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Purification and partial characterization of rat liver pyruvate dehydrogenase kinase activator protein (free pyruvate dehydrogenase kinase).

Rat liver pyruvate dehydrogenase (PDH) kinase activator protein (KAP), a free PDH kinase readily separable from PDH complex and its intrinsic kinase, has been purified to apparent homogeneity from liver mitochondria of fed and 48-h starved rats. On SDS-PAGE an apparently single band of M(r) 45 kDa was obtained. N-Terminal amino acid sequence analyses (8-10 cycles) confirmed the presence of a single peptide in each case. The specific activity of the purified KAP from 48-h starved rats (14,413 U/mg protein) was 4.5-fold greater than that from fed rats.

Amino Acid Sequence↗

cDNA cloning of human R-type pyruvate kinase and identification of a single amino acid substitution (Thr384----Met) affecting enzymatic stability in a pyruvate kinase variant (PK Tokyo) associated with hereditary hemolytic anemia.

cDNA clones for human R-type pyruvate kinase (PK) were isolated from a human reticulocyte cDNA library, constructed by PCR with a single gene-specific primer. The full-length cDNA was 2060 base pairs long, and the cDNA encoded 574 amino acids, the same number as that by rat R-type PK. Compared with human L-type PK, R-type PK was 31 amino acids longer at the amino terminus. We also cloned and characterized R-type PK cDNA clones from patients with hereditary hemolytic anemia from a PK deficiency, PK Tokyo. A single nucleotide substitution (ACG to ATG) was found at nucleotide 1151 of the coding sequence of the R-type PK, which caused an amino acid substitution, Thr384----Met. Dot blot hybridization of PCR-amplified genomic DNA from patients and their parents by allele-specific oligonucleotide probes showed that the parents, who were second cousins, were heterozygous. To confirm that the nucleotide change was responsible for the variant phenotype, we expressed the L-type PK with the single amino acid change in Escherichia coli and characterized the enzyme. The variant PK was thermolabile and moved slowly in the polyacrylamide gel buffered in 10 mM Tris.HCl, pH 8.3; these characteristics were fully compatible with data obtained from the patient's PK. From these results, we concluded that enzymatic stability of the variant was affected by the point mutation of the PK-encoding gene.

Amino Acid Sequence↗

Chronic haemolytic anaemia in two patients heterozygous for erythrocyte pyruvate kinase deficiency. Electrofocusing and immunological studies of erythrocyte and liver pyruvate kinase.

Two patients with mild chronic haemolytic anaemia, a mother and her son, were found to be heterozygous for erythrocyte pyruvate kinase deficiency. In the red blood cells the enzymatic activity was reduced by about 50% and the residual PK had normal kinetic properties, stability and electrofocusing pattern. The PK antigen concentration was also decreased by half, so that the ratio of the enzymatic activity to the immunological reactivity (i.e. the molecular specific activity) was normal. In the son's liver PK enzymatic activity was slightly reduced and, above all, an abnormal active form, more anodic than normal PK, was detected by electrofocusing. The propositus's liver PK was also slightly thermo-unstable. It is suggested that the patients were heterozygous for an unstable PK variant which is found in liver, nucleated tissue actively synthesizing proteins, but which disappeared from the erythrocytes because of its unstability.

Adult↗

Biochemical and molecular characterization of variant pyruvate kinase enzymes and genes from three patients with red blood cell pyruvate kinase deficiency.

Pyruvate kinase (PK) from red blood cells (RBC) of three patients with nonspherocytic hemolytic anemia due to PK deficiency was characterized according to internationally standardized methods. The variant enzymes, which were designated PK 'Memphis', PK 'Bartlett', and PK 'Pontotoc', had 11, 60, and 61%, respectively, of the normal enzyme activity. All variant PK enzymes had increased thermolability. Compared with control, Km (PEP) were 200-300% greater for PK 'Memphis', 50% less for PK 'Bartlett' and 300-400% greater for PK 'Pontotoc'. The Km (ADP) were 40 and 300% greater than normal for PK 'Bartlett' and PK 'Pontotoc', respectively. All variants required higher than normal concentrations of the allosteric modifier, fructose-1,6-diphosphate, to achieve 50% activation of maximal enzyme activity. To define the molecular basis of the gene defect, DNA samples from these patients were examined for restriction-fragment-linked polymorphisms. No differences were observed in the structure of the patients' PK genes compared with a normal control. These results are consistent with a mutation in coding sequences, rather than a large insertion, deletion or rearrangement of genetic information, as the underlying genetic defect that accounts for the altered enzyme properties in these PK-deficient patients.

Enzyme Stability↗

Effects of acute acid-base changes on rat renal pyruvate dehydrogenase. Renal pyruvate dehydrogenase during acid-base alterations.

Glutamine, the principal source of urinary ammonia, can be fully oxidized or converted to glucose by the kidney. To be oxidized, the carbon skeleton of glutamine must enter the TCA cycle as acetyl CoA formed by pyruvate dehydrogenase (PDH). The purpose of this study was to measure kidney PDH activity (active and total) following acute acid-base changes in vivo. PDHa activity was elevated after acute metabolic alkalosis and acidosis and unchanged by respiratory acidosis. Kidney ADP/ATP, CoA/acetyl CoA and calculated mitochondrial NAD+/NADH ratios were also determined and revealed an increase in kidney ADP/ATP with alkalosis but no changes during metabolic and respiratory acidosis.

