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Vol 52, No 8 (2016)

Review

Freons in catalytic olefination reaction. Synthesis of fluorinated compounds from the products of olefination

Balenkova E.S., Shastin A.V., Muzalevskiy V.M., Nenajdenko V.G.

Abstract

Application of freons in catalytic olefination for production of fluorinated alkenes is discussed and also the synthesis of versatile fluorinated compounds on this basis.

Russian Journal of Organic Chemistry. 2016;52(8):1077-1097
pages 1077-1097 views

Article

Unusual reaction of bromoalkyl trifluoromethyl ketones with symmetrically disubstituted ethylenediamines. Theoretic investigation applying methods of density functional and multiparticle perturbation theory МР-2

Gloriozov I.P., Muzalevskiy V.M., Rulev A.Y., Kondrashov E.V., Nenajdenko V.G., Ustynyuk Y.A.

Abstract

Mechanism of a multistage reaction between α-bromotrifluoromethylenones and N,N′-dialkylethylenediamines was examined in detail using quantum chemical methods of density functional (non-empirical functional РВЕ, extended split TZp-basis) and multiparticle perturbation theory МР-2, basis 6-311+G(d,p), in the gas phase approximation, and also including solvents molecules (water and 2,2,2-trifluoroethanol). The specific solvation of transition states owing to the hydrogen bonds formation with solvent molecules is the main factor governing the direction of the reaction. Trifluoroethanol forms a strong H-bond with the carbonyl oxygen atom of the trifluoroacetyl group increasing its electrophilicity. It also solvates the departing bromide anion facilitating the occurrence of the SN2-substitution reaction. An essential but less important factor is the ability of trifluoroethanol to play the role of a nucleophilic partner by forming hydrogen bonds at the expense of the unshared electron pair of the hydroxyl oxygen facilitating the proton abstraction from the nitrogen atom of the diamine attacking the carbon atom in the course of SN2-substitution.

Russian Journal of Organic Chemistry. 2016;52(8):1098-1111
pages 1098-1111 views

Reaction of N-phenyltriflamide with 1,2-dibromoethane and propargyl bromide. Unexpected cleavage of С–С and С–N bonds

Shainyan B.A., Danilevich Y.S.

Abstract

Reaction of N-phenyltriflamide with 1,2-dibromoethane under basic conditions in DMSO unexpectedly results in N-methyl-N-phenyltriflamide and 1,3-diphenylurea. The presumed reaction mechanism includes the formation of unstable intermediate disubstitution product TfN(Ph)CH2CH2N(Ph)Tf that suffers the the С–С bond cleavage resulting in TfN(Me)Ph and N,N′-methanediylbis(N-phenyltriflamide). The latter reacts with K2CO3 releasing two molecules of potassium triflinate and after hydrolysis of diphenylcarbodiimide PhN=C=NPh gives 1,3-diphenylurea. With propargyl bromide, N-phenyltriflamide affords N-propargyl-Nphenyltriflamide in high yield. The bromination of the latter results in a mixture of Z,E-isomers of N-(2,3-dibromoprop-2-en-1-yl)-N-phenyltriflamide which undergo dehydrobromination giving first N-(3-bromopropanedienyl)-N-phenyltriflamide and then the products of the C–N bond cleavage: N-phenyltriflamide and 3,3-dimethoxyprop-1-yne.

Russian Journal of Organic Chemistry. 2016;52(8):1112-1117
pages 1112-1117 views

Chemical transformations of tetracyclo[3.3.1.1.3,7.0.1,3]decane (1,3-dehydroadamantane): I. Reaction of 1,3-dehydroadamantane with carboxylic acids esters

Mokhov V.M., Burmistrov V.V., Butov G.M.

Abstract

Adamantylation of carboxylic acids esters was performed with 1,3-dehydroadamantane for the first time. The reaction proceeds under mild conditions and can be used as a convenient single stage procedure for the synthesis of esters of branched carboxylic acids having an adamantyl group in the α-position to the carbonyl group.

Russian Journal of Organic Chemistry. 2016;52(8):1118-1120
pages 1118-1120 views

Selective hydroxylation of diamantane with 2,3,4,5,6-pentafluoroperbenzoic acid in the presence of molibdenum complexes

Khusnutdinov R.I., Oshnyakova T.M., Khalilov L.M., Baibuldina A.R., Dzhemilev U.M.

