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Two functional domains of coenzyme A activate catalysis by coenzyme A transferase. Pantetheine and adenosine 3'-phosphate 5'-diphosphate.

Studies of the reactivity of succinyl-CoA:3-keto acid CoA transferase with a small coenzyme A analog, methylmercaptopropionate, have shown that noncovalent interactions between the enzyme and the side chain of CoA are responsible for a rate acceleration of approximately 10(12), which is close to the total rate acceleration brought about by the enzyme (Moore, S. A., and Jencks, W. P. (1982) J. Biol. Chem. 257, 10893-10907). We report here that interaction between the enzyme and the pantetheine moiety of CoA provides the majority of the rate acceleration and destabilization of the enzyme-thiol ester intermediate that is observed with CoA substrates. The role of the adenosine 3'-phosphate 5'-diphosphate moiety of CoA is to provide 6.9 kcal/mol of binding energy in order to pull the pantetheine moiety into the active site. The enzyme-thiol ester intermediate, E-pantetheine, was generated by reaction of pantetheine with the thiol ester of enzyme and methylmercaptopropionate. E-Pantetheine undergoes hydrolysis with khyd = 2 min-1, 140-fold faster than E-CoA, and reacts with acetoacetate with kAcAc = 3 X 10(6) M-1 min-1, only 10-fold slower than E-CoA. However, in the reverse direction acetoacetylpantetheine reacts with CoA transferase (kAcAc-SP = 220 M-1 min-1) 1.6 X 10(6) times slower than acetoacetyl-CoA. The equilibrium constant for the reaction of pantetheine with E-CoA is approximately 8 X 10(-6).

Acetoacetates↗

Pantetheine-linked peptide intermediates in gramicidin S and tyrocidine biosynthesis.

To study the function of pantetheine in gramicidin S and tyrocidine biosynthesis, pepsin digests of the polymerizing enzymes, of which only the heavy ones contain pantetheine, were analyzed. The digests of gramicidin S enzymes charged with either [(14)C]proline or with D-phenylalanyl-[(14)C]proline, were analyzed by thin-layer chromatography; only the dipeptide showed a derivative associated with pantetheine. Similar results were obtained from the heavy tyrocidine enzyme charged with either [(14)C]asparagine alone or with the pentapeptide D-Phe-Pro-Phe-D-Phe-[(14)C]Asn. Several radioactive products appeared on the thin-layer chromatograms of both these digests; association with pantetheine was found only in the case of the pentapeptide. Exposure of the chromatogram from the pentapeptide-labeled digest to performic acid and development in a second direction separated the peptide from pantetheine, indicating that a nascent peptide was originally linked to the cofactor by a thioester bond. The connection of pantetheine only with peptide residues appears to confirm its role in transpeptidation during peptide chain growth.

Asparagine↗

Synthesis of acyl-S-pantetheine by rat liver microsomes.

The synthesis of acyl-S-pantetheine was found to occur in rat liver microsomal preparations. The reaction required ATP and a metal ion as cofactors, a fatty acid and the reduced form of pantetheine for optimal activity. The Km for pantetheine was 0.8 mM, for ATP 0.8 mM, and for oleic acid 0.3 mM. Mg2+ (20mM), Mn2+ (5 mM), Ca2+ (5mM), and Fe2+ (5 mM) produced approximately equal activity when all other conditions were optimal. The characterization of the product and other properties of the enzyme are described. The acyl-S-pantetheine formed does not act as an acyl donor in the acylation of sn-glycerol-3-phosphate, 1,2-diacylglycerol, or lysolecithin.

Animals↗

Isolation of amino acid activating subunit--pantetheine protein complexes: their role in chain elongation in tyrocidine synthesis.

