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The coenzyme thiamine pyrophosphate inhibits the self-splicing of the group I intron.

Effects of the coenzyme thiamine pyrophosphate and its analogs on the inhibition of self-splicing of primary transcripts of the phage T4 thymidylate synthase gene (td) were investigated. Of all compounds tested, the coenzyme thiamine pyrophosphate was the most potent inhibitor and the order of inhibitory efficiency for compounds tested was as follows: thiamine pyrophosphate>thiamine monophosphate>thiamine>thiochrome. Increasing guanosine concentration overcame the suppression of self-splicing by thiamine pyrophosphate close to the level of normal splicing. Kinetic analysis demonstrated that thiamine pyrophosphate acts as a competitive inhibitor for the td intron RNA with a Ki of 2.2mM. The splicing specificity inhibition by thiamine pyrophosphate is predominantly due to changes in Km.

Bacteriophage T4↗

Thiamin status of incarcerated and nonincarcerated adolescent males: dietary intake and thiamin pyrophosphate response.

We measured thiamin status in 137 incarcerated and 42 nonincarcerated adolescent males by use of both dietary intake data and a standard biochemical assay, thiamin pyrophosphate (TPP) response. Average thiamin intake of the total group was greater than 120% of the age-specific recommended dietary allowance (RDA). Ninety-two percent of incarcerated subjects and 93% of nonincarcerated subjects were consuming greater than or equal to 70% of RDA. Although average daily thiamin intake of nonincarcerated subjects was significantly higher than that of incarcerated subjects, both groups appeared to be at minimal risk for marginal thiamin status. Comparison of TPP response values indicated that there was no significant difference between groups. However, approximately 24% of the total population appeared to have less than adequate RBC thiamin on the basis of current standards for TPP response. Neither dietary intake nor reported previous alcohol intake was correlated with TPP response. These discrepant findings raise questions about the usefulness of the TPP response as the sole indicator of marginal thiamin status.

Adolescent↗

Thiamine pyrophosphate (cocarboxylase) as a growth factor for Haemophilus somnus.

The effect of a commercially available, chemically defined enrichment (Iso-VitaleX; BBL Microbiology Systems, Cockeysville, Md.) on the growth of 10 strains of Haemophilus somnus was studied. A 6- to 10-fold increase in growth, as measured turbidimetrically, was observed when Iso VitaleX was added to a basal medium of brain heart infusion broth to a final concentration of 1% (vol/vol). Thiamine pyrophosphate (cocarboxylase), a constituent component of Iso VitaleX, was found to be the only growth-promoting factor, and it could be used as a substitute for Iso VitaleX. An equimolar concentration (2.2 microM) of thiamine monophosphate promoted growth equal to that of thiamine pyrophosphate. Thiamine was nonstimulatory for all 10 strains tested. When alkaline thermal-treated brain heart infusion broth was used as the basal medium, 7 of the 10 strains had an absolute requirement for thiamine monophosphate or thiamine pyrophosphate. The three remaining strains showed minimal growth when thiamine was added to this basal medium; however, excellent growth was observed when thiamine monophosphate or thiamine pyrophosphate was utilized. Factor X (hemin) was found to further enhance the growth when concentrations of 5 to 10 micrograms/ml were coupled with thiamine pyrophosphate. No increase in growth was observed when factor V (nicotinamide adenine dinucleotide) was coupled with thiamine pyrophosphate. This is the first report of a growth factor requirement for H. somnus.

Culture Media↗

Comparison of transketolase activity and thiamin pyrophosphate levels in erythrocytes and liver of rainbow trout (Salmo gairdneri) as indicators of thiamin status.

Yearling rainbow trout (Salmo gairdneri) were fed a purified diet with and without thiamin supplementation for 30 wk, at which time overt signs of thiamin deficiency appeared in the deficient group. Overt signs of thiamin deficiency were anorexia, darkening and ataxia. Death rapidly followed the development of overt thiamin deficiency. Transketolase activity and thiamin pyrophosphate levels were measured monthly in erythrocyte and liver samples. Significant differences in erythrocyte transketolase activity between fish fed the thiamin-deficient and control diets were measured after 24 wk of feeding. No significant difference in liver transketolase activity was found between trout fed diets with or without thiamin supplementation. Thiamin pyrophosphate levels were significantly lower in erythrocytes and liver of fish fed the thiamin-deficient diet after 16 wk of feeding. Thiamin pyrophosphate levels in erythrocytes and liver were found to be a more sensitive indicator of thiamin status of rainbow trout than erythrocyte or liver transketolase activity.

Animals↗

Half-of-the-site reactivity of the decarboxylating component of the pyruvate dehydrogenase complex from pigeon breast muscle with respect to 2-hydroxyethyl thiamine pyrophosphate.