Abstract

Oxidation of diamantane with 2,3,4,5,6-pentafluoroperbenzoic acid catalyzed with complexes MoO(O2)·2QOH, MoO(O2)(H2O)2 proceeds selectively affording diamantan-1-ol and diamantan-1-yl 2,3,4,5,6-pentafluorobenzoate.

Russian Journal of Organic Chemistry. 2016;52(8):1121-1125
pages 1121-1125 views

Oligoether derivatives of 1-phenoxyanthraquinone: Synthesis, photochromism, and complex formation with metal cations

Mart’yanov T.P., Klimenko L.S., Ushakov E.N.

Abstract

1-Phenoxyanthraquinone isomeric conjugates with tetraethylene glycol were prepared. Their photochromic properties and complex formation in solutions were quantitatively studied by spectrophotometry, quantum yields of the arylotropic photoisomerism and stability constants of complexes between para–ana-quinoid isomers and metal cations. The photochemical migration of a phenyl group considerably affects the complex stability thus providing the possibility to regard the synthesized compounds as photocontrolled ionophores. The structure of some complexes was investigated by X-ray diffraction (XRD) analysis and quantum-chemical simulation.

Russian Journal of Organic Chemistry. 2016;52(8):1126-1136
pages 1126-1136 views

Synthesis of new sulfur-containing derivatives of furanoallocolchicinoids

Gracheva Y.A., Schmalz H., Svirshchevskaya E.V., Fedorov A.Y.

Abstract

Reaction of hydroxyl-containing heterocyclic colchicinoids with S-nucleophiles led to the formation of furanoallocolchicinoid sulfides in a high yield.

Russian Journal of Organic Chemistry. 2016;52(8):1137-1142
pages 1137-1142 views

Synthesis of 3-amino-8-hydroxy-1,6-dioxo-4-cyano-2,7-diazaspiro[4.4]non-3-en-2-ides ammonium salts

Fedoseev S.V., Ershov O.V., Belikov M.Y., Tafeenko V.A.

Abstract

Reaction of 3-amino-8-hydroxy-1,6-dioxo-2,7-diazaspiro[4.4]non-3-en-4-carbonitriles with amines in 2-propanol at room temperature provided the corresponding ammonium salts of 3-amino-8-hydroxy-1,6-dioxo-4-cyano-2,7-diazaspiro[4.4]non-3-en-2-ides.

Russian Journal of Organic Chemistry. 2016;52(8):1143-1147
pages 1143-1147 views

Alkenyl derivatives of 5-nitro-2-pyridone: Synthesis and halocyclization

Kalita E.V., Kim D.G., Yeltsov O.S., Shtukina T.S.

Abstract

Alkylation of 5-nitro-2-pyridone by alkenyl halides in acetone in the presence of K2СО3 proceeds with generation of a mixture of N- and О-derivatives with N-isomer prevailing. 1-Allyl- and 1-methylallyl-5-nitro-2-pyridone react with halogens with the formation of 2-halomethyl-6-nitro-2,3-dihydrooxazolo[3,2-a]-pyridinium halides. 1-Prenyl-5-nitro-2-pyridone reacts with bromine with the formation of 3-bromine-2,2-dimethyl-7-nitro-3,4-dihydro-2Н-pyrido[2,1-b][1,3]oxazinium bromide, and with iodine giving 2,2-dimethyl-7-nitro-3,4-dihydro-2Н-pyrido[2,1-b][1,3]oxazinium triiodide.

Russian Journal of Organic Chemistry. 2016;52(8):1148-1153
pages 1148-1153 views

Stereodirected reactions of salicilaldehyde derivatives with tert-butyl 3(4)-hydroxy-2(3)-(3-methylbut-2-enyl)- piperidine-1-carboxylates as an efficient preparation procedure of tetrahydropyran derivatives fused with a piperidine ring

Boev V.I., Moskalenko A.I., Belopukhov S.L., Nikonova G.N.

Abstract

Reaction of salicilaldehyde and its derivatives with unsaturated cis-, trans-alcohols of the piperidine series in the presence of methyl orthoformate and p-toluenesulfonic acid led to the formation of a new heterocyclic system connecting four fuzed rings (two tetrahydropyrans, a piperidine, and an aromatic ring), 6,6-dimethyl-6а,7,7а,8(9),10,11,11а,12а-octahydrochromeno[3′,4′:5,6]pyranо[3,2-с(b)]pyridine.

