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Search for "tetrazoles" in Full Text gives 31 result(s) in Beilstein Journal of Organic Chemistry.

Innovative synthesis of drug-like molecules using tetrazole as core building blocks

  • Jingyao Li,
  • Ajay L. Chandgude,
  • Qiang Zheng and
  • Alexander Dömling

Beilstein J. Org. Chem. 2024, 20, 950–958, doi:10.3762/bjoc.20.85

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  • Institute, Palackӯ University in Olomouc, Olomouc, Czech Republic 10.3762/bjoc.20.85 Abstract Tetrazole is widely utilized as a bioisostere for carboxylic acid in the field of medicinal chemistry and drug development, enhancing the drug-like characteristics of various molecules. Typically, tetrazoles are
  • as anticancer, antitubercular, antibacterial, antiviral, antimalarial, antiallergic, and antihypertensive (Figure 1a) [7][10]. In addition, tetrazoles constitute a diverse range of industrial applications and are extensively used in materials, agriculture, explosives and photography [11][12]. Due to
  • of tetrazole building blocks which provides the handle of alcohol functionality and further oxidation serves as an oxo component in subsequent MCRs (Figure 1d). The synthesis of oxo-tetrazoles was targeted because of the prevalence of the aldehyde substrate in MCRs and their use in medicinal
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Published 29 Apr 2024

One-pot Ugi-azide and Heck reactions for the synthesis of heterocyclic systems containing tetrazole and 1,2,3,4-tetrahydroisoquinoline

  • Jiawei Niu,
  • Yuhui Wang,
  • Shenghu Yan,
  • Yue Zhang,
  • Xiaoming Ma,
  • Qiang Zhang and
  • Wei Zhang

Beilstein J. Org. Chem. 2024, 20, 912–920, doi:10.3762/bjoc.20.81

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  • -tetrazoles (1,5-DS-1H-Ts) B. The performance of post-condensation reactions of UA-4CR adducts has resulted in various 1,5-DS-1H-Ts containing heterocyclic compounds [28][29][30][31][32], such as bis-heterocyclic lactam-tetrazoles [33][34], 2-tetrazolylmethyl-2,3,4,9-tetrahydro-1H-β-carbolines [35
  • reaction for the synthesis of tetrazolyl-1,2,3,4-tetrahydroisoquinoline scaffolds 6 and 8 (Scheme 3). The first step is the Ugi-azide reaction of a 2-bromobenzoaldehyde 1, allylamine hydrochloride (2), azidotrimethylsilane (TMSN3, 3), and an isocyanide 4 affording tetrazoles 5. If ethyl isocyanoacetate is
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Published 23 Apr 2024

Three-component N-alkenylation of azoles with alkynes and iodine(III) electrophile: synthesis of multisubstituted N-vinylazoles

  • Jun Kikuchi,
  • Roi Nakajima and
  • Naohiko Yoshikai

Beilstein J. Org. Chem. 2024, 20, 891–897, doi:10.3762/bjoc.20.79

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  • catalysis encompassed various azoles such as pyrazole, indazole, and (benzo)triazole, exhibiting high Z-selectivity. In addition, Cao et al. reported a gold-catalyzed addition of 5-substituted tetrazoles to terminal alkynes [11]. Analogous hydroazolation reactions of alkynes have also been achieved under
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Published 22 Apr 2024

N-Boc-α-diazo glutarimide as efficient reagent for assembling N-heterocycle-glutarimide diads via Rh(II)-catalyzed N–H insertion reaction

  • Grigory Kantin,
  • Pavel Golubev,
  • Alexander Sapegin,
  • Alexander Bunev and
  • Dmitry Dar’in

Beilstein J. Org. Chem. 2023, 19, 1841–1848, doi:10.3762/bjoc.19.136

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  • tetrazoles, had not been previously utilized in the CRBN ligands design. Catalytic decomposition reactions of diazo compound 5 with NH-heterocycles were conducted in a dry DCM solution using dirhodium espinoate (Rh2(esp)2, 0.06–0.18 mol %). The Rh2(esp)2 catalyst was selected for its excellent versatility
  • and efficiency in various XH insertion reactions [27][28][29]. In many cases (e.g., indoles, indazoles, benzotriazoles, tetrazoles, Scheme 3) the reaction progressed expeditiously (as indicated by gas evolution upon adding diazo reagent to the mixture of NH-substrate and catalyst) and was completed in
  • literature [30]. Despite the low reactivity (the reaction was carried out for 5 days with triple portion of the catalyst), the yield of the N–H insertion product involving 1,2,4-triazole was unexpectedly high (80%). Compound 6l was obtained as a single regioisomer. The reaction with tetrazoles is also
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Published 07 Dec 2023