The holopyruvate dehydrogenase is characterized by the charge transfer complex formation between tryptophan residue and thiamine pyrophosphate in each of two active centres. Interaction of apoenzyme with one mole of 2-hydroxyethyl thiamine pyrophosphate results in appearance of the same spectral band which does not change in intensity with further increase in ligand concentration. 2-hydroxyethyl thiamine pyrophosphate: acceptor oxidoreductase activity abolishes after oxidation of only one tryptophan residue per mole of the protein or blocking of one of the active centres with inactive analogue of the coenzyme. In the latter case the charge transfer complex band induced by interaction of apoenzyme with 2-hydroxyethyl thiamine pyrophosphate was not shown at all. These facts testify to half-of-the-site reactivity of pyruvate dehydrogenase with respect to 2-hydroxyethyl thiamine pyrophosphate.

Animals↗

31P NMR investigations on free and enzyme bound thiamine pyrophosphate.

Pyruvate decarboxylase (PDC) contains thiamine pyrophosphate (TPP) and Mg2+ as cofactors. 31P NMR studies with PDC in the presence of added Mn2+ reveal the pyrophosphate moiety of TPP to be a nonaccessible area for the external Mn2+ and thus proving the Mg-P-complex (taking part in the binding of the coenzyme to the protein) to be a nonaccessible area for the medium. Glyoxylic acid, acting as an inhibitor of PDC by forming a noncleavable bond with the catalytic center of TPP causes a steric immobilization of the coenzyme indicated by a line broadening of the pyrophosphate moiety.

Carboxy-Lyases↗

Pyruvate decarboxylase III. Specificity restrictions for thiamine pyrophosphate in the protein association step, sub-unit structure.

Pyruvate decarboxylase dissociates into sub-units of one half the molecular weight at alkaline pH. At the same conditions the cofactors thiamine pyrophosphate and Mg2+ are released and can be separated from the protein. Thiamine pyrophosphate is an obligatory cofactor for reconstitution to the oligomer [1]. In this study the effect of thiamine pyrophosphate derivatives (thiamine monophosphate, thiamine, and thiazole pyrophosphate) upon the reconstitution procedure was evaluated. The complete association of sub-units to form active oligomer was attained only when thiamine pyrophosphate was present. It is concluded that both the pyrimidine ring and the pyrophosphate group are required for productive co-enzyme binding and it is proposed that this interaction effects a conformational change which promotes protomer aggregation to form the enzymatically active holoenzyme. In addition data are presented which indicate that the monomer unit is 60 000 +/- 3000 daltons and that the N-terminal amino acid is histidine. Since the molecular weight of the active oligomer is 230 000 it is proposed that pyruvate decarboxylase is a tetramer comprised of four identical or nearly identical monomer units.

Binding Sites↗

Assessment of the thiamine nutritional status. An evaluation of erythrocyte transketolase activity, the stimulated erythrocyte transketolase activity, and the thiamine pyrophosphate effect.

The most widely accepted approach to estimation of thiamine nutrition has been the measurement of the erythrocyte transketolase activity (ETKA), the ETKA stimulated in vitro with thiamine pyrophosphate (TPP) (which is suggested to be designated ETKAS) and the percentage increase of ETKA after stimulation with TPP in vitro, called the thiamine pyrophosphate effect (TPPE). In spite of 30 years of experience in the determination of these variables doubtfulness still exists of how to assess them. On the basis of a study of a group of alcoholics and a group of non-alcoholics a system of evaluation of ETKA, ETKAS and TPPE is proposed.

Adult↗

Crystal structures of the thi-box riboswitch bound to thiamine pyrophosphate analogs reveal adaptive RNA-small molecule recognition.

Riboswitches are noncoding mRNA elements that bind small-molecule metabolites with high affinity and specificity, and they regulate the expression of associated genes. The thi-box riboswitch can exhibit a 1000-fold higher affinity for thiamine pyrophosphate over closely related noncognate compounds such as thiamine monophosphate. To understand the chemical basis of thi-box pyrophosphate specificity, we have determined crystal structures of an E. coli thi-box bound to thiamine pyrophosphate, thiamine monophosphate, and the structural analogs benfotiamine and pyrithiamine. When bound to monophosphorylated compounds, the RNA elements that recognize the thiamine and phosphate moieties of the ligand move closer together. This allows the riboswitch to recognize the monophosphate in a manner similar to how it recognizes the beta-phosphate of thiamine pyrophosphate. In the pyrithiamine complex, the pyrophosphate binding site is largely unstructured. These results show how the riboswitch can bind to various metabolites, and why the thi-box preferentially binds thiamine pyrophosphate.

Crystallography, X-Ray↗

Enzymic formation of thiamine pyrophosphate in plants.

