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Search for "L-proline" in Full Text gives 61 result(s) in Beilstein Journal of Organic Chemistry.

Synthesis of 5-arylidenerhodanines in L-proline-based deep eutectic solvent

  • Stéphanie Hesse

Beilstein J. Org. Chem. 2023, 19, 1537–1544, doi:10.3762/bjoc.19.110

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Published 04 Oct 2023

Ugi reaction-derived prolyl peptide catalysts grafted on the renewable polymer polyfurfuryl alcohol for applications in heterogeneous enamine catalysis

  • Alexander F. de la Torre,
  • Gabriel S. Scatena,
  • Oscar Valdés,
  • Daniel G. Rivera and
  • Márcio W. Paixão

Beilstein J. Org. Chem. 2019, 15, 1210–1216, doi:10.3762/bjoc.15.118

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  • incorporate proline [15] and the furan functionality into pseudo-peptide catalysts. As shown in Scheme 2, Boc-L-proline and acetone were employed as acid and oxo components, respectively, in combination either with furfurylamine and cyclohexyl isocyanide or with (S)-α-methylbenzylamine and furfuryl isocyanide
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Published 04 Jun 2019

New α- and β-cyclodextrin derivatives with cinchona alkaloids used in asymmetric organocatalytic reactions

  • Iveta Chena Tichá,
  • Simona Hybelbauerová and
  • Jindřich Jindřich

Beilstein J. Org. Chem. 2019, 15, 830–839, doi:10.3762/bjoc.15.80

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  • as the promoter (not in a catalytic amount) of a Henry reaction and obtained the product with 99% ee. Subsequently, Doyagüez et al. [17] attached L-proline to β-CD via different linkers (including a triazole linker) and used the resulting organocatalysts in an aldol reaction in water, albeit with a
  • aldol reaction catalyzed by β-CD with L-proline attached through a urea moiety. Therefore, mainly proline-derived CDs have been previously tested as organocatalysts and mainly in aldol-type reactions. The limited number of functional groups attached to CD comprising mainly L-proline restricts the
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Published 01 Apr 2019

Mechanistic studies of an L-proline-catalyzed pyridazine formation involving a Diels–Alder reaction with inverse electron demand

  • Anne Schnell,
  • J. Alexander Willms,
  • S. Nozinovic and
  • Marianne Engeser

Beilstein J. Org. Chem. 2019, 15, 30–43, doi:10.3762/bjoc.15.3

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  • Anne Schnell J. Alexander Willms S. Nozinovic Marianne Engeser University of Bonn, Kekulé-Institute of Organic Chemistry and Biochemistry, Gerhard-Domagk-Str. 1, D-53121 Bonn, Germany 10.3762/bjoc.15.3 Abstract The mechanism of an L-proline-catalyzed pyridazine formation from acetone and aryl
  • -substituted tetrazines via a Diels–Alder reaction with inverse electron demand has been studied with NMR and with electrospray ionization mass spectrometry. A catalytic cycle with three intermediates has been proposed. An enamine derived from L-proline and acetone acts as an electron-rich dienophile in a [4
  • progress of reactants and products could be monitored very well. In experiments with the charge-tagged L-proline-derived catalyst, all three intermediates of the proposed catalytic cycle were detected and characterized by collision-induced dissociation (CID) experiments. Some of the CID pathways of
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Published 03 Jan 2019

Asymmetric Michael addition reactions catalyzed by calix[4]thiourea cyclohexanediamine derivatives

  • Zheng-Yi Li,
  • Hong-Xiao Tong,
  • Yuan Chen,
  • Hong-Kui Su,
  • Tangxin Xiao,
  • Xiao-Qiang Sun and
  • Leyong Wang

Beilstein J. Org. Chem. 2018, 14, 1901–1907, doi:10.3762/bjoc.14.164

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  • hydrophobic cavity and chiral sites during a catalytic process [24][25]. Recently, we have reported a series of different functionalized organic catalysts based on calixarenes [26][34][35][36][37][38]. For example, we have been developed a calix[4]arene-based L-proline catalyst able to catalyze aldol
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Published 25 Jul 2018