Scope of tetrazolo[1,5-a]quinoxalines in CuAAC reactions for the synthesis of triazoloquinoxalines, imidazoloquinoxalines, and rhenium complexes thereof

  • Laura Holzhauer,
  • Chloé Liagre,
  • Olaf Fuhr,
  • Nicole Jung and
  • Stefan Bräse

Beilstein J. Org. Chem. 2022, 18, 1088–1099, doi:10.3762/bjoc.18.111

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  • products from ring-fused 1,2,3,4-tetrazoles. Although some triazoloquinoxalines with a spacer moiety have been reported in the past [25][26], only three successfully synthesized derivatives of 1,2,3-triazoloquinoxalines 3 without a spacer are known [10][12]. To date, only one study describes the formation
  • of a metal complex with an inverse triazoloquinoxaline ligand [12]. Imidazo[1,2-a]quinoxalines have been reported to possess anticancer and antitumor properties [27][28] and show activity as adenosine receptor antagonists [29] as well as PDE4 inhibitors [30]. The reaction of ring-fused tetrazoles to
  • reactions and denitrogenative annulation according to Roy et al. [11]. Copper-catalyzed azide–alkyne cycloadditions are initiated via the (dual) complexation of the alkyne, whereas denitrogenative annulation on 1,2,3,4-tetrazoles is assumed to start via complexation of the open-form azide 18 (see Scheme 4
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Published 24 Aug 2022

Flow synthesis of oxadiazoles coupled with sequential in-line extraction and chromatography

  • Kian Donnelly and
  • Marcus Baumann

Beilstein J. Org. Chem. 2022, 18, 232–239, doi:10.3762/bjoc.18.27

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  • anticancer agents [21][22][23]. Previous reports of the synthesis of 1,3,4-oxadiazoles in continuous flow focused on the reaction between tetrazoles and carboxylic acids (Huisgen synthesis) [24][25]. Continuous flow technology has also been exploited for the further functionalisation of 1,3,4-oxadiazoles [26
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Published 25 Feb 2022

Recent advances and perspectives in ruthenium-catalyzed cyanation reactions

  • Thaipparambil Aneeja,
  • Cheriya Mukkolakkal Abdulla Afsina,
  • Padinjare Veetil Saranya and
  • Gopinathan Anilkumar

Beilstein J. Org. Chem. 2022, 18, 37–52, doi:10.3762/bjoc.18.4

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  • , carboxylic acids, tetrazoles, aldehydes, amidines, and amides [7][8][9][10][11]. This has been suitably transformed into structurally diverse and complex molecules. In 1927, Pongratz reported a method towards cyanation reactions [12]. From then, onwards, cyanation gained prime focus and achieved much
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Published 04 Jan 2022

Synthesis of new bile acid-fused tetrazoles using the Schmidt reaction

  • Dušan Đ. Škorić,
  • Olivera R. Klisurić,
  • Dimitar S. Jakimov,
  • Marija N. Sakač and
  • János J. Csanádi

Beilstein J. Org. Chem. 2021, 17, 2611–2620, doi:10.3762/bjoc.17.174

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  • tetrazoles from bile acid precursors was developed. Mild reaction conditions using TMSN3 instead of hydrazoic acid as an azide source produced good yields of the desired tetrazoles. These conditions could be applied to other steroidal precursors. Additionally, an improved methodology for the synthesis of
  • selective activity towards certain tumor cell lines. Keywords: antiproliferative activity; Schmidt reaction; steroids; tetrazoles; trimethylsilyl azide; Introduction Bile acids are naturally occurring steroidal surfactants that play various biological roles. Besides the well-known role as lipid
  • and metabolic stability of the molecule [16]. Steroid molecules with nitrogen-containing heterocyclic rings are promising candidates for the treatment of many types of cancer or hormonal disorders [17]. There are several examples of steroidal tetrazoles showing anticancer potential (Figure 1) [18][19
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Published 20 Oct 2021