Dissociation of the multienzymes of tyrocidine synthesis by prolonged incubation of crude extracts of Bacillus brevis (Dubos strain, ATCC 8185) has yielded, on Sephadex G-100 chromatography, two fractions of amino acid activating subunits, a larger one of 70,000 daltons and a smaller one of 90,000 daltons; the latter was a complex consisting of the 70,000 dalton subunit and the pantetheine-carrying protein of about 20,000 daltons. When it dissociated, the intermediate enzyme, which activates three amino acids, contained two-thirds of the subunits in the 70,000 dalton and one-third in the 90,000 dalton fraction; the heavy enzyme, which activates six amino acids, contained five-sixths of the subunits in the former fraction and one-sixth in the latter. Both fractions showed ATP-PP(i) exchange with all amino acids that are activated by the respective polyenzymes. With proline as an example, the 70,000 dalton subunit exhibited a single low-affinity binding site, which should correspond to the peripheral thiol acceptor site, whereas the 90,000 dalton subunit showed both a low-affinity binding site and an additional high-affinity site for proline; the high-affinity site is attributed to the pantetheine present on the pantetheine-carrying protein, and suggests that amino acids are translocated from the peripheral SH to the pantetheine-carrying moiety during chain elongation. This was confirmed by the observation that the 90,000 dalton complex, when incubated with the light enzyme in the presence of phenylalanine and proline, produced DPhe-Pro dipeptide that cyclized into DPhe-Pro diketopiperazine, but the 70,000 dalton activating subunit, when similarly incubated, did not. After subunit dissociation, however, no further elongation occurred after the transfer from phenylalanine to proline.

Aminoacylation↗

Effects of pantetheine on cholesteryl ester synthesis in the arterial wall of rats on high cholesterol diet.

Increase of acyl-CoA synthesis was observed when extracts of rat arterial wall were incubated with pantetheine [D-bis-(N-pantothenyl-beta-aminoethyl)-disulfide]. Cholesteryl ester synthesis from palmitate in the arterial wall extract in vitro was higher with arteries from rats on high cholesterol diet than with those from rats on normal diet, but the synthesis was reduced in the arteries of rats on high cholesterol diet with pantetheine. Triglyceride synthesis was higher with arterial wall extracts of rats on high cholesterol diet than with preparations from rats on normal diet and was not reduced with those of rats on high cholesterol diet plus pantetheine. The value of the effects of pantetheine on lipid metabolism in the prevention of atherosclerosis is pointed out.

Acyl Coenzyme A↗

Enzymatic synthesis of S-aminoethyl-L-cysteine from pantetheine.

The recently characterized compound S-aminoethylcysteine ketimine can be synthesized from purified S-aminoethylcysteine by enzymatic systems (transaminases or L-amino acid oxidase) present in mammalian tissues. S-Aminoethylcysteine, which could be considered as the natural precursor of the ketimine, is produced from L-serine and cysteamine by the action of the enzyme cystathionine-beta-synthase. We demonstrate in this paper that pantetheine, a normal cellular component, is an efficient cysteamine donor for the synthesis of S-aminoethylcysteine and of S-aminoethylcysteine ketimine in the place of free cysteamine, and we describe the enzymatic system, composed of partially purified enzymes, for the in vitro synthesis of S-aminoethylcysteine ketimine from pantetheine. This seems to indicate a new biological role for pantetheine.

Amidohydrolases↗

Measurement of distance between the active serine of the thioesterase domain and the pantetheine thiol of fatty acid synthase by fluorescence resonance energy transfer.

Fatty acid synthase from the uropygial gland was inactivated by treatment with pyrenebutyl methanephosphonofluoridate by specific modification of the "active serine" at the thioesterase domain. Treatment of fatty acid synthase with 3-(4-maleimidylphenyl)-7-diethylamino-4-methylcoumarin resulted in the loss of the condensation activity and overall synthase activity. Acetyl-CoA and malenyl-CoA protected the enzyme from inactivation by this reagent suggesting that the pantetheine thiol was modified. In support of this conclusion was the finding that modification of the primer-binding thiol with iodoacetamide prior to the modification with the coumarin derivative resulted in no change in the binding of the coumarin to the enzyme. Furthermore, the presumptive active site peptide isolated after proteolysis released its attached coumarin upon treatment with alkali under beta-elimination reaction conditions. Graphical analysis of the binding data suggested that binding of one coumarin derivative/subunit of the synthase would result in complete loss of the synthase activity. When the synthase was modified with the coumarin and pyrene derivatives, fluorescence resonance energy transfer occurred from the pyrene at the thioesterase site to the coumarin attached to the pantetheine thiol. Dissociation of the enzyme to monomers did not decrease the efficiency of transfer, but limited trypsin treatment, which released the thioesterase domain, abolished the fluorescence resonance energy transfer. These results suggested that the energy transfer occurred between intrasubunit sites. The distance between the pyrene at the thioesterase active site and the coumarin attached to pantetheine thiol on the same subunit of fatty acid synthase was estimated from the efficiency of energy transfer to be 37 A.

Chromatography, High Pressure Liquid↗

Reaction of chloroacetyl-CoA with rabbit fatty acid synthase. A new method to label specifically and quantify pantetheine prosthetic groups.

