Expression of functional soluble human alpha-globin chains of hemoglobin in bacteria. 2000

K Adachi, and T Yamaguchi, and Y Yang, and P T Konitzer, and J Pang, and K S Reddy, and M Ivanova, and F Ferrone, and S Surrey
Division of Hematology, Children's Hospital of Philadelphia, University of Pennsylvania School of Medicine, Philadelphia, Pennsylvania 19104, USA. adachi@email.chop.edu

Individual, soluble human alpha-globin chains were expressed in bacteria with exogenous heme and methionine aminopeptidase. The yields of soluble alpha chains in bacteria were comparable to those of recombinant non-alpha chains expressed under the same conditions. Molecular mass and gel-filtration properties of purified recombinant alpha chains were the same as those of authentic human alpha chains. Biochemical and biophysical properties of isolated alpha chains were identical to those of native human alpha chains as assessed by UV/vis, circular dichroism (CD), and nuclear magnetic resonance (NMR) spectroscopy which contrasts with previous results of refolded precipitated alpha chains made in the presence of heme in vitro (M. T. Sanna et al., J. Biol. Chem. 272, 3478-3486, 1997). Mixtures of purified, soluble recombinant alpha-globin and native beta-globin chains formed heterotetramers in vitro, and oxygen- and CO-binding properties as well as the heme environment of the assembled tetramers were experimentally indistinguishable from those of native human Hb A. UV/vis, CD, and NMR spectra of assembled Hb A were also the same as those of human Hb A. These results indicate that individual expressed alpha chains are stable in bacteria and fold properly in vivo and that they then can assemble with free beta chains to form hemoglobin heterotetramers in vivo as well as in vitro.

UI MeSH Term Description Entries
D011487 Protein Conformation The characteristic 3-dimensional shape of a protein, including the secondary, supersecondary (motifs), tertiary (domains) and quaternary structure of the peptide chain. PROTEIN STRUCTURE, QUATERNARY describes the conformation assumed by multimeric proteins (aggregates of more than one polypeptide chain). Conformation, Protein,Conformations, Protein,Protein Conformations
D005914 Globins A superfamily of proteins containing the globin fold which is composed of 6-8 alpha helices arranged in a characterstic HEME enclosing structure. Globin
D006454 Hemoglobins The oxygen-carrying proteins of ERYTHROCYTES. They are found in all vertebrates and some invertebrates. The number of globin subunits in the hemoglobin quaternary structure differs between species. Structures range from monomeric to a variety of multimeric arrangements. Eryhem,Ferrous Hemoglobin,Hemoglobin,Hemoglobin, Ferrous
D006801 Humans Members of the species Homo sapiens. Homo sapiens,Man (Taxonomy),Human,Man, Modern,Modern Man
D013057 Spectrum Analysis The measurement of the amplitude of the components of a complex waveform throughout the frequency range of the waveform. (McGraw-Hill Dictionary of Scientific and Technical Terms, 6th ed) Spectroscopy,Analysis, Spectrum,Spectrometry

Related Publications

K Adachi, and T Yamaguchi, and Y Yang, and P T Konitzer, and J Pang, and K S Reddy, and M Ivanova, and F Ferrone, and S Surrey
July 1973, Biochimica et biophysica acta,
K Adachi, and T Yamaguchi, and Y Yang, and P T Konitzer, and J Pang, and K S Reddy, and M Ivanova, and F Ferrone, and S Surrey
April 2002, The Journal of biological chemistry,
K Adachi, and T Yamaguchi, and Y Yang, and P T Konitzer, and J Pang, and K S Reddy, and M Ivanova, and F Ferrone, and S Surrey
December 1997, Zoological science,
K Adachi, and T Yamaguchi, and Y Yang, and P T Konitzer, and J Pang, and K S Reddy, and M Ivanova, and F Ferrone, and S Surrey
March 1976, Proceedings of the National Academy of Sciences of the United States of America,
K Adachi, and T Yamaguchi, and Y Yang, and P T Konitzer, and J Pang, and K S Reddy, and M Ivanova, and F Ferrone, and S Surrey
January 1977, Proceedings of the National Academy of Sciences of the United States of America,
K Adachi, and T Yamaguchi, and Y Yang, and P T Konitzer, and J Pang, and K S Reddy, and M Ivanova, and F Ferrone, and S Surrey
June 1989, Biochemistry,
K Adachi, and T Yamaguchi, and Y Yang, and P T Konitzer, and J Pang, and K S Reddy, and M Ivanova, and F Ferrone, and S Surrey
January 2009, American journal of hematology,
K Adachi, and T Yamaguchi, and Y Yang, and P T Konitzer, and J Pang, and K S Reddy, and M Ivanova, and F Ferrone, and S Surrey
November 2014, Protein expression and purification,
K Adachi, and T Yamaguchi, and Y Yang, and P T Konitzer, and J Pang, and K S Reddy, and M Ivanova, and F Ferrone, and S Surrey
October 1984, Proceedings of the National Academy of Sciences of the United States of America,
K Adachi, and T Yamaguchi, and Y Yang, and P T Konitzer, and J Pang, and K S Reddy, and M Ivanova, and F Ferrone, and S Surrey
December 1980, Biochimica et biophysica acta,
Copied contents to your clipboard!