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Keywords = electrophilic cyclization

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38 pages, 12514 KB  
Review
Recent Breakthroughs in Cyclizations of Ortho-Quinone Methides
by Dongyi Wang, Jiahao Guo, Linzhi Tan, Liqin Qiu, Chitreddy V. Subba Reddy and Wang Xia
Molecules 2026, 31(11), 1846; https://doi.org/10.3390/molecules31111846 - 27 May 2026
Viewed by 441
Abstract
Ortho-quinone methides (o-QMs) constitute a class of highly reactive and versatile intermediates in organic synthesis, characterized by a unique polarized electronic structure that combines an electron-deficient quinoid ring with an exocyclic electrophilic methylene or alkylidene unit. This distinctive feature renders [...] Read more.
Ortho-quinone methides (o-QMs) constitute a class of highly reactive and versatile intermediates in organic synthesis, characterized by a unique polarized electronic structure that combines an electron-deficient quinoid ring with an exocyclic electrophilic methylene or alkylidene unit. This distinctive feature renders powerful C4 synthons capable of participating in a wide range of higher-order cyclization reactions. In particular, [4 + n] cyclizations involving o-QMs (e.g., [4 + 1], [4 + 2], and [4 + 3]) have emerged as effective strategies for the rapid construction of structurally complex carbocyclic and heterocyclic frameworks, many of which serve as privileged scaffolds in natural products and functional materials. This review provides a comprehensive overview of recent advances in this rapidly developing field, with a systematic discussion of reaction design, mechanistic insights, and synthetic applications across various [4 + n] cyclization modes. Furthermore, current challenges are critically evaluated, and future opportunities are proposed, particularly in the development of novel catalytic systems, asymmetric variants, and innovative o-QM precursors. Overall, this review aims to offer researchers a clear understanding of the state of the art in o-QM chemistry and to inspire further innovation in this dynamic area of organic synthesis. Full article
(This article belongs to the Section Organic Chemistry)
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23 pages, 2202 KB  
Article
Novel Aloe-Emodin Derivatives as Potential Anticancer Agents: Synthesis, Characterization and Cytotoxic Activity
by Jeltzlin Semerel, Shuhe Zheng, Haoyue Hu, Yuyu Fang, Nigel John, Pedro Fardim and Wim Dehaen
Molecules 2026, 31(10), 1676; https://doi.org/10.3390/molecules31101676 - 15 May 2026
Viewed by 447
Abstract
The fusion of heterocycles onto an anthraquinone scaffold represents a promising strategy to optimize anticancer activity. This study has the aim to synthesize and characterize novel anthra[1,2-b]furan compounds based on the natural product aloe-emodin. Six novel anthra[1,2-b]furans bearing phenyl, [...] Read more.
The fusion of heterocycles onto an anthraquinone scaffold represents a promising strategy to optimize anticancer activity. This study has the aim to synthesize and characterize novel anthra[1,2-b]furan compounds based on the natural product aloe-emodin. Six novel anthra[1,2-b]furans bearing phenyl, n-hexane, and methoxy carbonyl substituents were synthesized starting from aloe-emodin. The synthetic route employed involved acetyl protection of aloe-emodin, electrophilic aromatic halogenation, subsequent Castro–Stephens coupling, spontaneous intramolecular cyclization, and deprotection of hydroxyl groups. These newly synthesized compounds were evaluated for their cytotoxic activity against various cancer cell lines, including lung adenocarcinoma (A5492), colorectal carcinoma (HCT116), hepatocellular carcinoma (HepG2), ovarian cancer (Skov3), and breast cancer (MCF-7), using the CCK8 assay. The anthra[1,2-b]furan derivative 10c, which contains a methoxy carbonyl group, demonstrated excellent potency against lung (A549) and breast (MCF-7) cancer cell lines, with IC50 values of 0.49 and 2.91 µM, respectively. This preliminary cytotoxic finding shows compound 10c as a promising hit for further investigations towards a promising lead compound. Full article
(This article belongs to the Section Organic Chemistry)
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17 pages, 2196 KB  
Article
I2 and the Deep Eutectic Solvent ChCl–Tartaric Acid Promote the Addition–Oxidative Cyclization of 2-Aminopyridines and Chalcones to Obtain Imidazo[1,2-a]pyridines
by Juan Lopez de Leon, Nayely Melissa Cruces Velazco, Arlette Richaud, Francisco Méndez, Diego A. Alonso and Claudia Araceli Contreras-Celedón
Molecules 2026, 31(9), 1416; https://doi.org/10.3390/molecules31091416 - 24 Apr 2026
Viewed by 553
Abstract
The synthesis of nitrogen-containing heterocycles remains a subject of significant interest due to their applications in medicinal chemistry and materials science. This paper describes the preparation of imidazo[1,2-a]pyridine using a catalytic system consisting of the deep eutectic solvent (DES) choline chloride [...] Read more.
