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1.
Int J Mol Sci ; 23(2)2022 Jan 14.
Article in English | MEDLINE | ID: mdl-35055091

ABSTRACT

Enzymatic oxidations of thiophenes, including thiophene-containing drugs, are important for biodesulfurization of crude oil and drug metabolism of mono- and poly-cyclic thiophenes. Thiophene oxidative dearomatization pathways involve reactive metabolites, whose detection is important in the pharmaceutical industry, and are catalyzed by monooxygenase (sulfoxidation, epoxidation) and dioxygenase (sulfoxidation, dihydroxylation) enzymes. Sulfoxide and epoxide metabolites of thiophene substrates are often unstable, and, while cis-dihydrodiol metabolites are more stable, significant challenges are presented by both types of metabolite. Prediction of the structure, relative and absolute configuration, and enantiopurity of chiral metabolites obtained from thiophene enzymatic oxidation depends on the substrate, type of oxygenase selected, and molecular docking results. The racemization and dimerization of sulfoxides, cis/trans epimerization of dihydrodiol metabolites, and aromatization of epoxides are all factors associated with the mono- and di-oxygenase-catalyzed metabolism of thiophenes and thiophene-containing drugs and their applications in chemoenzymatic synthesis and medicine.


Subject(s)
Dioxygenases/metabolism , Mixed Function Oxygenases/metabolism , Oxidation-Reduction , Thiophenes/metabolism , Biotransformation , Catalysis , Cytochrome P-450 Enzyme System/metabolism , Inactivation, Metabolic , Metabolic Networks and Pathways , Models, Molecular , Molecular Conformation , Molecular Structure , Oxidative Stress , Protein Binding , Structure-Activity Relationship , Sulfoxides/chemistry , Sulfoxides/metabolism , Thiophenes/chemistry
2.
Front Bioeng Biotechnol ; 8: 619175, 2020.
Article in English | MEDLINE | ID: mdl-33644006

ABSTRACT

Molecular docking studies of quinoline and 2-chloroquinoline substrates at the active site of toluene dioxygenase (TDO), were conducted using Autodock Vina, to identify novel edge-to-face interactions and to rationalize the observed stereoselective cis-dihydroxylation of carbocyclic rings and formation of isolable cis-dihydrodiol metabolites. These in silico docking results of quinoline and pyridine substrates, with TDO, also provided support for the postulated cis-dihydroxylation of electron-deficient pyridyl rings, to give transient cis-dihydrodiol intermediates and the derived hydroxyquinolines. 2-Chloroquinoline cis-dihydrodiol metabolites were used as precursors in the chemoenzymatic synthesis of enantiopure arene oxide and arene dioxide derivatives of quinoline, in the context of its possible mammalian metabolism and carcinogenicity.

3.
J Org Chem ; 84(23): 15165-15172, 2019 12 06.
Article in English | MEDLINE | ID: mdl-31692354

ABSTRACT

cis-Dihydrodiols, derived from monocyclic aromatic compounds, are valuable chiral pool intermediates for the synthesis of cyclic natural products. A drawback of this approach, to the synthesis of polycyclic secondary metabolites, is that additional rings must be annulated. To date, relatively few chiral natural products have been synthesized from polycyclic arene cis-dihydrodiols. Fungal metabolites, (-)-ribisins A and B, have now been obtained by functional group manipulation of a tricyclic arene metabolite, obtained from toluene dioxygenase-catalyzed regioselective and stereoselective cis-dihydroxylations of dibenzo[b,d]furan. The synthetic sequences were marginally shorter than the alternative routes, using monocyclic arene cis-dihydrodiols, and required no carbon-carbon bond-forming reactions.


Subject(s)
Catechols/chemistry , Furans/chemistry , Catechols/chemical synthesis , Molecular Conformation , Stereoisomerism
4.
Chirality ; 30(1): 5-18, 2018 Jan.
Article in English | MEDLINE | ID: mdl-29024058

ABSTRACT

The relative merits of the methods employed to determine enantiomeric excess (ee) values and absolute configurations of chiral arene and alkene cis-1,2-diol metabolites, including boronate formation, using racemic or enantiopure (+) and (-)-2-(1-methoxyethyl)phenylboronic acid (MEPBA), are discussed. Further applications of: 1) MEPBA derived boronates of chiral mono- and poly-cyclic arene cis-dihydrodiol, cyclohex-2-en-1-one cis-diol, heteroarene cis/trans-2,3-diol, and catechol metabolites in estimating their ee values, and 2) new chiral phenylboronic acids, 2-[1-methoxy-2,2-dimethylpropyl]phenyl boronic acid (MDPBA) and 2-[1-methoxy-1-phenylmethyl]phenyl boronic acid (MPPBA) and their advantages over MEPBA, as reagents for stereochemical analysis of arene and alkene cis-diol metabolites, are presented.