The substrate analogue chloroacetyl-CoA inhibits fatty acid synthase by reacting with the 'central' or pantetheine thiol and not the 'peripheral' or beta-ketoacylsynthase thiol as previously reported. This was demonstrated by the isolation of [14C]carboxymethylcysteamine after acid hydrolysis of enzyme labelled with chloro[14C]acetyl-CoA, and by the demonstration that more than one of the partial reactions is inhibited. This reagent now represents a simple and convenient tool both for quantification of the pantetheine thiol and for labelling this site for peptide mapping and isolation.

Acetyl Coenzyme A↗

Aminoacylation of coenzyme A and pantetheine by aminoacyl-tRNA synthetases: possible link between noncoded and coded peptide synthesis.

Isoleucyl-tRNA synthetase (IleRS) catalyzes transfer of isoleucine from the enzyme-bound Ile-AMP and Ile-tRNA to the thiol group of coenzyme A, forming a thioester, Ile-S-CoA. Identity of Ile-S-CoA has been confirmed by several enzymatic and chemical tests. The synthesis of Ile-S-CoA, like the synthesis of other isoleucyl thioesters, is strongly shifted toward products. Other aminoacyl-tRNA synthetases, such as MetRS, AspRS, and SerRS also use CoA-SH as an acceptor for their cognate amino acids. Pantetheine also serves as an amino acid acceptor in reactions catalyzed by AspRS, IleRS, and MetRS, forming corresponding aminoacyl-S-pantetheine thioesters. It appears that CoA-SH reacts with activated amino acids by binding to each synthetase at a site, separate from the tRNA and ATP binding sites, that includes the thiol-binding subsite. These and other data support a hypothesis that the present-day aminoacyl-tRNA synthetases have originated from ancestral forms that were involved in noncoded thioester-dependent peptide synthesis, functionally similar to the present-day nonribosomal peptide synthesis by multi-enzyme thiotemplate systems.

Acylation↗

A possible prebiotic synthesis of pantetheine, a precursor to coenzyme A.

The involvement of coenzyme A in many enzyme reactions suggests that it acted in this capacity very early in the development of life on Earth. Particularly relevant in this regard is its role in the activation of amino acids and hydroxy acids in the biosynthesis of some peptide antibiotics--a mechanism of peptide synthesis that forms the basis for the proposal that a thioester world could have preceded the RNA world. The components of coenzyme A have been shown to be probable prebiotic compounds: beta-alanine, pantoyl lactone and cysteamine and possibly adenosine. We show here that the pantetheine moiety of coenzyme A (which also occurs in a number of enzymes) can be synthesized in yields of several per cent by heating pantoyl lactone, beta-alanine and cysteamine at temperatures as low as 40 degrees C. These components are extremely soluble and so would have been preferentially concentrated in evaporating bodies of water, for example on beaches and at lagoon margins. Our results show that amide bonds can be formed at temperatures as low as 40 degrees C, and provide circumstantial support for the suggestion that pantetheine and coenzyme A were important in the earliest metabolic systems.

4-Butyrolactone↗

Purification and properties of a pantetheine-hydrolyzing enzyme from pig kidney.

A microsomal glycoprotein that catalyzes the hydrolysis of pantetheine to pantothenate and cysteamine was solubilized and purified to homogeneity as determined by sodium dodecyl sulfate electrophoresis. The enzyme from pig kidney cortex was solubilized on exposure to butanol and purified by heat treatment, ammonium sulfate fractionation, hydrophobic chromatography, and hydroxyapatite chromatography. The purified enzyme (Mr = 57,000) has a specific activity of 14 mumol of pantothenate produced per min/mg of protein, a value 35 times that previously reported. A method for localizing enzymatic activity on polyacrylamide gels is presented, and enzyme activity, protein, and carbohydrate are shown to migrate identically by electrophoresis on nondenaturing polyacrylamide gels. Amino acid analysis indicated an absorbance index E1%1cm (280 nm) of 11.3, and carbohydrate analysis revealed the presence of galactose, mannose, fucose, glucose, galactosamine, and sialic acid for a total carbohydrate composition of 11.8%. The enzymatic hydrolysis of various pantetheine analogs indicated the enzyme had a high specificity for the pantothenate moiety but a low specificity for the cysteamine portion.

Amino Acids↗

Conformational changes at the active site of pantetheine hydrolase during denaturation by guanidine hydrochloride.