The synthesis of nitrogen-containing heterocycles remains a subject of significant interest due to their applications in medicinal chemistry and materials science. This paper describes the preparation of imidazo[1,2-a]pyridine using a catalytic system consisting of the deep eutectic solvent (DES) choline chloride (ChCl)–tartaric acid (1:2) and I2 by reaction between 2-aminopyridines and chalcones (1,3-diphenylprop-2-en-1-ones). The proposed mechanism suggests the activation of the chalcone carbonyl by the DES, enhancing the polarization of the conjugated system which suffers electrophilic addition by I2 to the C=C bond. The resulting intermediate undergoes a nucleophilic attack by 2-aminopyridine followed by cyclization and iodine-promoted oxidation and aromatization to yield the corresponding imidazo[1,2-a]pyridine products. The role of the DES is crucial, as it facilitates carbonyl activation through hydrogen bond interactions, stabilizes reactive intermediates, and promotes protonation–deprotonation steps, thereby eliminating the need for metal catalysts or toxic organic solvents. Theoretical calculations at the PM6 level of theory suggest that the DES acts as a catalyst in this reaction, due to the nature of its components enabling the development of more sustainable synthetic strategies. Full article
(This article belongs to the Special Issue 30th Anniversary of Molecules—Recent Advances in Organic Chemistry)
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27 pages, 4653 KB  
Article
Pyridinium-Fused 1,3-Selenazoles via Cyclizations of 2-Pyridylselenyl Chloride with Alkynes: Synthesis, Structures, and Antifungal Properties
by Evgeny A. Dukhnovsky, Alexey S. Kubasov, Olga G. Chusova, Victor N. Khrustalev, Alexander V. Borisov, Francis Verpoort, Rosa M. Gomila, Antonio Frontera, Zhishen Ge and Alexander G. Tskhovrebov
Int. J. Mol. Sci. 2026, 27(6), 2908; https://doi.org/10.3390/ijms27062908 - 23 Mar 2026
Viewed by 695
Abstract
We report a straightforward and versatile synthetic route to pyridinium-fused 1,3-selenazoles via the electrophilic cyclization of 2-pyridylselenyl chloride with alkynes. The reaction proceeds efficiently under mild conditions with representative terminal and internal alkynes. While the cyclization exhibits high regioselectivity favoring the 3-substituted isomer [...] Read more.