5.
Org Biomol Chem ; 14(9): 2651-64, 2016 Mar 07.
Article in English | MEDLINE | ID: mdl-26907786

ABSTRACT

Enantiopure ß-hydroxy sulfoxides and catechol sulfoxides were obtained, by chemoenzymatic synthesis, involving dioxygenase-catalysed benzylic hydroxylation or arene cis-dihydroxylation and cis-diol dehydrogenase-catalysed dehydrogenation. Absolute configurations of chiral hydroxy sulfoxides were determined by X-ray crystallography, ECD spectroscopy and stereochemical correlation. The application of a new range of ß-hydroxy sulfoxides as chiral ligands was examined.


Subject(s)
Dioxygenases/metabolism , Sulfoxides/chemistry , Sulfoxides/metabolism , Biocatalysis , Crystallography, X-Ray , Hydroxylation , Ligands , Models, Molecular , Molecular Structure , Sulfoxides/chemical synthesis
6.
J Org Chem ; 80(7): 3429-39, 2015 Apr 03.
Article in English | MEDLINE | ID: mdl-25756661

ABSTRACT

Using toluene dioxygenase as biocatalyst, enantiopure cis-dihydrodiol and cis-tetrahydrodiol metabolites, isolated as their ketone tautomers, were obtained from meta and ortho methoxyphenols. Although these isomeric phenol substrates are structurally similar, the major bioproducts from each of these biotransformations were found at different oxidation levels. The relatively stable cyclohexenone cis-diol metabolite from meta methoxyphenol was isolated, while the corresponding metabolite from ortho methoxyphenol was rapidly bioreduced to a cyclohexanone cis-diol. The chemistry of the 3-methoxycyclohexenone cis-diol product was investigated and elimination, aromatization, hydrogenation, regioselective O-exchange, Stork-Danheiser transposition and O-methylation reactions were observed. An offshoot of this technology provided a two-step chemoenzymatic synthesis, from meta methoxyphenol, of a recently reported chiral fungal metabolite; this synthesis also established the previously unassigned absolute configuration.


Subject(s)
Cyclohexanones/chemistry , Oxygenases/chemistry , Phenols/chemistry , Biocatalysis , Biotransformation , Crystallography, X-Ray , Ketones/chemistry , Models, Molecular , Molecular Structure , Naphthalenes/chemistry , Oxidation-Reduction , Stereoisomerism
7.
Org Biomol Chem ; 12(13): 2128-36, 2014 Apr 07.
Article in English | MEDLINE | ID: mdl-24569926

ABSTRACT

Monocyclic allylic cis-1,2-diols reacted with sulfuryl chloride at 0 °C in a regio- and stereo-selective manner to give 2-chloro-1-sulfochloridates, which were hydrolysed to yield the corresponding trans-1,2-chlorohydrins. At -78 °C, with very slow addition of sulfuryl chloride, cyclic sulfates were formed in good yields, proved to be very reactive with nucleophiles and rapidly decomposed on attempted storage. Reaction of a cyclic sulfate with sodium azide yielded a trans-azidohydrin without evidence of allylic rearrangement occurring. An enantiopure bicyclic cis-1,2-diol reacted with sulfuryl chloride to give, exclusively, a trans-1,2-dichloride enantiomer with retention of configuration at the benzylic centre and inversion at the non-benzylic centre; a mechanism is presented to rationalise the observation.


Subject(s)
Glycols/chemistry , Sulfinic Acids/chemistry , Sulfonic Acids/chemistry , Crystallography, X-Ray , Models, Molecular , Molecular Conformation
8.
Org Biomol Chem ; 11(18): 3020-9, 2013 May 14.
Article in English | MEDLINE | ID: mdl-23532167

ABSTRACT

Enantiopure cis-dihydrodiol bacterial metabolites of substituted benzene substrates were used as precursors, in a chemoenzymatic synthesis of the corresponding benzene oxides and of a substituted oxepine, via dihydrobenzene oxide intermediates. A rapid total racemization of the substituted benzene 2,3-oxides was found to have occurred, via their oxepine valence tautomers, in accord with predictions and theoretical calculations. Reduction of a substituted arene oxide to yield a racemic arene hydrate was observed. Arene hydrates have also been synthesised, in enantiopure form, from the corresponding dihydroarene oxide or trans-bromoacetate precursors. Biotransformation of one arene hydrate enantiomer resulted in a toluene-dioxygenase catalysed cis-dihydroxylation to yield a benzene cis-triol metabolite.


