Oxygenation properties and isoform diversity of snake hemoglobins

Author:

Storz Jay F.1,Natarajan Chandrasekhar1,Moriyama Hideaki1,Hoffmann Federico G.23,Wang Tobias4,Fago Angela4,Malte Hans4,Overgaard Johannes4,Weber Roy E.4

Affiliation:

1. School of Biological Sciences, University of Nebraska, Lincoln, Nebraska;

2. Department of Biochemistry, Molecular Biology, Entomology, and Plant Pathology, Mississippi State University, Starkville, Mississippi;

3. Institute for Genomics, Biocomputing, and Biotechnology, Mississippi State University, Mississippi State, Mississippi; and

4. Zoophysiology, Department of Bioscience, Aarhus University, Aarhus, Denmark

Abstract

Available data suggest that snake hemoglobins (Hbs) are characterized by a combination of unusual structural and functional properties relative to the Hbs of other amniote vertebrates, including oxygenation-linked tetramer-dimer dissociation. However, standardized comparative data are lacking for snake Hbs, and the Hb isoform composition of snake red blood cells has not been systematically characterized. Here we present the results of an integrated analysis of snake Hbs and the underlying α- and β-type globin genes to characterize 1) Hb isoform composition of definitive erythrocytes, and 2) the oxygenation properties of isolated isoforms as well as composite hemolysates. We used species from three families as subjects for experimental studies of Hb function: South American rattlesnake, Crotalus durissus (Viperidae); Indian python, Python molurus (Pythonidae); and yellow-bellied sea snake, Pelamis platura (Elapidae). We analyzed allosteric properties of snake Hbs in terms of the Monod-Wyman-Changeux model and Adair four-step thermodynamic model. Hbs from each of the three species exhibited high intrinsic O2 affinities, low cooperativities, small Bohr factors in the absence of phosphates, and high sensitivities to ATP. Oxygenation properties of the snake Hbs could be explained entirely by allosteric transitions in the quaternary structure of intact tetramers, suggesting that ligation-dependent dissociation of Hb tetramers into αβ-dimers is not a universal feature of snake Hbs. Surprisingly, the major Hb isoform of the South American rattlesnake is homologous to the minor HbD of other amniotes and, contrary to the pattern of Hb isoform differentiation in birds and turtles, exhibits a lower O2 affinity than the HbA isoform.

Funder

National Science Foundation (NSF)

HHS | National Institutes of Health (NIH)

Det Frie Forskningsråd (Danish Council for Independent Research)

Faculty of Science and Technology, Aarhus University

Publisher

American Physiological Society

Subject

Physiology (medical),Physiology

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