On the application of 3d metals for C–H activation toward bioactive compounds: The key step for the synthesis of silver bullets

  • Renato L. Carvalho,
  • Amanda S. de Miranda,
  • Mateus P. Nunes,
  • Roberto S. Gomes,
  • Guilherme A. M. Jardim and
  • Eufrânio N. da Silva Júnior

Beilstein J. Org. Chem. 2021, 17, 1849–1938, doi:10.3762/bjoc.17.126

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  • and collaborators reported a new concept involving the intramolecular denitrogenative C(sp3)–H amination of 1,2,3,4-tetrazoles bearing unactivated primary, secondary, and tertiary C–H bonds via an Fe-catalyzed C–H activation (Scheme 33B and 33C) [167]. The new C(sp3)–H amination protocol presented
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Published 30 Jul 2021

Chemical synthesis of C6-tetrazole ᴅ-mannose building blocks and access to a bioisostere of mannuronic acid 1-phosphate

  • Eleni Dimitriou and
  • Gavin J. Miller

Beilstein J. Org. Chem. 2021, 17, 1527–1532, doi:10.3762/bjoc.17.110

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  • at C4 with TBSOTf in excellent yield (87%). C6-nitrile 9 was then successfully converted into C6-tetrazole 5 in 51% yield using TMSN3 and a catalytic amount of Bu2SnO [15]. This method was recently utilised successfully by Bräse and colleagues for ᴅ-gluco-configured C6-tetrazoles in their synthesis
  • afforded N1-Bn and N2-Bn tetrazoles 13 and 14 in low yield (31%) and again with little regiodiscrimination (N1-Bn/N2-Bn = 1:1.2). The synthesis of appropriately protected C6-tetrazole donors 11–14 was accomplished to allow for regioselective deprotection and unveil C4-acceptor capability within a broader
  • oligosaccharide synthesis strategy. With such capability effectively demonstrated, we next explored the provision of ᴅ-manno C6-tetrazoles without an orthogonal C4-protecting group. Accordingly, a synthesis initiating from alcohol 15 [19] enabled access to C6-nitrile 16 in three steps (Scheme 4) and an improved
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Published 05 Jul 2021

A comprehensive review of flow chemistry techniques tailored to the flavours and fragrances industries

  • Guido Gambacorta,
  • James S. Sharley and
  • Ian R. Baxendale

Beilstein J. Org. Chem. 2021, 17, 1181–1312, doi:10.3762/bjoc.17.90

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Published 18 May 2021

Mesoionic tetrazolium-5-aminides: Synthesis, molecular and crystal structures, UV–vis spectra, and DFT calculations

  • Vladislav A. Budevich,
  • Sergei V. Voitekhovich,
  • Alexander V. Zuraev,
  • Vadim E. Matulis,
  • Vitaly E. Matulis,
  • Alexander S. Lyakhov,
  • Ludmila S. Ivashkevich and
  • Oleg A. Ivashkevich

Beilstein J. Org. Chem. 2021, 17, 385–395, doi:10.3762/bjoc.17.34

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  • -(methylsulfonyl)-1-phenyl-1H-tetrazole with substitution of bromine and methylsulfonyl groups giving the corresponding tetrazolium salts or conjugate aminides. The obtained mesoionic tetrazoles have been characterized by elemental analysis, FTIR, NMR, and UV–vis spectroscopy, TGA/DSC analysis and for 1,3-di-tert
  • tetrazoles [11][12]. The first representatives of tetrazole-5-aminides were reported in the 1950s [13][14], whereas next publications were appeared only five decades later, being devoted to the synthesis and photochemistry of 1,3-diaryltetrazolium-5-aminides [15][16][17][18][19][20][21]. NMR studies of a few
  • hydrochloric acid. Indeed, the de-tert-butylation was found to be regioselective leading to the 2-tert-butyltetrazole (12a) and 1-methyltetrazole (12b) derivatives, respectively (Scheme 2). The selectivity of the reaction was confirmed by a 13C NMR shift comparison for the C5 endocyclic atoms of tetrazoles 12a
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Published 08 Feb 2021