We report a straightforward and versatile synthetic route to pyridinium-fused 1,3-selenazoles via the electrophilic cyclization of 2-pyridylselenyl chloride with alkynes. The reaction proceeds efficiently under mild conditions with representative terminal and internal alkynes. While the cyclization exhibits high regioselectivity favoring the 3-substituted isomer for most substrates, reactions with 2-pyridyl- and 2-quinolylacetylenes yield regioisomeric mixtures. DFT calculations rationalize this divergence, revealing a competition between kinetic and thermodynamic control; the 3-isomer is kinetically favored, while the 2-isomer is thermodynamically stabilized by an ancillary chalcogen bond between the selenium atom and the pyridine nitrogen of the alkyne substituent. Molecular structures were confirmed by single-crystal X-ray diffraction, and the non-covalent interactions governing supramolecular assembly in the solid state were rigorously analyzed using MEP surfaces, the QTAIM, and NBO analysis. Antifungal evaluation identified several compounds with notable activity against phytopathogenic fungi, highlighting the potential of this novel heterocyclic scaffold in agrochemical applications. Full article
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45 pages, 5593 KB  
Review
Synthesis of 2-Oxazolines from N-Allyl and N-Propargyl Amides
by Karolina Bojar, Danuta Branowska and Ewa Wolińska
Molecules 2025, 30(22), 4369; https://doi.org/10.3390/molecules30224369 - 12 Nov 2025
Viewed by 1792
Abstract
2-Oxazolines are five-membered heterocyclic compounds with significant biological properties. They also play an important role in organic synthesis, acting as chiral ligands and protecting groups for hydroxyamino acids and amino alcohols. Poly(2-oxazolines) are known coating materials, for example, in biomedicine. Classic synthetic methods [...] Read more.
2-Oxazolines are five-membered heterocyclic compounds with significant biological properties. They also play an important role in organic synthesis, acting as chiral ligands and protecting groups for hydroxyamino acids and amino alcohols. Poly(2-oxazolines) are known coating materials, for example, in biomedicine. Classic synthetic methods of 2-oxazolines involve a dehydrative cyclisation reaction between amino alcohols and carboxylic acids, acid chlorides, nitriles, imidates, and aldehydes. However, the electrophilic intramolecular cyclization of unsaturated amides is becoming an increasingly important synthetic method for the preparation of 2-oxazolines. This brief review summarizes procedures for synthesizing oxazolines using the electrophilic intramolecular oxidative cyclisation of N-allyl and N-propargyl amides, as published between 2014 and 2024. It covers the synthesis of 5-halomethyl-, 5-trifluoromethyl-, 5-sulfonylmethyl-, 5-sulfenylmethyl-, 5-selenylmethyl-, 5-acetoxymethyl-, 5-hydroxymethyl-, 5-aminomethyl-, 5-alkilo-, and 5-alkylideneoxazolines. Full article
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9 pages, 2524 KB  
Article
Metalloamination/Cyclization of Zinc(II) Amides Derived from N,N-Dimethylhydrazinoalkenes—Applications for the Direct C-SP2 Functionalization of Aryl and Vinyl Electrophiles
by Jérome Lépeule, Christian Frabitore and Tom Livinghouse
Inorganics 2025, 13(10), 328; https://doi.org/10.3390/inorganics13100328 - 30 Sep 2025
Viewed by 1555
Abstract
Treatment of N,N-dimethylhydrazinoalkenes with diethylzinc followed by exposure of the resulting ethylzinc amides to high vacuum drives a Schlenck redistribution metalloamination/cyclization to generate the corresponding bis(organozinc) intermediates in excellent conversions. Direct treatment of these with appropriate aryl or vinyl electrophiles [...] Read more.
Treatment of N,N-dimethylhydrazinoalkenes with diethylzinc followed by exposure of the resulting ethylzinc amides to high vacuum drives a Schlenck redistribution metalloamination/cyclization to generate the corresponding bis(organozinc) intermediates in excellent conversions. Direct treatment of these with appropriate aryl or vinyl electrophiles in the presence of catalytic PdCl2 (DPEphos) provides the corresponding arylated or alkenylated pyrrolidines and piperidines with high efficiency. Full article
(This article belongs to the Special Issue Metal-Catalyzed Cross-Couplings)
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10 pages, 1536 KB  
Communication
Metal-Free Synthesis of Benzimidazolinones via Oxidative Cyclization Under Hypervalent Iodine Catalysis
by Mayu Hirashima, Syotaro Hamatani, Hirotaka Sasa, Naoko Takenaga, Tomonori Hanasaki and Toshifumi Dohi
Chemistry 2025, 7(2), 50; https://doi.org/10.3390/chemistry7020050 - 31 Mar 2025
Cited by 1 | Viewed by 2195
Abstract
Benzimidazolinones exhibit unique biological activities and serve as building blocks in synthesizing pharmaceutical compounds. Although multiple synthetic approaches involving intermolecular cyclization reactions have been reported, intramolecular cyclization reactions are scarce, and more rational synthetic methods are required. Hypervalent iodine-catalyzed oxidative C–N coupling is [...] Read more.
