The role of the distal histidine in myoglobin and haemoglobin (original) (raw)
- Letter
- Published: 01 November 1988
- Antony J. Mathews1,
- Ronald J. Rohlfs1,
- Barry A. Springer2,
- Karen D. Egeberg2,
- Stephen G. Sligar2,
- Jeremy Tame3,
- Jean-Paul Renaud3 nAff4 &
- …
- Kiyoshi Nagai3
Nature volume 336, pages 265–266 (1988)Cite this article
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Abstract
The distal E7 histidine in vertebrate myoglobins and haemoglobins has been strongly conserved during evolution and is thought to be important in fine-tuning the ligand affinities of these proteins1–8. A hydrogen bond between the Nɛ proton of the distal histidine and the second oxygen atom may stabilize O2 bound to the haem iron1–8. The proximity of the imidazole side chain to the sixth coordination position, which is required for efficient hydrogen bonding, has been postulated to inhibit sterically the binding of CO and alkyl isocyanides2–8. To test these ideas, engineered mutants of sperm whale myoglobin9 and the α- and β-subunits of human haemoglobin8,10–12 were prepared in which E7 histidine was replaced by glycine. Removal of the distal imidazole in myoglobin and the α-subunits of intact, R-state haemoglobin caused significant changes in the affinity for oxygen, carbon monoxide and methyl isocyanide; in contrast, the His-E7 to Gly substitution produced little or no effect on the rates and extents of O2, CO and methyl isocyanide binding to β-chains within R-state haemoglobin. In the β-subunit the distal histidine seems to be less significant in regulating the binding of ligands to the haem iron in the high affinity quaternary conformation. Structural differences in the oxygen binding pockets shown by X-ray crystallographic studies4,5 account for the functional differences of these proteins.
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References
- Pauling, L. Nature 203, 182–183 (1964).
Article ADS CAS Google Scholar - Collman, J. P. Accts Chem. Res. 10, 265–273 (1977).
Article CAS Google Scholar - Moffat, K., Deatherage, J. R. & Seyberg, D. W. Science 206, 1035–1042 (1979).
Article ADS CAS Google Scholar - Phillips, S. E. V. J. molec. Biol. 142, 531–554 (1980).
Article CAS Google Scholar - Shaanan, B. J. molec. Biol. 171, 31–59 (1983).
Article CAS Google Scholar - Mims, M. P., Porras, H. G., Olson, J. S., Noble, R. W. & Peterson, J. A. J. biol. Chem. 258, 14219–14232 (1983).
CAS PubMed Google Scholar - Nagai, K. et al. Nature 329, 858–860 (1987).
Article ADS CAS Google Scholar - Perutz, M. F. in Molecular Basis of Blood Diseases (eds Stammatoyanopoulos, G., Nienhaus, A. W., Leder, P. & Majerus, P. W.) 127–178 (Saunders, Philadelphia, 1987).
Google Scholar - Springer, B. A. & Sligar, S. G. Proc. natn. Acad. Sci. U.S.A. 84, 8961–8965 (1987).
Article ADS CAS Google Scholar - Nagai, K. & Thøgersen, H. C. Nature 309, 810–812 (1984).
Article ADS CAS Google Scholar - Nagai, K. & Thøgersen, H. C. Meth. Enzym. 153, 461–481 (1987).
Article CAS Google Scholar - Nagai, K., Perutz, M. F. & Poyart, C. Proc. natn. Acad. Sci. U.S.A. 82, 7252–7255 (1985).
Article ADS CAS Google Scholar - Sawicki, C. A. & Gibson, Q. H. J. biol. Chem. 252, 7538–7547 (1977).
CAS PubMed Google Scholar - Olson, J. S. Meth. Enzym. 76, 631–651 (1981).
Article CAS Google Scholar - Olson, J. S., Anderson, M. E. & Gibson, Q. H. J. biol. Chem. 246, 5919–5923 (1971).
CAS PubMed Google Scholar - Reisberg, P. I. & Olson, J. S. J. biol. Chem. 255, 4151–4158 (1980).
CAS PubMed Google Scholar - Phillips, S. E. V. & Schoenborn, B. P. Nature 292, 81–82 (1981).
Article ADS CAS Google Scholar - Hanson, J. C. & Schoenborn, B. P. J. molec. Biol. 153, 117–146 (1981).
Article CAS Google Scholar - Baldwin, J. J. molec. Biol. 136, 103–128 (1980).
Article CAS Google Scholar
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Author notes
- Jean-Paul Renaud
Present address: Laboratoire de Chimie et Biochimie, Pharmacologiques et Toxicologiques, CNRS UA 400, 45 Rue des Saints-Peres, 75270, Paris, Cedex 06, France
Authors and Affiliations
- Department of Biochemistry, Rice University, Houston, Texas, 77251, USA
John S. Olson, Antony J. Mathews & Ronald J. Rohlfs - Departments of Biochemistry and Chemistry, University of Illinois, Urbana, Illinois, 61801, USA
Barry A. Springer, Karen D. Egeberg & Stephen G. Sligar - MRC Laboratory of Molecular Biology, Hills Road, Cambridge, CB2 2QH, UK
Jeremy Tame, Jean-Paul Renaud & Kiyoshi Nagai
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Olson, J., Mathews, A., Rohlfs, R. et al. The role of the distal histidine in myoglobin and haemoglobin.Nature 336, 265–266 (1988). https://doi.org/10.1038/336265a0
- Received: 14 July 1988
- Accepted: 30 September 1988
- Published: 01 November 1988
- Issue Date: 17 November 1988
- DOI: https://doi.org/10.1038/336265a0