4c0n

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Crystal structure of non symbiotic plant hemoglobin AHb3 (GLB3) from Arabidopsis thalianaCrystal structure of non symbiotic plant hemoglobin AHb3 (GLB3) from Arabidopsis thaliana

Structural highlights

4c0n is a 1 chain structure with sequence from Arabidopsis thaliana. Full crystallographic information is available from OCA. For a guided tour on the structure components use FirstGlance.
Method:X-ray diffraction, Resolution 1.77Å
Ligands:, ,
Resources:FirstGlance, OCA, PDBe, RCSB, PDBsum, ProSAT

Function

GLB3_ARATH Hemoglobin-like protein that exhibits an unusual concentration-independent binding of O(2) and CO. May promote shoot organogenesis from root explants in vitro.[1] [2]

Publication Abstract from PubMed

Plant nonsymbiotic haemoglobins fall into three classes, each with distinct properties but all with largely unresolved physiological functions. Here, the first crystal structure of a class 3 nonsymbiotic plant haemoglobin, that from Arabidopsis thaliana, is reported to 1.77 A resolution. The protein forms a homodimer, with each monomer containing a two-over-two alpha-helical domain similar to that observed in bacterial truncated haemoglobins. A novel N-terminal extension comprising two alpha-helices plays a major role in the dimer interface, which occupies the periphery of the dimer-dimer face, surrounding an open central cavity. The haem pocket contains a proximal histidine ligand and an open sixth iron-coordination site with potential for a ligand, in this structure hydroxide, to form hydrogen bonds to a tyrosine or a tryptophan residue. The haem pocket appears to be unusually open to the external environment, with another cavity spanning the entrance of the two haem pockets. The final 23 residues of the C-terminal domain are disordered in the structure; however, these domains in the functional dimer are adjacent and include the only two cysteine residues in the protein sequence. It is likely that these residues form disulfide bonds in vitro and it is conceivable that this C-terminal region may act in a putative complex with a partner molecule in vivo.

The structure of a class 3 nonsymbiotic plant haemoglobin from Arabidopsis thaliana reveals a novel N-terminal helical extension.,Reeder BJ, Hough MA Acta Crystallogr D Biol Crystallogr. 2014 May;70(Pt 5):1411-8. doi:, 10.1107/S1399004714004878. Epub 2014 Apr 30. PMID:24816109[3]

From MEDLINE®/PubMed®, a database of the U.S. National Library of Medicine.

See Also

References

  1. Watts RA, Hunt PW, Hvitved AN, Hargrove MS, Peacock WJ, Dennis ES. A hemoglobin from plants homologous to truncated hemoglobins of microorganisms. Proc Natl Acad Sci U S A. 2001 Aug 28;98(18):10119-24. PMID:11526234 doi:http://dx.doi.org/10.1073/pnas.191349198
  2. Wang Y, Elhiti M, Hebelstrup KH, Hill RD, Stasolla C. Manipulation of hemoglobin expression affects Arabidopsis shoot organogenesis. Plant Physiol Biochem. 2011 Oct;49(10):1108-16. doi:, 10.1016/j.plaphy.2011.06.005. Epub 2011 Jun 24. PMID:21741261 doi:http://dx.doi.org/10.1016/j.plaphy.2011.06.005
  3. Reeder BJ, Hough MA. The structure of a class 3 nonsymbiotic plant haemoglobin from Arabidopsis thaliana reveals a novel N-terminal helical extension. Acta Crystallogr D Biol Crystallogr. 2014 May;70(Pt 5):1411-8. doi:, 10.1107/S1399004714004878. Epub 2014 Apr 30. PMID:24816109 doi:http://dx.doi.org/10.1107/S1399004714004878

4c0n, resolution 1.77Å

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