Benzimidazolinones exhibit unique biological activities and serve as building blocks in synthesizing pharmaceutical compounds. Although multiple synthetic approaches involving intermolecular cyclization reactions have been reported, intramolecular cyclization reactions are scarce, and more rational synthetic methods are required. Hypervalent iodine-catalyzed oxidative C–N coupling is a potentially effective approach for synthesizing benzimidazolinones under metal-free conditions. In this study, we present a method utilizing hypervalent iodine catalysis for the oxidative cyclization of N’-aryl urea compounds, resulting in the first metal-free synthesis of various benzimidazolinones. Full article
(This article belongs to the Section Molecular Organics)
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45 pages, 12731 KB  
Review
Recent Developments in Stereoselective Reactions of Sulfoxonium Ylides
by Ciarán O’Shaughnessy, Mukulesh Mondal and Nessan J. Kerrigan
Molecules 2025, 30(3), 655; https://doi.org/10.3390/molecules30030655 - 1 Feb 2025
Cited by 6 | Viewed by 7792
Abstract
This review probes the recent developments in stereoselective reactions within the area of sulfoxonium ylide chemistry since the early 2000s. An abundance of research has been applied to sulfoxonium ylide chemistry since its emergence in the early 1960s. There has been a continued [...] Read more.
This review probes the recent developments in stereoselective reactions within the area of sulfoxonium ylide chemistry since the early 2000s. An abundance of research has been applied to sulfoxonium ylide chemistry since its emergence in the early 1960s. There has been a continued effort since then with work in traditional areas, such as epoxidation, aziridination and cyclopropanation. Efforts have also been applied in novel areas, such as olefination and insertion reactions, to develop stereoselective methodologies using organocatalysis and transition metal catalysis. The growing research area of interrupted Johnson–Corey–Chaykovsky reactions is also described, whereby unexpected stereoselective cyclopropanation and epoxidation methodologies have been developed. In general, the most observed mechanistic pathway of sulfoxonium ylides is the formal cycloaddition: (2 + 1) (e.g., epoxides, cyclopropanes, aziridines), (3 + 1) (e.g., oxetanes, azetidines), (4 + 1) (e.g., indanones, indolines). This pathway involves the formation of a zwitterionic intermediate through nucleophilic addition of the carbanion to an electrophilic site. An intramolecular cyclization occurs, constructing the cyclic product. Insertion reactions of sulfoxonium ylides to X–H bonds (e.g., X = S, N or P) are also observed, whereby protonation of the carbanion is followed by a nucleophilic addition of X, to form the inserted product. Full article
(This article belongs to the Special Issue Featured Reviews in Organic Chemistry 2025–2026)
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12 pages, 4575 KB  
Article
Sodium Hypochlorite Pentahydrate as a Chlorinating Reagent: Application to the Tandem Conversion of β,γ-Unsaturated Carboxylic Acids to α,β-Unsaturated Lactones
by Michio Iwaoka, Reo Shimada, Masaki Kuroda, Takehito Ikeda and Eduardo E. Alberto
Processes 2024, 12(6), 1102; https://doi.org/10.3390/pr12061102 - 27 May 2024
Viewed by 4063
Abstract
Sodium hypochlorite pentahydrate (NaClO·5H2O, 1) has recently been employed in organic synthesis as an oxidant for alcohols, sulfides, glycols, etc. In most of these reactions, however, reagent 1 functions just as a simple oxidant, and the variations of the reactions [...] Read more.