Russian Journal of Organic Chemistry. 2016;52(8):1154-1161
pages 1154-1161 views

Interaction of 1,5,6,8-tetrahydropyrazolo[3,4-е][1,4]diazepine-4,7-diones with some electrophilic reagents

Kemskii S.V., Bol’but A.V., Shishkina S.V., Mel’nik D.A., Vovk M.V.

Abstract

1,5,6,8-Tetrahydropyrazolo[3,4-e][1,4]diazepine-4,7-diones undergo acylation with acetic anhydride and carbamoylation with p-toluensulfonyl isocyanate at the atom N5. Interaction with Vilsmeier- Haack reagent occurs at the atom N8, it is followed with the opening of the diazepine cycle and leads to the formation of 2-(1Н-pyrazol-4-yl)-1,3-oxazol-5(4Н)-one derivatives.

Russian Journal of Organic Chemistry. 2016;52(8):1162-1167
pages 1162-1167 views

Domino reactions of pyrazol-5-amines with arylglyoxals and malononitrile

Petrova O.N., Lipson V.V., Zamigajlo L.L., Shirobokova M.G., Musatov V.I., Dmitrienko D.A.

Abstract

Domino reactions of 3-methylpyrazol-5-amine and 1-phenyl-3-methylpyrazol-5-amine with arylglyoxal hydrates and malononitrile in alcohol proceed regioselectively and lead to the formation of 6-aminopyrazolo[3,4-b]pyridine-5-carbonitrile.

Russian Journal of Organic Chemistry. 2016;52(8):1168-1172
pages 1168-1172 views

5-Aryl-1-[pyrimidin-2(4)-yl]-3-phenyl-4,5-dihydro-1H-pyrazoles. Synthesis from substituted 2(4)-hydrazinopyrimidines and fragmentation under positive electrospray ionization

Erkin A.V., Yuzikhin O.S., Krutikov V.I.

Abstract

Reaction of substituted 2(4)-hydrazinopyrimidines with 3-aryl-1-phenyl-2-propen-1-ones in the presence of a base results prevailingly in 5-aryl-1-[pyrimidin-2(4)-yl]-3-phenyl-4,5-dihydro-1H-pyrazoles. The fragmentation path of these compounds under positive electrospray ionization consists in simultaneous decomposition of their heterocyclic fragments.

Russian Journal of Organic Chemistry. 2016;52(8):1173-1178
pages 1173-1178 views

N-substituted 2-(6-amino-2,4-dioxo-1,2,3,4-tetrahydropyrimidin-5-yl)-2-oxoacetamides

Gasparyan S.P., Alexanyan M.V., Arutyunyan G.K., Martirosyan A.H., Paronikyan R.V., Stepanyan H.M.

Abstract

In reaction of 6-aminouracyles with ethyl oxochloroacetate ethyl 2-(6-amino-2,4-dioxo-1,2,3,4-tetrahydropyrimidin-5-yl)-2-oxoacetates were obtained, which by further reaction with various amines afforded oxo(pyrimidinyl)acetamides. According to the data of biological tests, the synthesized compounds showed low antibacterial and antitumor activity.

Russian Journal of Organic Chemistry. 2016;52(8):1179-1182
pages 1179-1182 views

Three-component reaction of 5-aryl-4-(quinoxalin-2-yl)-furan-2,3-diones, acetylenedicarboxylic acid dimethyl ester, and triphenylphosphine

Lisovenko N.Y., Dryahlov A.V., Dmitriev M.V.

Abstract

Three-component synthesis from 5-aryl-4-(quinoxalin-2-yl)furan-2,3-diones, acetylenedicarboxylic acid dimethyl ester, and triphenylphosphine afforded methyl esters of 1,6-dioxaspiro[4.4]nona-3,7-diene-4-carboxylic and 4H-furo[3,2-c]pyran-3-carboxylic acids.

Russian Journal of Organic Chemistry. 2016;52(8):1183-1187
pages 1183-1187 views

Synthesis and antiviral properties of new derivatives of 2-(alkylsulfanyl)-6-[1-(2,6-difluorophenyl)cyclopropyl]-5-methylpyrimidin-4(3H)-one

Novakov I.A., Yablokov A.S., Orlinson B.S., Navrotskii M.B., Kirillov I.A., Vernigora A.A., Babushkin A.S., Kachala V.V., Schols D.