Direct synthesis of anomeric tetrazolyl iminosugars from sugar-derived lactams

  • Michał M. Więcław and
  • Bartłomiej Furman

Beilstein J. Org. Chem. 2021, 17, 115–123, doi:10.3762/bjoc.17.12

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  • ones in this work – fused iminosugar-tetrazoles – which have shown inhibition properties against bovine liver α-ᴅ-glucuronidase and human β-ʟ-iduronidase [29]. Moreover, there are numerous reports of the organocatalytic activity of chiral aminotriazoles and aminotetrazoles in number of reactions, such
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Published 13 Jan 2021

Combining the Ugi-azide multicomponent reaction and rhodium(III)-catalyzed annulation for the synthesis of tetrazole-isoquinolone/pyridone hybrids

  • Gerardo M. Ojeda,
  • Prabhat Ranjan,
  • Pavel Fedoseev,
  • Lisandra Amable,
  • Upendra K. Sharma,
  • Daniel G. Rivera and
  • Erik V. Van der Eycken

Beilstein J. Org. Chem. 2019, 15, 2447–2457, doi:10.3762/bjoc.15.237

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  • prospect of the tetrazole hybridization strategy in drug discovery. Among the most versatile methods for obtaining tetrazoles are the Ugi-azide four-component reaction (Ugi-azide-4CR) [14][15][16] and the 1,3-dipolar cycloaddition of azides with (acyl)cyanides [17][18]. The Ugi-azide-4CR enables the
  • comprises an initial Ugi-azide-4CR followed by a cyclization step, involving some of the reactive functionalities previously installed in the multicomponent process [20][21][22][23][24][25][26]. However, the interplay between the multicomponent synthesis of tetrazoles and metal-catalyzed cyclization
  • aldehydes were reacted in parallel with trimethylsilyl azide and tritylamine under microwave irradiation – followed by removal of the trityl group and acylation to afford the N-acylaminomethyltetrazoles 1a–s and 2a–l. The functionalized tetrazoles were obtained in moderate to excellent yields over three
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Published 16 Oct 2019

Synthesis of (macro)heterocycles by consecutive/repetitive isocyanide-based multicomponent reactions

  • Angélica de Fátima S. Barreto and
  • Carlos Kleber Z. Andrade

Beilstein J. Org. Chem. 2019, 15, 906–930, doi:10.3762/bjoc.15.88

Graphical Abstract
  • products has been reviewed [15][16] and this review will focus only on IMCRs. Consecutive IMCRs Synthesis of small-ring heterocycles (tetrazoles, ketopiperazines, imidazoles, imidazolines and thiazoles) The use of consecutive Ugi reactions in the synthesis of heterocycles was first described in 2001 by Ugi
  • and Constabel [17] who developed a solid phase strategy to obtain tetrazoles and hydantoinimide derivatives successfully (Scheme 2). In each case, the synthetic sequence began with a classical Ugi reaction between N-Fmoc glycine (1), isobutyraldehyde (2) and tert-butyl isocyanide (4) in the presence
  • mixture of diastereomers). Recently, our research group [22] carried out the synthesis of bis(1,5-disubstituted tetrazoles) 14 using two consecutive Ugi reactions (Scheme 4). The synthetic strategy was based on two hydrazino-Ugi-azide reactions and a hydrazinolysis step for the synthesis of acylhydrazino
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Published 15 Apr 2019

Selectivity in multiple multicomponent reactions: types and synthetic applications

  • Ouldouz Ghashghaei,
  • Francesca Seghetti and
  • Rodolfo Lavilla

Beilstein J. Org. Chem. 2019, 15, 521–534, doi:10.3762/bjoc.15.46

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  • illustrate a repetitive Ugi 4CR-deprotection-Ugi 4CR protocol to obtain peptide nucleic acid (PNA) oligomers (Scheme 13A) [49], peptidic tetrazoles and hydantoinimides (Scheme 13B) [50], respectively. Incidentally, the later processes take place in solid phase, which enhances their synthetic suitability. The
  • sequence. High order MMCRs. A) Ugi/Ugi–Smiles 7C combination; B) imidazoline-N-cyanomethylamide-Ugi union leading to an 8CR. Consecutive Ugi 4CR-deprotection–Ugi 4CR strategy towards A) PNA oligomers and B) peptidic tetrazoles and hydantionimides. Sequential Ugi 4CR-deprotection access to cyclopeptoids
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Published 21 Feb 2019