Evidence was presented by paper chromatographic analysis on the occurrence of an enzyme capable of catalyzing a pyrophosphate transfer from ATP to thiamine in green leaves of various plants. The exclusive localization of the enzyme activity in the 105,000 X g supernatant (in a soluble form) was demonstrated by differential centrifugation of a cell homogentae in 0.25 M sucrose. The enzyme was purified by column chromatography with DEAE-cellulose and by gel filtration with Sephadex G-150. The partially pruified preparation, while contaminated with detectable activity of acid phosphatase, lost the ability of utilizing thiamine monophosphate as the substrate in place of thiamine. These findings lead to the conclusion that thiamine pyrophosphate is formed in green leaves of plants through a direct pyrophosphorylation of thiamine in the presence of ATP and Mg.

Acid Phosphatase↗

Thiamine pyrophosphate effect and erythrocyte transketolase activity during severe alcohol withdrawal syndrome.

The thiamine pyrophosphate (TPP) effect and erythrocyte transketolase activity (ETKA) in a group of 28 patients admitted to a psychiatric emergency ward because of severe alcohol withdrawal syndrome were compared with the TPP effect and ETKA in a control group of 20 healthy nonalcoholic volunteers. The patients were treated with 300 mg thiamine 3 times daily as intramuscular injections, and the TPP effect and ETKA were measured after 1 and 4 days of treatment. No difference was found between the patient group and the control group with regard to the TPP effect and ETKA and no decline in the TPP effect was found in the patient group after 4 days of intensive treatment with thiamine. ETKA increased with intensive thiamine treatment, which suggests that ETKA is a sensitive indicator of thiamine deficiency. Serum magnesium, which is a cofactor for thiamine pyrophosphate, decreased significantly with the disappearance of alcohol from the blood in patients with high initial blood alcohol levels, but this shift did not interfere with biological thiamine activity.

Adult↗

thiBPQ encodes an ABC transporter required for transport of thiamine and thiamine pyrophosphate in Salmonella typhimurium.

In Salmonella typhimurium, thiamine pyrophosphate (TPP) is a required cofactor for several enzymes in central metabolism. Herein we identify a new thi operon, thiBPQ (designated sfuABC in Escherichia coli), required for the transport of thiamine and TPP into the cell. Insertions in the operon result in strains that are phenotypically and biochemically defective in thiamine and TPP transport. Data presented herein show that this operon is transcriptionally repressed in the presence of exogenous thiamine, with TPP the likely regulatory molecule. This work represents the first identification of thiamine transport genes in bacteria and demonstrates the function of a proposed ABC transporter in E. coli.

ATP-Binding Cassette Transporters↗

Conformation of complexes of thiamin pyrophosphate with divalent cations as studied by nuclear magnetic resonance spectroscopy.

The binding of Ni-2+ and Mn-2+ to thiamin phosphate and thiamin pyrophosphate (thiamin-PP) has been compared with the binding of these ions to oxythiamin phosphate and oxythiamin pyrophosphate, analogues of thiamin in which the C-4 amino group has been replaced by an -OH group. The replacement of the NH2 group results in reduced basicity of N-1 of the pyrimidine ring of oxythiamine derivatives. The effects of pD, ligand concentration, and temperature on the binding of metal ions to N-1 have been studied by observing the metal ion-induced shifting and broadening of the C-6-H signal of these compounds. The results indicate the following: (a) the metal ion is held near N-1, resulting in a "folded" conformation, because of a favorable bonding interaction between N-1 and the metal ion rather than for general conformational reasons alone; and (b) the amount of "folded" conformation present in the different pyrophosphate complexes at neutral pH follows the order: Ni-2+-thiamin-PP greater than Mn-2+-thiamin-PP greater than Mn-2+-oxythiamin-PP and Ni-2+-oxythiamin-PP It is concluded that the strength of the metal ion-pyrimidine interaction in the "folded" conformation depends strongly both on the coordination affinity of the metal ion and on the basicity of N-1. Since the interaction of the phosphate-bound metal ion with the pyrimidine ring in the Mg-2+-thiamin-PP complex is probably weaker than the corresponding interaction in the Mn-2+-thiamin-PP complex, these results predict that the Mg-2+-thiamin-PP complex in solution, at neutral pH, exists predominantly in an "unfolded" conformation.

Ligands↗

Pathway of thiamine pyrophosphate synthesis in Micrococcus denitrificans.