Subject(s)
Benzene/chemistry , Oxides/chemistry , Water/chemistry , Catalysis , Molecular Structure , Oxides/chemical synthesis , Stereoisomerism
9.
Appl Microbiol Biotechnol ; 97(11): 4849-58, 2013 Jun.
Article in English | MEDLINE | ID: mdl-22890778

ABSTRACT

Nine different sulfur-containing compounds were biotransformed to the corresponding sulfoxides by Escherichia coli Bl21(DE3) cells expressing styrene monooxygenase (SMO) from Pseudomonas putida CA-3. Thioanisole was consumed at 83.3 µmoles min(-1) g cell dry weight(-1) resulting mainly in the formation of R-thioanisole sulfoxide with an enantiomeric excess (ee) value of 45 %. The rate of 2-methyl-, 2-chloro- and 2-bromo-thioanisole consumption was 2-fold lower than that of thioanisole. Surprisingly, the 2-methylthioanisole sulfoxide product had the opposite (S) configuration to that of the other 2-substituted thioanisole derivatives and had a higher ee value (84 %). The rate of oxidation of 4-substituted thioanisoles was higher than the corresponding 2-substituted substrates but the ee values of the products were consistently lower (10-23 %). The rate of benzo[b]thiophene and 2-methylbenzo[b]thiophene sulfoxidation was approximately 10-fold lower than that of thioanisole. The ee value of the benzo[b]thiophene sulfoxide could not be determined as the product racemized rapidly. E. coli cells expressing an engineered SMO (SMOeng R3-11) oxidised 2-substituted thioanisoles between 1.8- and 2.8-fold faster compared to cells expressing the wild-type enzyme. SMOeng R3-11 oxidised benzo[b]thiophene and 2-methylbenzo[b]thiophene 10.1 and 5.6 times faster that the wild-type enzyme. The stereospecificity of the reaction catalysed by SMOeng was unchanged from that of the wild type. Using the X-ray crystal structure of the P. putida S12 SMO, it was evident that the entrance of substrates into the SMO active site is limited by the binding pocket bottleneck formed by the side chains of Val-211 and Asn-46 carboxyamide group.


Subject(s)
Escherichia coli/metabolism , Metabolic Engineering/methods , Oxygenases/metabolism , Pseudomonas putida/enzymology , Sulfides/metabolism , Thiophenes/metabolism , Biotransformation , Escherichia coli/genetics , Models, Molecular , Oxidation-Reduction , Oxygenases/genetics , Protein Conformation , Pseudomonas putida/genetics , Recombinant Proteins/genetics , Recombinant Proteins/metabolism
10.
Org Biomol Chem ; 10(36): 7292-304, 2012 Sep 28.
Article in English | MEDLINE | ID: mdl-22878622

ABSTRACT

Enzymatic cis-dihydroxylation of benzo[b]thiophene, benzo[b]furan and several methyl substituted derivatives was found to occur in both the carbocyclic and heterocyclic rings. Relative and absolute configurations and enantiopurities of the resulting dihydrodiols were determined. Hydrogenation of the alkene bond in carbocyclic cis-dihydrodiols and ring-opening epimerization/reduction reactions of heterocyclic cis/trans-dihydrodiols were also studied. The relatively stable heterocyclic dihydrodiols of benzo[b]thiophene and benzo[b]furan showed a strong preference for the trans configuration in aqueous solutions. The 2,3-dihydrodiol metabolite of benzo[b]thiophene was utilized as a precursor in the chemoenzymatic synthesis of the unstable arene oxide, benzo[b]thiophene 2,3-oxide.