Synthetic mRNA capping

  • Fabian Muttach,
  • Nils Muthmann and
  • Andrea Rentmeister

Beilstein J. Org. Chem. 2017, 13, 2819–2832, doi:10.3762/bjoc.13.274

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  • tetrazoles. Even photo-crosslinking moieties were enzymatically transferred to the N7-position of the mRNA cap from suitable AdoMet analogues. Notably, quantitative modification at the N7-position was achieved [96]. Diazirine and aryl–azide photo-crosslinker moieties were functional showing cross-linking to
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Published 20 Dec 2017

Consecutive hydrazino-Ugi-azide reactions: synthesis of acylhydrazines bearing 1,5-disubstituted tetrazoles

  • Angélica de Fátima S. Barreto,
  • Veronica Alves dos Santos and
  • Carlos Kleber Z. Andrade

Beilstein J. Org. Chem. 2017, 13, 2596–2602, doi:10.3762/bjoc.13.256

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  • bearing 1,5-disubstituted tetrazoles. Our strategy was accomplished in only three steps: first, a one-pot hydrazino-Ugi-azide four-component reaction; second a hydrazinolysis and finally an additional hydrazino-Ugi-azide reaction. This sequence provides the title compounds in moderate to excellent yields
  • . The products synthesized herein contain functional groups within their structures that can be easily modified to obtain new acylhydrazino 1,5-disubstituted tetrazoles. Keywords: acylhydrazines; consecutive Ugi reactions; 1,5-disubstituted tetrazoles; isocyanide-based multicomponent reactions (IMCRs
  • ); Ugi-azide reaction; Introduction Tetrazoles are extensively studied, useful non-natural heterocyclic skeletons with the highest nitrogen content among the stable heterocycles [1][2]. The tetrazole-ring system has a variety of applications in organic chemistry, coordination chemistry, and agriculture
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Published 05 Dec 2017

15N-Labelling and structure determination of adamantylated azolo-azines in solution

  • Sergey L. Deev,
  • Alexander S. Paramonov,
  • Tatyana S. Shestakova,
  • Igor A. Khalymbadzha,
  • Oleg N. Chupakhin,
  • Julia O. Subbotina,
  • Oleg S. Eltsov,
  • Pavel A. Slepukhin,
  • Vladimir L. Rusinov,
  • Alexander S. Arseniev and
  • Zakhar O. Shenkarev

Beilstein J. Org. Chem. 2017, 13, 2535–2548, doi:10.3762/bjoc.13.250

Graphical Abstract
  • membranes. The conjugation of adamantane with heterocyclic compounds also provides a method to modify the pharmacological profile and frequently leads to a new type of bioactivity. For example, N-adamantyl tetrazoles 1 and 2 (Figure 1A) demonstrate lower toxicity and, simultaneously, more potent activity
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Published 29 Nov 2017

Synthesis, effect of substituents on the regiochemistry and equilibrium studies of tetrazolo[1,5-a]pyrimidine/2-azidopyrimidines

  • Elisandra Scapin,
  • Paulo R. S. Salbego,
  • Caroline R. Bender,
  • Alexandre R. Meyer,
  • Anderson B. Pagliari,
  • Tainára Orlando,
  • Geórgia C. Zimmer,
  • Clarissa P. Frizzo,
  • Helio G. Bonacorso,
  • Nilo Zanatta and
  • Marcos A. P. Martins

Beilstein J. Org. Chem. 2017, 13, 2396–2407, doi:10.3762/bjoc.13.237

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  • solution (CDCl3 and DMSO-d6), while azide species 7a–h were observed in the solid state. Notwithstanding, although only the tetrazoles were observed for compounds 6a–c in solution, the conditions at which the compounds were introduced can induce the equilibrium to favor the presence of the azides (e.g
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Published 10 Nov 2017