Recent applications of chiral calixarenes in asymmetric catalysis

  • Mustafa Durmaz,
  • Erkan Halay and
  • Selahattin Bozkurt

Beilstein J. Org. Chem. 2018, 14, 1389–1412, doi:10.3762/bjoc.14.117

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  • . reported the synthesis of a series of prolinamide and hydroxyprolinamide organocatalysts based on the calix[4]arene scaffold (Figure 8) [59]. Treatment of Boc-protected-L-proline or hydroxyproline with various aminocalix[4]arenes under one of the appropriate coupling conditions and subsequent deprotection
  • good yields (up to >99%) with up to 97% ee and up to 85:15 dr (Scheme 20). In order to exploit the hydrophobic cavity of the calixarene platform in aldol reactions, two novel p-tert-butylcalix[4]arene-based chiral organocatalysts bearing L-proline units on the lower rim have been reported by Yilmaz et
  • al. [60]. Coupling of calixarene diamine 60 with Boc-L-proline 74 or calixarene diacid chloride 76 with N-(2-aminoethyl)-N'-(tert-butoxycarbonyl)-L-prolinamide 77 and subsequent deprotection afforded catalysts 75 and 78 in good yields (Scheme 21). In 2014, an upper rim functionalized calix[4]arene
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Published 08 Jun 2018

5-Aminopyrazole as precursor in design and synthesis of fused pyrazoloazines

  • Ranjana Aggarwal and
  • Suresh Kumar

Beilstein J. Org. Chem. 2018, 14, 203–242, doi:10.3762/bjoc.14.15

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  • TFA as promoter at 80 °C to 140 °C. A three-component reaction of 5-aminopyrazole 16, 4-hydroxycoumarin (50) and aldehydes 47 was studied by Liu et al. [55] in various solvents like acetonitrile, dichloromethane, toluene and DMSO in the presence of catalysts like ZrCl4, InCl3, FeCl3, L-proline etc
  • catalysts like L-proline, InCl3 and ZrCl4 also resulted in the formation of o-hydroxyphenylpyrazolo[3,4-b]pyridine derivatives 85 but no product was formed in iodine- and acetic acid-catalyzed reactions (Scheme 22). Huang et al. [70] investigated a three-component reaction of β-ketonitriles 15, 5
  • -1-(methylthio)-2-nitroethenamine (96) was studied by Gunasekaran et al. [77] (Scheme 28) in ethanol in presence of 30 mol % L-proline as catalyst at 78 °C which resulted in the production of pyrazolo[3,4-b]pyridine derivatives 97 in excellent yields. Jiang et al. [78] have investigated a microwave
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Published 25 Jan 2018

The use of 4,4,4-trifluorothreonine to stabilize extended peptide structures and mimic β-strands

  • Yaochun Xu,
  • Isabelle Correia,
  • Tap Ha-Duong,
  • Nadjib Kihal,
  • Jean-Louis Soulier,
  • Julia Kaffy,
  • Benoît Crousse,
  • Olivier Lequin and
  • Sandrine Ongeri

Beilstein J. Org. Chem. 2017, 13, 2842–2853, doi:10.3762/bjoc.13.276

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  • in good yield starting from the N-benzylation of L-proline in the presence of KOH, then activation of the carboxylic acid functionality of 10 using SOCl2 at low temperature, followed by condensation with 2-aminobenzophenone (Scheme 2). Complexation of 11 with nickel nitrate and glycine under basic
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Published 21 Dec 2017

Binding abilities of a chiral calix[4]resorcinarene: a polarimetric investigation on a complex case of study

  • Marco Russo and
  • Paolo Lo Meo

Beilstein J. Org. Chem. 2017, 13, 2698–2709, doi:10.3762/bjoc.13.268

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  • Polarimetry was used to investigate the binding abilities of a chiral calix[4]resorcinarene derivative, bearing L-proline subunits, towards a set of suitably selected organic guests. The simultaneous formation of 1:1 and 2:1 host–guest inclusion complexes was observed in several cases, depending on both the
  • can be generally achieved by linking suitable donor groups to the aromatic scaffold. Among the virtually countless examples available in recent literature, L-proline-modified CAs constitute an interesting subject of study [19][20][21][22][23][24][25][26][27][28][29][30][31][32]. Proline-based systems
  • thermodynamic aspects of the binding phaenomena involving CAs, as well as at verifying the possibility to extend the use of polarimetry as an investigation tool to these systems, in the present work we studied the binding abilities of an easily accessible L-proline-derivatized calix[4]resorcinarene, namely
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Published 15 Dec 2017

Development of a fluorogenic small substrate for dipeptidyl peptidase-4

  • Futa Ogawa,
  • Masanori Takeda,
  • Kanae Miyanaga,
  • Keita Tani,
  • Ryuji Yamazawa,
  • Kiyoshi Ito,
  • Atsushi Tarui,
  • Kazuyuki Sato and
  • Masaaki Omote