Acid-Base Imbalance↗

Electrophoretic, immunologic and kinetic characterization of erythrocyte pyruvate kinase in the Basenji dog with pyruvate kinase deficiency.

The electrophoretic mobility and the immunologic specificity of erythrocyte pyruvate kinase (PK) of the homozygous Basenji dog with PK deficiency were identical to those of normal M2-type PK isozyme seen in the white cell but not to those of the erythrocyte PK isozyme. Kinetic properties and stability were also consistent with the M2-type PK isozyme. Defective PK in the homozygous red cell was due to the absence of the erythrocyte PK isozyme and the compensatory presence of M2-type PK isozyme, as seen in the severe classical type PK deficiency in man.

Animals↗

Point mutations in the L-type pyruvate kinase gene of two children with hemolytic anemia caused by pyruvate kinase deficiency.

The molecular alterations responsible for the characteristic enzyme abnormalities in pyruvate kinase (PK) deficiency were investigated in two unrelated children homozygous for PK deficiency. Both variant enzymes were characterized according to the recommendations of the International Committee for Standardization in Haematology. Genomic DNA was specifically amplified by the polymerase chain reaction. Normal and mutant alleles of the L-type PK gene were analyzed by nucleotide sequencing. Heterozygosity of the parents was confirmed by allele-specific oligonucleotide hybridization. In PK Linz a C to T base exchange at position 394 of the L-type PK gene was found. As a result, the 132nd amino acid of the mutant enzyme, arginine (CGC), is replaced by cysteine (TGC). The affected amino acid residue is located within the deduced active site of the protein and the enzyme variant shows strongly altered allosteric properties. PK Beirut shows a C for T substitution at position 1058, changing the 353 amino acid from threonine (ACG) to methionine (ATG). In contrast to PK Linz, this amino acid lies outside the deduced substrate binding site and kinetic parameters of PK Beirut are close to normal. Both enzyme variants show a markedly reduced specific activity and thermolability.

Anemia, Hemolytic↗

[Localization of pyruvate kinase M1 (ATP pyruvate phosphotransferase-2.7.1.40) in nervous tissue of the rat. Preliminary results].

The M1 pyruvate kinase has been localized in macroneuron's cytoplasm of nervous tissue of adult Rat, in situ as well as in tissue culture. Three methods have been used: histoenzymology, immunoenzymology and immunofluorescence, combined with Nomarski optics. This enzymatic localization may suggest a metabolic or differenciated fonctionnal state of the nerve cell.

Animals↗

Purification, characterisation and steady state kinetic properties of cytosolic pyruvate kinase free of phosphoenol pyruvate phosphatase activity from germinating mung beans (Vigna radiata L.)

Mung bean pyruvate kinase (PK) practically free from PEP-phosphatase has been purified about 36 fold. The enzyme is irreversibly inactivated on desalting by gel filtration or dialysis (without EDTA). The inactivation is also observed in the presence of ATP, Mg2+ or thiols but is prevented by a non-proteinous, heat stable, small molecular mass factor present in the mung bean extract. Mung bean PK has a molecular mass of 210 kDa. It shows single exponential decay of activity at various temperatures (-4 to 60 degrees C). The Km of PEP and ADP are found to be 0.12 and 0.24 mM, respectively at pH 6.5, when the enzyme is saturated with the second substrate. The Km values for PEP and ADP are 0.05 and 0.16 mM, at pH 8.5 and 0.09 and 0.17 mM, respectively at pH 7.5. The optimum pH is 7.5. The enzyme shows an absolute requirement for Mg2+ (Km 0.43 mM) or Mn2+ ions (Km 0.125 mM). Potassium ions are not essential but activate the enzyme in the presence of Mg2+ or Mn2+ ions. ATP shows competitive inhibition with ADP and non-competitive with PEP. Kinetic studies at different pHs and effects of ATP suggest the formation of a ternary complex (E.ADP.PEP) by a combination of random and compulsory ordered pathways depending on the experimental conditions.

Acid Phosphatase↗

Computational studies on the decarboxylation of 2-(1-carboxy-1-hydroxyethyl)-3,4-dimethylthiazolium dipolar ion, an analog of the complex of pyruvic acid and coenzyme of the pyruvate decarboxylase.

We have obtained the optimized geometrical structure of 2-(1-carboxy-1-hydroxyethyl)-3,4-dimethylthiazolium dipolar ion and investigated its geometric and electric changes during decarboxylation process by the MNDO-PM3 method, a molecular orbital method. The salient features of the optimized structure are that the dihedral angle of C4-C1-C2-S3 is 5.4 degrees and the distance between thiazolium S3 and carboxyl O6 is about 1.8 A (the bond order between S3 and O6 is about 0.4). The lowest energy decarboxylation profile is the following process. First the dihedral angle of C4-C1-C2-S3 becomes about 90 degrees, then the distance between C1-C2 increases while the dihedral angle holds about 90 degrees, and finally the C1-C2 bond disappears. The most remarkable change caused by the 90 degrees rotation is the disappearance of the S3-O6 bond, and this disappearance causes electric changes that prompt the decarboxylation.

Mathematics↗