Metal-free hydroarylation of the side chain carbon–carbon double bond of 5-(2-arylethenyl)-3-aryl-1,2,4-oxadiazoles in triflic acid

  • Anna S. Zalivatskaya,
  • Dmitry S. Ryabukhin,
  • Marina V. Tarasenko,
  • Alexander Yu. Ivanov,
  • Irina A. Boyarskaya,
  • Elena V. Grinenko,
  • Ludmila V. Osetrova,
  • Eugeniy R. Kofanov and
  • Aleksander V. Vasilyev

Beilstein J. Org. Chem. 2017, 13, 883–894, doi:10.3762/bjoc.13.89

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  • investigation of their properties are of ongoing interest in chemistry and medicine. Based on our previous works on reactions of cinnamides [24] and 5-styryl-2H-tetrazoles [25] with arenes under superelectrophilic activation with Brønsted or Lewis superacids, we turned our attention towards the hydroarylation
  • our recent study on the hydroarylation of styryl tetrazoles [25]. Indeed, under MW activation the reactions in TfOH proceeded within 5–20 min at 120 °C (Table 3, entries 4–9) with formation of oxadiazoles 2 in high yields (compare the yields under thermal and MW heating in Table 3). The MW-activated
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Published 11 May 2017

Robust C–C bonded porous networks with chemically designed functionalities for improved CO2 capture from flue gas

  • Damien Thirion,
  • Joo S. Lee,
  • Ercan Özdemir and
  • Cafer T. Yavuz

Beilstein J. Org. Chem. 2016, 12, 2274–2279, doi:10.3762/bjoc.12.220

Graphical Abstract
  • acids, tetrazoles, amines or amidoximes [14][15][16][17]. To the best of our knowledge the nitrile functionality has not been explored in other types of porous polymers, except our earlier work [18]. Herein we report the synthesis of two new cyanovinylene-bridged covalent organic polymers, indexed as
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Published 28 Oct 2016

(Thio)urea-mediated synthesis of functionalized six-membered rings with multiple chiral centers

  • Giorgos Koutoulogenis,
  • Nikolaos Kaplaneris and
  • Christoforos G. Kokotos

Beilstein J. Org. Chem. 2016, 12, 462–495, doi:10.3762/bjoc.12.48

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  • bonds, such as carboxylic acids, tetrazoles, thioureas, etc. The selectivity observed, when steric shielding interaction is employed, is due to the bulky group of the catalyst. This group shields one face of the enamine to provide the selectivity. The third most valuable and studied mode of activation
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Published 10 Mar 2016

Diastereoselective and enantioselective conjugate addition reactions utilizing α,β-unsaturated amides and lactams

  • Katherine M. Byrd

Beilstein J. Org. Chem. 2015, 11, 530–562, doi:10.3762/bjoc.11.60

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  • studies as the basis for the development of the 1,4-addition of N-heterocycles to α,β-unsaturated imides. They applied both substituted and unsubstituted purines, benzotriazole, and 5-substituted tetrazoles as nucleophiles to this reaction, which resulted in moderate to excellent yields and excellent
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Published 23 Apr 2015

Isocyanide-based multicomponent reactions towards cyclic constrained peptidomimetics

  • Gijs Koopmanschap,
  • Eelco Ruijter and
  • Romano V.A. Orru

Beilstein J. Org. Chem. 2014, 10, 544–598, doi:10.3762/bjoc.10.50

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  • ease of preparation via IMCRs [27][28][29]. First, the β-lactams will be described followed by five-membered rings varying from pyrrolidines to tetrazoles based amide bond isosteres. Examples of the six-membered rings showing peptide like-properties are the piperazines, homoprolines, dihydropyrimidones
  • deprotected and cyclized the linear products towards the oxazole derivatives 146 in yields up to 73%. Tetrazoles In medicinal chemistry, tetrazoles are often used as carboxylic acid bio-isosteres due to their comparable acidity [114]. However, studies towards 1,5-disubstituted tetrazoles have shown that these
  • approach and resulted in a library of tetrazoles 150 with excellent yields and high enantiomeric excesses (51–97%). For this enantioselectivity, the authors proposed a mechanism as shown in Scheme 46. In addition, from their study it became clear that the azide moiety is directly transferred from HN3 and
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Published 04 Mar 2014
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