The pathway of thiamine pyrophosphate (TPP) biosynthesis, which is formed either from exogeneously added thiamine or from the pyrimidine and thiazole moieties of thiamine, in Micrococcus denitrificans was investigated. The following indirect evidence shows that thiamine pyrophosphokinase (EC 2.7.6.2) catalyzes the synthesis of TPP from thiamine: (i) [35S]thiamine incubated with cells of this microorganism was detected in the form of [35S]thiamine; (ii) thiamine gave a much faster rate of TPP synthesis than thiamine monophosphate (TMP) when determined with the extracts; and (iii) a partially purified preparation of the extracts can use thiamine, but not TMP, as the substrate. The activities of the four enzymes involved in TMP synthesis from pyrimidine and thiazole moieties of thiamine were detected in the extracts of M. denitrificans. The extracts contained a high activity of the phosphatase, probably specific for TMP. After M. denitrificans cells were grown on a minimal medium containing 3 mM adenosine, which causes derepression of de novo thiamine biosynthesis in Escherichia coli, the activities of the four enzymes involved with TMP synthesis, the TMP phosphatase, and the thiamine pyrophosphokinase were enhanced two- to threefold. These results indicate that TPP is synthesized directly from thiamine without forming TMP as an intermediate and that de novo synthesis of TPP from the pyrimidine and thiazole moieties involves the formation of TMP, followed by hydrolysis to thiamine, which is then converted to TPP directly. Thus, the pathway of TPP synthesis from TMP synthesized de novo in M. denitrificans is different from that found in E. coli, in which TMP synthesized de novo is converted directly to TPP without producing thiamine.

Adenosine↗

Regulation of malate oxidation in isolated mung bean mitochondria: I. Effects of oxaloacetate, pyruvate, and thiamine pyrophosphate.

In order to investigate the relationship between malate oxidation and subsequent cycle reactions, the effects of oxaloacetate, pyruvate, and thiamine pyrophosphate on malate oxidation in mung bean (Phaseolus aureus var. Jumbo) hypocotyl mitochondria were quantitatively examined. Malate oxidation was optimally stimulated by addition of pyruvate and thiamine pyrophosphate, whose addition lowered the apparent Km for malate from 5 mm to 0.1 mm. Intermediate analysis showed that the stimulatory effect was correlated with removal of oxaloacetate to citrate. Oxaloacetate added alone was shown not to be metabolized until addition of pyruvate and thiamine pyrophosphate; then oxaloacetate was converted in part to pyruvate and also to citrate. These results establish that malate oxidation in mung bean mitochondria is subject to control by oxaloacetate levels, which are primarily determined by the resultant of the activities of malate dehydrogenase, citrate synthase, and pyruvate dehydrogenase.

Journal Article↗

[Free and bound thiamine pyrophosphate level in rat liver mitochondria in various saturation of the body with thiamine].

Content of tree and bound thiamine pyrophosphate (TPP) was measured by means of gel filtration and equilibrium dialysis procedures in mitochondria of normal rats, the rats under conditions of alimentary B1 avitaminosis and loading with thiamine. The content of protein-bound TPP was stable and equal to 20% of its total level in the mitochondria of control rats and in the rats loaded with thiamine. The content of free form of TPP was decreased in B1 avitaminosis; a severe form of the avitaminosis was accompanied by a decrease in content of the bound form. Concentration of the free form of TPP did not increase if the organism of the rats was loaded with thiamine. These data suggest existence of specific systems controlling the vitamin uptake in mitochondria. The active transport of thiamine across the mitochondrial membranes is considered as the most important process. Administration of the high doses of the vitamin led only to an increase in the non-coenzymatic form of the vitamin, indicating the absence of thiamine pyrophosphokinase in rat liver mitochondria. A possible mechanism of TPP transport in mitochondria is discussed.

Animals↗

Thiamine pyrophosphate biosynthesis and transport in the nematode Caenorhabditis elegans.

Thiamine (vitamin B1) is required in the diet of animals, and thiamine deficiency leads to diseases such as beri-beri and the Wernicke-Korsakoff syndrome. Dietary thiamine (vitamin B1) consists mainly of thiamine pyrophosphate (TPP), which is transformed into thiamine by gastrointestinal phosphatases before absorption. It is believed that TPP itself cannot be transported across plasma membranes in significant amounts. We have identified a partial loss-of-function mutation in the Caenorhabditis elegans gene (tpk-1) that encodes thiamine pyrophosphokinase, which forms TPP from thiamine at the expense of ATP inside cells. The mutation slows physiological rhythms and the phenotype it produces can be rescued by TPP but not thiamine supplementation. tpk-1 functions cell nonautonomously, as the expression of wild-type tpk-1 in one tissue can rescue the function of other tissues that express only mutant tpk-1. These observations indicate that, in contrast to expectation from previous evidence, TPP can be transported across cell membranes. We also find that thiamine supplementation partially rescues the phenotype of partial loss-of-function mutants of the Na/K ATPase, providing genetic evidence that thiamine absorption, and/or redistribution from the absorbing cells, requires the full activity of this enzyme.

Adenosine Triphosphate↗