Subject(s)
Benzofurans/metabolism , Biocatalysis , Oxygenases/metabolism , Thiophenes/metabolism , Benzofurans/chemistry , Crystallography, X-Ray , Hydroxylation , Models, Molecular , Molecular Structure , Stereoisomerism , Thiophenes/chemistry
11.
J Am Chem Soc ; 134(34): 14056-69, 2012 Aug 29.
Article in English | MEDLINE | ID: mdl-22830996

ABSTRACT

Evidence that a 1,2-dihydroxycyclohexadienide anion is stabilized by aromatic "negative hyperconjugation" is described. It complements an earlier inference of "positive" hyperconjugative aromaticity for the cyclohexadienyl cation. The anion is a reactive intermediate in the dehydration of benzene cis-1,2-dihydrodiol to phenol. Rate constants for 3-substituted benzene cis-dihydrodiols are correlated by σ(-) values with ρ = 3.2. Solvent isotope effects for the reactions are k(H(2)O)/k(D(2)O) = 1.2-1.8. These measurements are consistent with reaction via a carbanion intermediate or a concerted reaction with a "carbanion-like" transition state. These and other experimental results confirm that the reaction proceeds by a stepwise mechanism, with a change in rate-determining step from proton transfer to the loss of hydroxide ion from the intermediate. Hydrogen isotope exchange accompanying dehydration of the parent benzene cis-1,2-dihydrodiol was not found, and thus, the proton transfer step is subject to internal return. A rate constant of ~10(11) s(-1), corresponding to rotational relaxation of the aqueous solvent, is assigned to loss of hydroxide ion from the intermediate. The rate constant for internal return therefore falls in the range 10(11)-10(12) s(-1). From these limiting values and the measured rate constant for hydroxide-catalyzed dehydration, a pK(a) of 30.8 ± 0.5 was determined for formation of the anion. Although loss of hydroxide ion is hugely exothermic, a concerted reaction is not enforced by the instability of the intermediate. Stabilization by negative hyperconjugation is proposed for 1,2-dihydroxycyclohexadienide and similar anions, and this proposal is supported by additional experimental evidence and by computational results, including evidence for a diatropic ("aromatic") ring current in 3,3-difluorocyclohexadienyl anion.


Subject(s)
Anions/chemistry , Benzene/chemistry , Cyclohexenes/chemistry , Catalysis , Kinetics , Phenols/chemistry , Water/chemistry
12.
Org Biomol Chem ; 10(30): 6217-29, 2012 Aug 14.
Article in English | MEDLINE | ID: mdl-22426838

ABSTRACT

Biotransformation of 3-substituted and 2,5-disubstituted phenols, using whole cells of P. putida UV4, yielded cyclohexenone cis-diols as single enantiomers; their structures and absolute configurations have been determined by NMR and ECD spectroscopy, X-ray crystallography, and stereochemical correlation involving a four step chemoenzymatic synthesis from the corresponding cis-dihydrodiol metabolites. An active site model has been proposed, to account for the formation of enantiopure cyclohexenone cis-diols with opposite absolute configurations.


Subject(s)
Cyclohexenes/chemistry , Glycols/chemical synthesis , Glycols/metabolism , Phenol/metabolism , Pseudomonas putida/metabolism , Biocatalysis , Biotransformation , Catalytic Domain , Chemistry Techniques, Synthetic , Crystallography, X-Ray , Glycols/chemistry , Hydroxylation , Oxygenases/chemistry , Oxygenases/metabolism , Stereoisomerism
13.
Org Biomol Chem ; 10(14): 2774-9, 2012 Apr 14.
Article in English | MEDLINE | ID: mdl-22367429

ABSTRACT

The cis-dihydrocatechol, derived from enzymatic cis-dihydroxylation of bromobenzene using the microorganism Pseudomonas putida UV4, was converted into (-)-epibatidine in eleven steps with complete stereocontrol. In addition, an unprecedented palladium-catalysed disproportionation reaction gave the (+)-enantiomer of an advanced key intermediate employed in a previous synthesis of epibatidine.


Subject(s)
Bridged Bicyclo Compounds, Heterocyclic/chemical synthesis , Pseudomonas putida/enzymology , Pyridines/chemical synthesis , Bridged Bicyclo Compounds, Heterocyclic/metabolism , Catalysis , Molecular Structure , Palladium/chemistry , Pyridines/metabolism , Stereoisomerism
14.
Org Biomol Chem ; 10(4): 782-90, 2012 Jan 28.
Article in English | MEDLINE | ID: mdl-22134441

