Adaptation of bird hemoglobins to high altitudes: demonstration of molecular mechanism by protein engineering.
- 1 August 1991
- journal article
- research article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 88 (15) , 6519-6522
- https://doi.org/10.1073/pnas.88.15.6519
Abstract
Of two closely related species of geese, one, the greylag goose, lives in the Indian plains all year round, while the other, the bar-headed goose, lives at the Tibetan lakes and migrates across the Himalayas to winter in India. Another species, the Andean goose, lives in the High Andes all year round. Possession of a Hb with high oxygen affinity helps to adapt bar-headed and Andean geese to high altitudes. The Hb amino acid sequences of the bar-headed and the greylag geese differ by four substitutions, of which only one is unique among bird sequences: Pro-119 alpha (H2)----Ala. Perutz proposed that the two-carbon gap left by this substitution at the alpha 1 beta 1 contact raises the oxygen affinity, because it relaxes the tension in the deoxy or T structure [Perutz, M. F. (1983) Mol. Biol. Evol. 1, 1-28]. It was later found that the Hb of the Andean goose has a gap in the same position, due to the complementary substitution Leu-55 beta (D6)----Ser. We have tested Perutz's hypothesis by introducing each of these substitutions into human globin synthesized in Escherichia coli. The reconstituted Hbs combine cooperatively with oxygen. Their oxygen affinities exceed that of normal human Hb by an even larger factor than that found between the high-flying geese and the greylag goose. The mutant Hb Met-55 beta (D6)----Ser was crystallized. Its structure is the same as that of HbA, except in the immediate environment of the gap left by the substitution of the serine for the methionine side chain, which evidently causes the increased oxygen affinity of this Hb.Keywords
This publication has 22 references indexed in Scilit:
- Functional role of the distal valine (E11) residue of α subunits in human haemoglobinJournal of Molecular Biology, 1991
- The role of the distal histidine in myoglobin and haemoglobinNature, 1988
- Molekulare Aspekte der Höhenatmung von VögelnThe Science of Nature, 1988
- High-Altitude Respiration of Geese. The Primary Structures of the Major and Minor Hemoglobin-Components of Adult Andean Goose (Chloephaga melanoptera, Anatidae): the Mutation Leu → Ser in Position 55 of the ß-ChainsBiological Chemistry Hoppe-Seyler, 1987
- Blood flow distribution during hypocapnic hypoxia in pekin ducks and bar-headed geeseRespiration Physiology, 1985
- The crystal structure of human deoxyhaemoglobin at 1.74 Å resolutionJournal of Molecular Biology, 1984
- Oxygen transport during progressive hypoxia in high-altitude and sea-level waterfowlRespiration Physiology, 1980
- Mechanisms of gas exchange in bird lungsPublished by Springer Nature ,1979
- Structure and function of haemoglobin philly (Tyr C1 (35) β→Phe)Journal of Molecular Biology, 1976
- Survival at Extreme Altitude: Protective Effect of Increased Hemoglobin-Oxygen AffinityScience, 1974