Sodium hypochlorite pentahydrate (NaClO·5H2O, 1) has recently been employed in organic synthesis as an oxidant for alcohols, sulfides, glycols, etc. In most of these reactions, however, reagent 1 functions just as a simple oxidant, and the variations of the reactions have not been well explored. In this study, we report another useful and fascinating reaction, in which reagent 1 functions as a green chlorinating reagent toward β,γ-unsaturated carboxylic acid (2). When substrate 2 was stirred at room temperature with 1 (2 eq) in acetonitrile for 1 h, α,β-unsaturated lactone (3) was obtained in moderate yields (up to 62%). The same reaction proceeded in various organic and aqueous solvents as well. When excess reagent 1 was employed, lactone 3 was further oxidized to the corresponding epoxide (4) for some cases. The conversion is initiated by electrophilic attack of HOCl to the C=C bond of 2 to generate a chloronium ion intermediate, which is cyclized to β-chlorolactone (5) and then 3 through the elimination of HCl. The usefulness of 1 as a chlorinating reagent was further demonstrated in the electrophilic substitution of activated aromatic compounds. Full article
(This article belongs to the Special Issue Advances and Prospects in Organic Synthesis)
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14 pages, 2026 KB  
Article
Mucolytic Drugs Ambroxol and Bromhexine: Transformation under Aqueous Chlorination Conditions
by Sergey A. Sypalov, Ilya S. Varsegov, Nikolay V. Ulyanovskii, Albert T. Lebedev and Dmitry S. Kosyakov
Int. J. Mol. Sci. 2024, 25(10), 5214; https://doi.org/10.3390/ijms25105214 - 10 May 2024
Cited by 9 | Viewed by 5285
Abstract
Bromhexine and ambroxol are among the mucolytic drugs most widely used to treat acute and chronic respiratory diseases. Entering the municipal wastewater and undergoing transformations during disinfection with active chlorine, these compounds can produce nitrogen- and bromine-containing disinfection by-products (DBPs) that are dangerous [...] Read more.
Bromhexine and ambroxol are among the mucolytic drugs most widely used to treat acute and chronic respiratory diseases. Entering the municipal wastewater and undergoing transformations during disinfection with active chlorine, these compounds can produce nitrogen- and bromine-containing disinfection by-products (DBPs) that are dangerous for aquatic ecosystems. In the present study, primary and deep degradation products of ambroxol and bromhexine obtained in model aquatic chlorination experiments were studied via the combination of high-performance liquid and gas chromatography with high-resolution mass spectrometry. It was shown that at the initial stages, the reactions of cyclization, hydroxylation, chlorination, electrophilic ipso-substitution of bromine atoms with chlorine, and oxidative N-dealkylation occur. Along with known metabolites, a number of novel primary DBPs were tentatively identified based on their elemental compositions and tandem mass spectra. Deep degradation of bromhexine and ambroxol gives twenty-four identified volatile and semi-volatile compounds of six classes, among which trihalomethanes account for more than 50%. The specific class of bromhexine- and ambroxol-related DBPs are bromine-containing haloanilines. Seven of them, including methoxy derivatives, were first discovered in the present study. One more novel class of DBPs associated with bromhexine and ambroxol is represented by halogenated indazoles formed through dealkylation of the primary transformation products containing pyrazoline or tetrahydropyrimidine cycle in their structure. Full article
(This article belongs to the Section Molecular Pharmacology)
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13 pages, 7741 KB  
Article
Temperature-Controlled Divergent Synthesis of Pyrazoles and 1-Tosyl-1H-pyrazoles under Transition-Metal-Catalyst- and Oxidant-Free Conditions
by Kai Wang, Wenjing Xu, Chengcai Xia and Xianting Cao
Molecules 2024, 29(8), 1706; https://doi.org/10.3390/molecules29081706 - 10 Apr 2024
Cited by 3 | Viewed by 2586
Abstract
Herein, a general and practical temperature-controlled approach for the divergent synthesis of pyrazoles and 1-tosyl-1H-pyrazoles via electrophilic cyclization in the absence of transition-metal catalysts and oxidants was developed. The desired products were obtained in moderate to excellent yields from common starting [...] Read more.