ABSTRACT

Asymmetric heteroatom oxidation of benzo[b]thiophenes to yield the corresponding sulfoxides was catalysed by toluene dioxygenase (TDO), naphthalene dioxygenase (NDO) and styrene monooxygenase (SMO) enzymes present in P. putida mutant and E. coli recombinant whole cells. TDO-catalysed oxidation yielded the relatively unstable benzo[b]thiophene sulfoxide; its dimerization, followed by dehydrogenation, resulted in the isolation of stable tetracyclic sulfoxides as minor products with cis-dihydrodiols being the dominant metabolites. SMO mainly catalysed the formation of enantioenriched benzo[b]thiophene sulfoxide and 2-methyl benzo[b]thiophene sulfoxides which racemized at ambient temperature. The barriers to pyramidal sulfur inversion of 2- and 3-methyl benzo[b]thiophene sulfoxide metabolites, obtained using TDO and NDO as biocatalysts, were found to be ca.: 25-27 kcal mol(-1). The absolute configurations of the benzo[b]thiophene sulfoxides were determined by ECD spectroscopy, X-ray crystallography and stereochemical correlation. A site-directed mutant E. coli strain containing an engineered form of NDO, was found to change the regioselectivity toward preferential oxidation of the thiophene ring rather than the benzene ring.


Subject(s)
Dioxygenases/metabolism , Escherichia coli/enzymology , Multienzyme Complexes/metabolism , Oxygenases/metabolism , Pseudomonas putida/enzymology , Sulfoxides/metabolism , Thiophenes/metabolism , Crystallography, X-Ray , Oxidation-Reduction , Sulfoxides/chemistry , Thiophenes/chemistry
15.
J Org Chem ; 76(22): 9338-43, 2011 Nov 18.
Article in English | MEDLINE | ID: mdl-21992537

ABSTRACT

Acid-catalyzed dehydrations of substituted naphthalene-cis-1,2-dihydrodiols occur with loss of the 1- or 2-OH group to form 2- and 1-naphthols, respectively. Effects of substituents MeO, Me, H, F, Br, I, and CN at 3-, 6-, and 7-positions of the naphthalene ring are consistent with rate-determining formation of ß-hydroxynaphthalenium ion (carbocation) intermediates. For reaction of the 1-hydroxyl group the 3-substituents are correlated by the Yukawa-Tsuno relationship with ρ = -4.7 and r = 0.25 or by σ(p) constants with ρ = -4.25; for reaction of the 2-hydroxyl group the 3-substituents are correlated by σ(m) constants with ρ = -8.1. The correlations for the 1-hydroxyl imply a surprisingly weak resonance interaction of +M substituents (MeO, Me) with a carbocation reaction center but are consistent with the corresponding correlation for acid-catalyzed dehydration of 3-substituted benzene-cis-1,2-dihydrodiols for which ρ = -6.9 and r = 0.43. Substituents at the 6- and 7-positions of the naphthalene rings by contrast are correlated by σ(+) with ρ = -3.2 for reaction of the 1-hydroxyl group and ρ = -2.7 for reaction of the 2-hydroxyl group. The unimpaired resonance implied by these substituent effects appears to be inconsistent with a previous explanation of the weak resonance of the 3-substituents in terms of imbalance of charge development and/or nonplanarity of the benzenium ring in the transition state. An alternative possibility is that the adjacent hydroxyl group interferes sterically with conjugation of +M substituents. "Hyperaromaticity" of the arenium ion intermediates does not appear to be a factor influencing this behavior.

16.
Org Biomol Chem ; 9(5): 1479-90, 2011 Mar 07.
Article in English | MEDLINE | ID: mdl-21221457

ABSTRACT

cis-Dihydroxylation of meta-substituted phenol (m-phenol) substrates, to yield the corresponding cyclohexenone cis-diol metabolites, was catalysed by arene dioxygenases present in mutant and recombinant bacterial strains. The presence of cyclohexenone cis-diol metabolites and several of their cyclohexene and cyclohexane cis-triol derivatives was detected by LC-TOFMS analysis and confirmed by NMR spectroscopy. Structural and stereochemical analyses of chiral ketodiol bioproducts, was carried out using NMR and CD spectroscopy and stereochemical correlation methods. The formation of enantiopure cyclohexenone cis-diol metabolites is discussed in the context of postulated binding interactions of the m-phenol substrates at the active site of toluene dioxygenase (TDO).


