />
**[[2kic]] – AvNase γ subunit – NMR<br />
**[[3k1a]], [[1m1n]], [[2min]], [[3min]], [[3u7q]] – AvNase α+β subunit [CFe7MoS9 Fe8S7]<br />
**[[4xpi]], [[5cx1]] - AvNase + (mutant) subunit [CFe7MoS9 Fe8S7]<br />
**[[4tku]], [[5bvg]] - AvNase α+β subunit [CFe7MoS9 Fe8S7 Fe2]<br />
**[[4tkv]], [[5bvh]]- AvNase α+β subunit [CFe7MoS9 Fe8S7 Fe2] + CO <br />
**[[4wza]] - AvNase α+β subunit [CFe7MoS9 Fe8S7 Fe4S4 Fe2] + ADP + ACP<br />
**[[4wzb]] - AvNase α+β subunit [CFe7MoS9 Fe8S7 Fe4S4 Fe2] + ACP<br />
**[[4nd8]], [[6bbl]], [[6cdk]] - AvNase α+β subunit [CFe7MoS9 Fe8S7 Fe+3]<br />
**[[1l5h]] - AvNase α+β subunit [Fe8S7]<br />
**[[1h1l]], [[1qgu]], [[1qh8]] - KpNase α+β subunit [Fe7MoS9 Fe8S7] – ''Klebsiella pneumoniae''<br />
**[[1qh1]] - KpNase α+β subunit + iron protein 1 [Fe7MoS9 Fe8S7]<br />
**[[1fp4]] - AvNase α+β subunit (mutant) [Fe7MoS9 Fe8S8]<br />
**[[1mio]] - CpNase α+β subunit (mutant) [Fe7MoS9 Fe8S8] - ''Clostridium pasteurianum''<br />
**[[4wes]], [[4wn9]], [[4wna]], [[5vpw]], [[5vq3]], [[5vq4]] - CpNase α+β subunit [CFe7MoS9 Fe8S7 Fe2]<br />
**[[2afh]], [[1m1y]], [[1g20]] - AvNase α+β subunit + iron protein 1 [Fe4S4 Fe7MoS9 Fe8S7]<br />
**[[2afi]], [[4wzb]], [[1m34]], [[1g21]] - AvNase α+β subunit + iron protein 1 [Fe4S4 Fe7MoS9 Fe8S7] + nucleotide<br />
**[[1n2c]] - AvNase α+β subunit + iron protein 1 [Fe4S4 Fe7MoS9 Fe8S7] + AlF4<br />
**[[5koh]], [[5koj]] – AvNase + subunit iron protein 1 [FeS] [CFe7MoS9 Fe8S7 Fe2] – ''Gluconacetobacter diazotrophicus'' <br />
 
*Nase iron protein
 
**[[2c8v]] – AvNase iron protein 1 [FeS]<br />
**[[1g1m]], [[1g5p]], [[2nip]] - AvNase iron protein 1 [Fe4S4]<br />
**[[1cp2]] - CpNase iron protein 1 [Fe4S4] <br />
**[[1fp6]], [[1nip]] - AvNase iron protein 1 [Fe4S4] + ADP<br />
**[[1xcp]], [[1xd8]], [[1xdb]], [[1rw4]], [[1de0]] - AvNase iron protein 1 (mutant) [Fe4S4]<br />
**[[1xd9]] - AvNase iron protein 1 (mutant) [Fe4S4] + MgADP<br />
 
*Nase V-Fe protein
 
**[[5n6y]], [[6fea]] – AvNase  α+β+δ subunit [Fe7S8V + Fe8S7] + CO3<br />


}}
== References ==
== References ==
<references/>
<references/>


[[Category:Topic Page]]
[[Category:Topic Page]]

Latest revision as of 08:55, 23 March 2026

Nitrogenase complex:α (grey and green) and β (pink and yellow) chains, nitrogenase iron protein ( purple,cyan, red and gold), showing Fe-Mo-S cluster complex with ADP, adipic acid, AlF4, Ca+2 and Mg+2 ions 1n2c

Drag the structure with the mouse to rotate

References

Proteopedia Page Contributors and Editors (what is this?)

Alexander Berchansky, Joel L. Sussman, David Canner, Michal Harel, Eran Hodis