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1.
Phytochemistry ; 71(1): 21-6, 2010 Jan.
Article in English | MEDLINE | ID: mdl-19833360

ABSTRACT

In plants, it has been proposed that hexacoordinate (class 1) non-symbiotic Hbs (nsHb-1) function in vivo as peroxidases. However, little is known about peroxidase activity of nsHb-1. We evaluated the peroxidase activity of rice recombinant Hb1 (a nsHb-1) by using the guaiacol/H2O2 system at pH 6.0 and compared it to that from horseradish peroxidase (HRP). Results showed that the affinity of rice Hb1 for H2O2 was 86-times lower than that of HRP (K(m)=23.3 and 0.27 mM, respectively) and that the catalytic efficiency of rice Hb1 for the oxidation of guaiacol using H2O2 as electron donor was 2838-times lower than that of HRP (k(cat)/K(m)=15.8 and 44,833 mM(-1) min(-1), respectively). Also, results from this work showed that rice Hb1 is not chemically modified and binds CO after incubation with high H2O2 concentration, and that it poorly protects recombinant Escherichia coli from H2O2 stress. These observations indicate that rice Hb1 inefficiently scavenges H2O2 as compared to a typical plant peroxidase, thus indicating that non-symbiotic Hbs are unlikely to function as peroxidases in planta.


Subject(s)
Hemoglobins/metabolism , Horseradish Peroxidase/metabolism , Oryza/metabolism , Peroxidases/metabolism , Plant Proteins/metabolism , Carbon Monoxide/chemistry , Escherichia coli , Free Radical Scavengers , Guaiacol/metabolism , Hemoglobins/chemistry , Horseradish Peroxidase/chemistry , Hydrogen Peroxide/metabolism , Hydrogen-Ion Concentration , Oryza/chemistry , Oxidative Stress , Peroxidases/chemistry , Plant Proteins/chemistry , Recombinant Proteins/chemistry , Recombinant Proteins/metabolism
2.
Proteins ; 72(1): 252-60, 2008 Jul.
Article in English | MEDLINE | ID: mdl-18214970

ABSTRACT

Nonsymbiotic hemoglobins (nsHbs) and leghemoglobins (Lbs) are plant proteins that can reversibly bind O(2) and other ligands. The nsHbs are hexacoordinate and appear to modulate cellular concentrations of NO and maintain energy levels under hypoxic conditions. The Lbs are pentacoordinate and facilitate the diffusion of O(2) to symbiotic bacteroids within legume root nodules. Multiple lines of evidence suggest that all plant Hbs evolved from a common ancestor and that Lbs originated from nsHbs. However, little is known about the structural intermediates that occurred during the evolution of pentacoordinate Lbs from hexacoordinate nsHbs. We have cloned and characterized a Hb (ppHb) from the root nodules of the ancient caesalpinoid legume Chamaecrista fasciculata. Protein sequence, modeling data, and spectral analysis indicated that the properties of ppHb are intermediate between that of nsHb and Lb, suggesting that ppHb resembles a putative ancestral Lb. Predicted structural changes that appear to have occurred during the nsHb to Lb transition were a compaction of the CD-loop and decreased mobility of the distal His inhibiting its ability to coordinate directly with the heme-Fe, leading to a pentacoordinate protein. Other predicted changes include shortening of the N- and C-termini, compaction of the protein into a globular structure, disappearance of positive charges outside the heme pocket and appearance of negative charges in an area located between the N- and C-termini. A major consequence for some of these changes appears to be the decrease in O(2)-affinity of ancestral nsHb, which resulted in the origin of the symbiotic function of Lbs.


Subject(s)
Chamaecrista/genetics , Hemoglobins/chemistry , Hemoglobins/genetics , Leghemoglobin/chemistry , Symbiosis , Amino Acid Sequence , Base Sequence , Cloning, Molecular , DNA, Complementary , Hemoglobins/metabolism , Models, Molecular , Molecular Sequence Data , Oryza/chemistry , Phylogeny , Protein Structure, Secondary , Recombinant Proteins/chemistry , Recombinant Proteins/metabolism , Sequence Alignment , Glycine max/chemistry , Spectrum Analysis
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