Herein, a general and practical temperature-controlled approach for the divergent synthesis of pyrazoles and 1-tosyl-1H-pyrazoles via electrophilic cyclization in the absence of transition-metal catalysts and oxidants was developed. The desired products were obtained in moderate to excellent yields from common starting materials in both ionic liquids and ethanol by simply tuning the reaction temperature. This strategy employs easily synthesized substrates, mild reaction conditions, and excellent functional-group tolerance. Full article
(This article belongs to the Section Organic Chemistry)
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18 pages, 2520 KB  
Article
Upper Rim-Bridged Calix[4]arenes via Cyclization of meta Alkynyl Intermediates with Diphenyl Diselenide
by Anastasia Surina, Karolína Salvadori, Matěj Poupě, Jan Čejka, Ludmila Šimková and Pavel Lhoták
Molecules 2024, 29(6), 1237; https://doi.org/10.3390/molecules29061237 - 11 Mar 2024
Viewed by 2456
Abstract
A Sonogashira coupling of meta-iodocalix[4]arene with various terminal acetylenes confirmed that the meta position of calixarene is well addressable, and that both thermal and microwave protocols led to good yields of alkynylcalixarenes. Alkynes thus obtained were subjected to the ferric chloride and [...] Read more.
A Sonogashira coupling of meta-iodocalix[4]arene with various terminal acetylenes confirmed that the meta position of calixarene is well addressable, and that both thermal and microwave protocols led to good yields of alkynylcalixarenes. Alkynes thus obtained were subjected to the ferric chloride and diphenyl diselenide-promoted electrophilic closure. It turns out that the calix[4]arenes give completely different bridging products than those described for the non-macrocyclic starting compounds. This can be demonstrated not only by the isolation of products with a six-membered ring (6-exo-dig), but mainly by the smooth formation of the 5-endo-dig cyclization, which has never been observed in the aliphatic series. An attempt at electrocyclization led to a high yield of the 1,2-diketone (oxidation of the starting alkyne), again in contrast to the reaction described for the acyclic derivatives. The structures of the unexpected products were unequivocally established by X-ray analysis and clearly demonstrate how the preorganized macrocyclic skeleton favors a completely different regioselectivity of cyclization reactions compared to common aliphatic compounds. Full article
(This article belongs to the Special Issue Organosulfur and Organoselenium Chemistry)
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31 pages, 8090 KB  
Review
Synthesis of 1,3,5-Triazepines and Benzo[f][1,3,5]triazepines and Their Biological Activity: Recent Advances and New Approaches
by Ameen Ali Abu-Hashem, Othman Hakami, Nasser Amri, Yousef E. Mukhrish and Ahmed A. M. Abdelgawad
Molecules 2024, 29(3), 632; https://doi.org/10.3390/molecules29030632 - 29 Jan 2024
Cited by 11 | Viewed by 7405
Abstract
This review article discusses the recent progress in synthesizing seven-membered ring 1,3,5-triazepine and benzo[f][1,3,5]triazepine derivatives. These derivatives can be either unsaturated, saturated, fused, or separated. This review covers strategies and procedures developed over the past two decades, including cyclo-condensation, cyclization, methylation, [...] Read more.
