Mutational analysis of human uroporphyrinogen decarboxylase. 1996

E E Wyckoff, and J D Phillips, and A M Sowa, and M R Franklin, and J P Kushner
Department of Medicine University of Utah, School of Medicine, Salt Lake City 84132, USA.

Uroporphyrinogen decarboxylase (URO-D), a heme biosynthetic enzyme, catalyzes the multi-step decarboxylation reaction converting uroporphyrinogen I or III to coproporphyrinogen I or III. The URO-D protein has been purified from several sources and its gene has been cloned from many organisms. In spite of this, little is known about the active site(s) of the enzyme. Inhibitor studies suggest that cysteine and histidine residues are important for enzyme activity. We employed the Kunkel method of site-directed mutagenesis to convert each of the six cysteines in human URO-D to serine and each of the three conserved histidines to asparagine. Recombinant mutant URO-D's were expressed in Escherichia coli, partially purified, and their kinetic properties compared to recombinant wild-type URO-D. All cysteine mutants retained approx. 40% wild-type enzyme activity, indicating that no single cysteine is absolutely critical for the integrity of the catalytic site. The three histidine mutants also retained significant enzyme activity and one, (H339N), displayed unique properties. The H339N mutation resulted in an enzyme with high residual activity but decarboxylation of intermediate reaction products of the I isomer series was markedly abnormal. The histidine at residue 339 is likely important in imparting isomer specificity.

UI MeSH Term Description Entries
D007700 Kinetics The rate dynamics in chemical or physical systems.
D008969 Molecular Sequence Data Descriptions of specific amino acid, carbohydrate, or nucleotide sequences which have appeared in the published literature and/or are deposited in and maintained by databanks such as GENBANK, European Molecular Biology Laboratory (EMBL), National Biomedical Research Foundation (NBRF), or other sequence repositories. Sequence Data, Molecular,Molecular Sequencing Data,Data, Molecular Sequence,Data, Molecular Sequencing,Sequencing Data, Molecular
D011994 Recombinant Proteins Proteins prepared by recombinant DNA technology. Biosynthetic Protein,Biosynthetic Proteins,DNA Recombinant Proteins,Recombinant Protein,Proteins, Biosynthetic,Proteins, Recombinant DNA,DNA Proteins, Recombinant,Protein, Biosynthetic,Protein, Recombinant,Proteins, DNA Recombinant,Proteins, Recombinant,Recombinant DNA Proteins,Recombinant Proteins, DNA
D003545 Cysteine A thiol-containing non-essential amino acid that is oxidized to form CYSTINE. Cysteine Hydrochloride,Half-Cystine,L-Cysteine,Zinc Cysteinate,Half Cystine,L Cysteine
D005033 Ethylmaleimide A sulfhydryl reagent that is widely used in experimental biochemical studies. N-Ethylmaleimide,N Ethylmaleimide
D006639 Histidine An essential amino acid that is required for the production of HISTAMINE. Histidine, L-isomer,L-Histidine,Histidine, L isomer,L-isomer Histidine
D006801 Humans Members of the species Homo sapiens. Homo sapiens,Man (Taxonomy),Human,Man, Modern,Modern Man
D000595 Amino Acid Sequence The order of amino acids as they occur in a polypeptide chain. This is referred to as the primary structure of proteins. It is of fundamental importance in determining PROTEIN CONFORMATION. Protein Structure, Primary,Amino Acid Sequences,Sequence, Amino Acid,Sequences, Amino Acid,Primary Protein Structure,Primary Protein Structures,Protein Structures, Primary,Structure, Primary Protein,Structures, Primary Protein
D000818 Animals Unicellular or multicellular, heterotrophic organisms, that have sensation and the power of voluntary movement. Under the older five kingdom paradigm, Animalia was one of the kingdoms. Under the modern three domain model, Animalia represents one of the many groups in the domain EUKARYOTA. Animal,Metazoa,Animalia
D014575 Uroporphyrinogen Decarboxylase An enzyme that catalyzes the decarboxylation of UROPORPHYRINOGEN III to coproporphyrinogen III by the conversion of four acetate groups to four methyl groups. It is the fifth enzyme in the 8-enzyme biosynthetic pathway of HEME. Several forms of cutaneous PORPHYRIAS are results of this enzyme deficiency as in PORPHYRIA CUTANEA TARDA; and HEPATOERYTHROPOIETIC PORPHYRIA. Uroporphyrinogen Carboxy-Lyase,Uroporphyrinogen III Decarboxylase,Carboxy-Lyase, Uroporphyrinogen,Decarboxylase, Uroporphyrinogen,Decarboxylase, Uroporphyrinogen III,Uroporphyrinogen Carboxy Lyase

Related Publications

E E Wyckoff, and J D Phillips, and A M Sowa, and M R Franklin, and J P Kushner
September 1987, Nucleic acids research,
E E Wyckoff, and J D Phillips, and A M Sowa, and M R Franklin, and J P Kushner
July 1987, Nucleic acids research,
E E Wyckoff, and J D Phillips, and A M Sowa, and M R Franklin, and J P Kushner
May 1998, The EMBO journal,
E E Wyckoff, and J D Phillips, and A M Sowa, and M R Franklin, and J P Kushner
May 1991, Journal of chromatography,
E E Wyckoff, and J D Phillips, and A M Sowa, and M R Franklin, and J P Kushner
April 1995, Journal of bioenergetics and biomembranes,
E E Wyckoff, and J D Phillips, and A M Sowa, and M R Franklin, and J P Kushner
November 2004, Nihon rinsho. Japanese journal of clinical medicine,
E E Wyckoff, and J D Phillips, and A M Sowa, and M R Franklin, and J P Kushner
January 1977, Biochemical Society transactions,
E E Wyckoff, and J D Phillips, and A M Sowa, and M R Franklin, and J P Kushner
June 1997, Protein science : a publication of the Protein Society,
E E Wyckoff, and J D Phillips, and A M Sowa, and M R Franklin, and J P Kushner
September 1991, The Biochemical journal,
E E Wyckoff, and J D Phillips, and A M Sowa, and M R Franklin, and J P Kushner
June 1989, Clinical biochemistry,
Copied contents to your clipboard!