Subject(s)
Biocatalysis , Cyclohexanols/chemistry , Cyclohexanones/chemistry , Dioxygenases/metabolism , Phenols/chemistry , Cyclohexanols/metabolism , Cyclohexanones/metabolism , Hydroxylation , Models, Molecular , Molecular Structure , Oxidation-Reduction , Phenols/metabolism , Stereoisomerism , Substrate Specificity
17.
Org Lett ; 12(23): 5550-3, 2010 Dec 03.
Article in English | MEDLINE | ID: mdl-21053960

ABSTRACT

Benzene-cis- and trans-1,2-dihydrodiols undergo acid-catalyzed dehydration at remarkably different rates: k(cis)/k(trans) = 4500. This is explained by formation of a ß-hydroxycarbocation intermediate in different initial conformations, one of which is stabilized by hyperconjugation amplified by an aromatic no-bond resonance structure (HOC(6)H(6)(+) ↔ HOC(6)H(5) H(+)). MP2 calculations and an unfavorable effect of benzoannelation on benzenium ion stability, implied by pK(R) measurements of -2.3, -8.0, and -11.9 for benzenium, 1-naphthalenium, and 9-phenanthrenium ions, respectively, support the explanation.


Subject(s)
Cyclohexenes/chemistry , Bromine Compounds/chemistry , Ions/chemistry , Molecular Structure , Water/chemistry
18.
Org Biomol Chem ; 8(24): 5635-45, 2010 Dec 21.
Article in English | MEDLINE | ID: mdl-20941423

ABSTRACT

The absolute configurations of 2-cyclohexenone cis-diol metabolites resulting from the biotransformation of the corresponding phenols have been determined by comparison of their experimental and calculated circular dichroism spectra (TDDFT at the PCM/B2LYP/Aug-cc-pVTZ level), optical rotations (calculated at the PCM/B3LYP/Aug-cc-pVTZ level) and by stereochemical correlation. It is found that circular dichroism spectra and optical rotations of 2-cyclohexenone derivatives are strongly dependent on the ring conformation (M or P sofa S(5) or half-chair), enone non-planarity and the nature and positions of the hydroxy and alkyl substituents. The effect of non-planarity of the enone chromophore, including the distortion of the C=C bond, is determined for the model structures by TDDFT calculations at the PCM/B2LYP/6-311++G(2d,2p) level. Non-planarity of the C=C bond in the enone chromophore is commonly encountered in 2-cyclohexenone derivatives and it is a source of significant rotatory strength contribution to the electronic circular dichroism spectra. It is shown that the two lowest-energy transitions in acrolein and 2-cyclohexenone and its derivatives are n(C=O)-π(C=O)* and π(C=C)-π(C=O)*, as expected, while the shorter-wavelength (below 200 nm) transitions are of more complex nature. In 2-cyclohexenone and its alkyl derivatives it is predominantly a mixture of π(C=C)-π(C=C)* and π(C=C)-σ* transitions, whereas the presence of hydroxy substituent results in a dominant contribution due to the n(OH)-π(C=O)* transition. A generalized model for correlation of the CD spectra of 2-cyclohexenones with their structures is presented.


Subject(s)
Cyclohexanones/chemistry , Phenol/chemistry , Circular Dichroism , Molecular Conformation , Stereoisomerism
19.
Org Lett ; 12(10): 2206-9, 2010 May 21.
Article in English | MEDLINE | ID: mdl-20411952

ABSTRACT

cis-Dihydrocatechols, derived from biological cis-dihydroxylation of methyl benzoate, iodobenzene and benzonitrile, using the microorganism Pseudomonas putida UV4, were converted into pericosines A, C, and B, respectively. This approach constitutes the shortest syntheses, to date, of these important natural products with densely packed functionalities.


Subject(s)
Naphthalenes/chemistry , Shikimic Acid/analogs & derivatives , Molecular Conformation , Shikimic Acid/chemical synthesis , Shikimic Acid/chemistry , Stereoisomerism
20.
Org Biomol Chem ; 8(6): 1415-23, 2010 Mar 21.
Article in English | MEDLINE | ID: mdl-20204216

ABSTRACT

The cis-dihydrodiol metabolite from methyl benzoate has been used as a synthetic precursor of carba-beta-L-galactopyranose, carba-beta-L-talopyranose and carba-alpha-L-talopyranose. The structures and absolute configurations of these carbasugars were determined by a combination of NMR spectroscopy, stereochemical correlation and X-ray crystallography.


Subject(s)
Benzoates/chemistry , Benzoates/metabolism , Carbasugars/chemistry , Carbasugars/chemical synthesis , Oxygenases/metabolism , Biocatalysis , Crystallography, X-Ray , Magnetic Resonance Spectroscopy , Pseudomonas putida/enzymology , Stereoisomerism
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