This review article discusses the recent progress in synthesizing seven-membered ring 1,3,5-triazepine and benzo[f][1,3,5]triazepine derivatives. These derivatives can be either unsaturated, saturated, fused, or separated. This review covers strategies and procedures developed over the past two decades, including cyclo-condensation, cyclization, methylation, chlorination, alkylation, addition, cross-coupling, ring expansions, and ring-closing metathesis. This review discusses the synthesis of 1,3,5-triazepine derivatives using nucleophilic or electrophilic substitution reactions with various reagents such as o-phenylenediamine, 2-aminobenzamide, isothiocyanates, pyrazoles, thiazoles, oxadiazoles, oxadiazepines, and hydrazonoyl chloride. This article systematically presents new approaches and techniques for preparing these compounds. It also highlights the biological importance of benzo[f][1,3,5]triazepine derivatives, which have been used as drugs for treating nervous system diseases. This review aims to provide researchers with the necessary information to create and develop new derivatives of these compounds as quickly as possible. Full article
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17 pages, 1785 KB  
Article
Phosphine Catalyzed Michael-Type Additions: The Synthesis of Glutamic Acid Derivatives from Arylidene-α-amino Esters
by Lesly V. Rodríguez-Flórez, María González-Marcos, Eduardo García-Mingüens, María de Gracia Retamosa, Misa Kawase, Elisabet Selva and José M. Sansano
Molecules 2024, 29(2), 342; https://doi.org/10.3390/molecules29020342 - 10 Jan 2024
Viewed by 3341
Abstract
The reaction of arylidene-α-amino esters with electrophilic alkenes to yield Michael-type addition compounds is optimized using several phosphines as organocatalysts. The transformation is very complicated due to the generation of several final compounds, including those derived from the 1,3-dipolar cycloadditions. For [...] Read more.
The reaction of arylidene-α-amino esters with electrophilic alkenes to yield Michael-type addition compounds is optimized using several phosphines as organocatalysts. The transformation is very complicated due to the generation of several final compounds, including those derived from the 1,3-dipolar cycloadditions. For this reason, the selection of the reaction conditions is a very complex task and the slow addition of the acrylic system is very important to complete the process. The study of the variation in the structural components of the starting imino ester is performed as well as the expansion of other electron-poor alkenes. The crude products have a purity higher than 90% in most cases without any purification. A plausible mechanism is detailed based on the bibliography and the experimental results. The synthesis of pyroglutamate entities, after the reduction of the imino group and cyclization, is performed in high yields. In addition, the hydrolysis of the imino group, under acidic media, represents a direct access to glutamate surrogates. Full article
(This article belongs to the Special Issue A Journey of Organic Chemistry in Spain)
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39 pages, 10235 KB  
Review
Recent Advances for the Synthesis of Dihydroquinolin-2(1H)-ones via Catalytic Annulation of α,β-Unsaturated N-Arylamides
by Yan-Ning Niu, Lin-Shuang Tian, Huai-Zhong Lv and Ping-Gui Li
Catalysts 2023, 13(7), 1105; https://doi.org/10.3390/catal13071105 - 15 Jul 2023
Cited by 16 | Viewed by 4519
Abstract
Dihydroquinolin-2(1H)-ones (DHQOs) represent a class of valuable bioactive compounds with six-membered nitrogen-containing heterocyclic structures. The development of simple, mild, and efficient synthetic methods has been widely considered by synthetic chemists. In this review, we have summarized a series of different synthetic [...] Read more.
Dihydroquinolin-2(1H)-ones (DHQOs) represent a class of valuable bioactive compounds with six-membered nitrogen-containing heterocyclic structures. The development of simple, mild, and efficient synthetic methods has been widely considered by synthetic chemists. In this review, we have summarized a series of different synthetic strategies for the synthesis of DHQOs via the catalytic annulation of α,β-unsaturated N-arylamides in the past decade, including covering electrophilic cyclization, radical initiated cyclization, and photochemical cyclization reactions. Additionally, the substrate scope and mechanistic details are also discussed. This paper provides a useful reference for the development of diverse synthesis methodologies of DHQO. Full article
(This article belongs to the Special Issue Catalytic Annulation Reactions)
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