1FP6 image
Deposition Date 2000-08-30
Release Date 2001-01-17
Last Version Date 2024-02-07
Entry Detail
PDB ID:
1FP6
Keywords:
Title:
THE NITROGENASE FE PROTEIN FROM AZOTOBACTER VINELANDII COMPLEXED WITH MGADP
Biological Source:
Source Organism:
Host Organism:
Method Details:
Experimental Method:
Resolution:
2.15 Å
R-Value Free:
0.26
R-Value Work:
0.2
R-Value Observed:
0.2
Space Group:
P 21 21 21
Macromolecular Entities
Polymer Type:polypeptide(L)
Molecule:NITROGENASE IRON PROTEIN
Gene (Uniprot):nifH1
Chain IDs:A, B, C, D
Chain Length:289
Number of Molecules:4
Biological Source:Azotobacter vinelandii
Primary Citation
Insights into nucleotide signal transduction in nitrogenase: structure of an iron protein with MgADP bound.
Biochemistry 39 14745 14752 (2000)
PMID: 11101289 DOI: 10.1021/bi001705g

Abstact

Coupling the energy of nucleoside triphosphate binding and hydrolysis to conformational changes is a common mechanism for a number of proteins with disparate cellular functions, including those involved in DNA replication, protein synthesis, and cell differentiation. Unique to this class of proteins is the dimeric Fe protein component of nitrogenase in which the binding and hydrolysis of MgATP controls intermolecular electron transfer and reduction of nitrogen to ammonia. In the work presented here, the MgADP-bound (or "off") conformational state of the nitrogenase Fe protein has been captured and a 2.15 A resolution X-ray crystal structure is presented. The structure described herein reveals likely mechanisms for long-range communication from the nucleotide-binding sites for controlling the affinity of association with the MoFe protein component. Two pathways, termed switches I and II, appear to be integral to this nucleotide signal transduction mechanism. In addition, the structure provides the basis for the changes in the biophysical properties of the [4Fe-4S] cluster observed when Fe protein binds nucleotides. The structure of the MgADP-bound Fe protein provides important insights into the respective contributions of nucleotide interaction and complex formation in defining the conformational states that are the keys to nitrogenase catalysis.

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