Abstract

Based on 2-(2,6-difluorophenyl)acetonitrile a synthesis was performed of new bioisosteric prochiral analogs of anti-HIV-1 active derivatives of 2-alkoxy-6-benzylpyrimidin-4(3Н)-one that we had previously obtained. The study using infected and nonifected strains of cells MT-4 made it possible to find in all prepared compounds a high anti-HIV activity whereas the cytotoxicity of the substances depended strongly on the structure of the alkylsulfanyl fragment of the molecule.

Russian Journal of Organic Chemistry. 2016;52(8):1188-1193
pages 1188-1193 views

Synthesis and some chemical characteristics of 4″-nitro-3,3′:4′,3″-ter-1,2,5-oxadiazol-4-amine

Astrat’ev A.A., Stepanov A.I., Sannikov V.S., Dashko D.V.

Abstract

A convenient preparation method was developed for 4″-nitro-3,3′:4′,3″-ter-1,2,5-oxadiazol-4-amine by substituting one nitro group of 4,4″-dinitro-3,3′:4′,3″-ter-1,2,5-oxadiazole at treating with equivalent quantity of ammonia in solvents of low polarity. In the reaction of the obtained amino-nitro derivative with N- and О- nucleophiles depending on the reaction conditions and the nucleophile nature either substitution of the nitro group occurs for the nucleophile residue to form 4″-alkoxy-, azido-, hydraznyl- or mono- and dialkylamino-[3,3′;4′,3″]-ter(1,2,5-oxadiazol)-4-ylamines, or the compound suffers an intramolecular cyclization affording 7Н-tri-1,2,5-oxadiazolo[3,4-b:3′,4′-d:3″,4″-f]azepines.

Russian Journal of Organic Chemistry. 2016;52(8):1194-1202
pages 1194-1202 views

Short Communications

New relativistic computational schemes for 13C NMR chemical shifts

Samultsev D.O., Rusakov Y.Y., Krivdin L.B.
Russian Journal of Organic Chemistry. 2016;52(8):1203-1204
pages 1203-1204 views

Thiylation of (E)-1,5-diphenylpent-4-en-2-yn-1-one

Golovanov A.A., Gusev D.M., Zlotskii S.S.
Russian Journal of Organic Chemistry. 2016;52(8):1205-1206
pages 1205-1206 views

Effective synthesis of 2,2′-[selanediylbis(cycloalkyl)] diacetates

Musalov M.V., Musalova M.V., Potapov V.A., Amosova S.V.
Russian Journal of Organic Chemistry. 2016;52(8):1207-1208
pages 1207-1208 views

Functional derivatives of diamantanone

Hoc N.T., Kushko A.O., Fokin A.A., Rodionov V.N.
Russian Journal of Organic Chemistry. 2016;52(8):1209-1211
pages 1209-1211 views

Preparation of new completely substituted 4-nitrosophenols with a pyridine residue

Kukushkin A.A., Kulumaeva E.V., Kondrasenko A.A., Root E.V., Suboch G.A., Tovbis M.S.
Russian Journal of Organic Chemistry. 2016;52(8):1212-1214
pages 1212-1214 views

Reaction of 5-arylfuran-2(3H)-ones with 3-formylchromone

Anis’kova T.V., Stulova E.G., Egorova A.Y.
Russian Journal of Organic Chemistry. 2016;52(8):1215-1216
pages 1215-1216 views

Synthesis of new derivatives of 2-halocinchomeronic acid

Belikov M.Y., Ershov O.V., Maksimova V.N., Fedoseev S.V.
Russian Journal of Organic Chemistry. 2016;52(8):1217-1219
pages 1217-1219 views

Synthesis of polyfunctional glycosyl derivatives of 2,7-dioxabicyclo[3.2.1]octane

Ievlev M.Y., Ershov O.V., Milovidova A.G., Belikov M.Y., Nasakin O.E.
Russian Journal of Organic Chemistry. 2016;52(8):1220-1222
pages 1220-1222 views

Reaction of benzimidazole and benzotriazole with iodomethyl{4-[iodomethyl(dimethyl)silyl]butyl}dimethylsilane

Yarosh N.O., Zhilitskaya L.V., Shagun L.G., Dorofeev I.A., Larina L.I., Klyba L.V.
Russian Journal of Organic Chemistry. 2016;52(8):1223-1226
pages 1223-1226 views