Conformational changes at the active site of pantetheine hydrolase (EC3.5.1.-) during guanidine hydrochloride (GndHCl) denaturation were investigated by UV and circular dichroism spectroscopy and by electron spin resonance spectroscopy, following the spectral behaviour of the nitroxide radicals (N-(1-oxyl-2,2,5,5,-tetramethyl-3-pyrrolidinyl) iodacetamide) covalently linked to the two active site cysteine residues. At low denaturant concentrations (0.2 M) no conformational changes may be observed, whereas the catalytic activity, is strongly affected. The results indicate that the active site of pantetheine hydrolase is labile and unfolds under conditions in which no global tertiary structure modifications can be observed.

Amidohydrolases↗

A bifunctional enzyme complex in coenzyme A biosynthesis: purification of pantetheine phosphate adenylyltransferase and dephospho-CoA kinase.

Pantetheine phosphate adenylyltransferase (EC 2.7.7.3) and dephospho-CoA kinase (EC 2.7.1.24) were purified to near homogeneity from pig liver. The purification steps included the use of Sepharose-linked triazine dyes and affinity elution by CoA. Both activities co-purified at every stage of the 18 000-fold purification. An Mr of 115 000 was obtained by gel filtration on Sephadex G-150, and the final preparation yielded one major band on sodium dodecyl sulphate/polyacrylamide-gel electrophoresis, with a subunit Mr of 57 000. It is concluded that pantetheine phosphate adenylyltransferase and dephospho-CoA kinase exist as a bifunctional dimeric protein, which could be designated CoA synthetase.

Animals↗

Depigmenting effects of calcium D-pantetheine-S-sulfonate on human melanocytes.

The effects of calcium D-pantetheine-S-sulfonate (PaSSO3Ca) on human pigmentation were examined by in vitro assays using two types of human melanocytes: normal adult melanocytes (HNM) and M4Be melanoma cells. The compound, when added to a culture medium at doses indicating no cytotoxicity, causes a visually recognizable, reversible loss of pigment in both types of cells. Determination of melanin content, incorporation of 14C-DOPA into melanins and tyrosinase activities demonstrated that treatment of these cells with PaSSO3Ca resulted in a marked decrease in all three areas. When homogenates of these cells were assayed with lectins, the glycosylation pattern was modified, as tyrosinase activities were reduced in the cells treated with the compound. Immunoprecipitation of tyrosinase and tyrosinase-related protein 1 (Tyrp1 or TRP1) in cells incubated with radioactive glucosamine disclosed that glucosamine uptake by these enzymes was apparently increased, suggesting structural alterations in their sugar moieties. It is also noted that PaSSO3Ca is analogous in its chemical structure to Coenzyme A (CoA), which plays an important role in the intracellular transport of proteins. Based on these findings, it is likely that the compound exerts its depigmenting effects in human pigment cells through the modification of glycosylation of tyrosinase and TRP1, which are key enzymes for melanogenesis.

Blotting, Western↗

Biochemical and clinical study of calcium pantetheine-S-sulfonate.

Calcium pantetheine-S-sulfonate (PaSSO3Ca) is one of the pantothenic acid derivatives. We examined PaSSO3Ca inhibition capacity of tyrosinase activity in vitro. For the safety evaluation when it will be applied to the human skin, we tested PaSSO3Ca creams to the fifty one patients with skin diseases by 48 hours closed patch test method. And clinical evaluation of PaSSO3Ca creams were performed in fifty patients with chloasma by half side method. Results were as follow: 1, PaSSO3Ca was proved to inhibit the tyrosinase activity in vitro. 2, PaSSO3Ca cream was shown to be safe to human skin. 3, 10% PaSSO3Ca cream lightened the skin hyperpigmentation.

Administration, Topical↗

Macrophage activation with pantethine and pantetheine-4'-phosphate.

Adjuvant activities of pantethine (PaSS) and pantetheine-4'-phosphate (PSH-4'-P) were investigated in mice. By the multiple intraperitoneal administration, both PaSS and PSH-4'-P activated the functions of mouse peritoneal adherent cells and splenic natural killer cells. PSH-4'-P was also effective for the activation of natural killer cells by single injection. In in vitro, PaSS induced interleukin-1 (IL-1) secretion at a low concentration but PSH-4'-P did not. Both PaSS and PSH-4'-P could neither induce interleukin-2 (IL-2) secretion, nor could enhance IL-2 secretion by Con A.

Animals↗