Beilstein J. Org. Chem. 2017, 13, 2690–2697, doi:10.3762/bjoc.13.267

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  • ]-L-proline methyl ester (5): N-Phtaloylglycine (4 mmol), 1-hydroxybenzotriazole (4.4 mmol) and N-ethyl-N’(3-dimethylaminopropyl)carbodiimide hydrochloride (10 mmol) were placed in a microwave vial. To the microwave vial was added anhydrous DMF (8 mL) and anhydrous N,N-diisopropylethylamine (20 mmol
  • ), and the mixture was stirred at room temperature. After the reaction mixture was stirred for 5 min, to the microwave vial was added L-proline methyl ester hydrochloride (4.8 mmol) and the mixture was heated by microwave irradiation for 20 min at 120 °C. The resulting mixture was quenched with water and
  • extracted with AcOEt. The AcOEt layer was washed with brine and dried over MgSO4. The solvent was removed in vacuo and the residue was purified by column chromatography to give 1-[2-(1,3-dihydro-1,3-dioxo-2H-isoindol-2-yl)acetyl]-L-proline methyl ester (5) in 86% yield (1.09 g, 3.4 mmol). A white solid: mp
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Published 14 Dec 2017

A concise and practical stereoselective synthesis of ipragliflozin L-proline

  • Shuai Ma,
  • Zhenren Liu,
  • Jing Pan,
  • Shunli Zhang and
  • Weicheng Zhou

Beilstein J. Org. Chem. 2017, 13, 1064–1070, doi:10.3762/bjoc.13.105

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  • 10.3762/bjoc.13.105 Abstract A concise and practical stereoselective synthesis of ipragliflozin L-proline was presented starting from 2-[(5-iodo-2-fluorophenyl)methyl]-1-benzothiophene and 2,3,4,6-tetra-O-pivaloyl-α-D-glucopyranosyl bromide without catalyst via iodine–lithium–zinc exchange. The overall
  • yield was 52% in three steps and the product purity was excellent. Two key diastereomers were prepared with efficient and direct access to the α-C-arylglucoside. Keywords: arylzinc derivative; β-C-arylglucoside; diastereomer impurity; ipragliflozin L-proline; stereoselective synthesis; Introduction
  • , (ipragliflozin L-proline 1, (1S)-1,5-anhydro-1-C-{3-[(1-benzothiophen-2-yl)methyl]-4-fluorophenyl}-D-glucitol (2S)-pyrrolidine-2-carboxylic acid (1:1), Figure 1), was launched into the Japanese market in January 2014 [7][8]. Due to its efficacy and safety, 1 can be used as monotherapy or in combination with
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Published 01 Jun 2017

Synthesis of D-manno-heptulose via a cascade aldol/hemiketalization reaction

  • Yan Chen,
  • Xiaoman Wang,
  • Junchang Wang and
  • You Yang

Beilstein J. Org. Chem. 2017, 13, 795–799, doi:10.3762/bjoc.13.79

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  • L-proline at room temperature for three days proceeded sluggishly, leading to the desired product in a very low yield. Gratifyingly, when the L-proline-catalyzed aldol reaction was performed at 70 °C for one day, the TLC indicated the complete consumption of aldehyde 3, and the generated 4,5-anti
  • excellent anti-selectivity for the L-proline-catalyzed aldol reaction can be explained by the Houk–List transition state model [43][44][45]. Compound 13 was then acetylated to afford differentially protected ketoheptose building block 2 in 83% yield. The structure of 2 was unambiguously confirmed by 1H, 13C
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Published 28 Apr 2017

Ultrasound-promoted organocatalytic enamine–azide [3 + 2] cycloaddition reactions for the synthesis of ((arylselanyl)phenyl-1H-1,2,3-triazol-4-yl)ketones

  • Gabriel P. Costa,
  • Natália Seus,
  • Juliano A. Roehrs,
  • Raquel G. Jacob,
  • Ricardo F. Schumacher,
  • Thiago Barcellos,
  • Rafael Luque and
  • Diego Alves

Beilstein J. Org. Chem. 2017, 13, 694–702, doi:10.3762/bjoc.13.68

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  • , entries 9 and 10). Reactions performed with other catalysts (L-proline and pyrrolidine) gave lower yields of 3a than those using 1 mol % of Et2NH (Table 1, entry 7 vs entries 11 and 12). From Table 1, optimum reaction conditions to obtain 1-(5-methyl-1-(2-(phenylselanyl)phenyl)-1H-1,2,3-triazol-4-yl)ethan
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Published 11 Apr 2017

Transition-metal-catalyzed synthesis of phenols and aryl thiols

  • Yajun Liu,
  • Shasha Liu and
  • Yan Xiao

Beilstein J. Org. Chem. 2017, 13, 589–611, doi:10.3762/bjoc.13.58

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  • combination of CuI and bidentate ligand could promote the conversion of aryl halides to the corresponding phenols in a mixed solvent system of DMSO/H2O (1:1). Using iodobenzene as model substrate, various ligands were successfully tested: L-proline (yield 70%), 2-hydroxyacetophenone (yield 85%), N,N-dimethyl
  • , the Qi group reported a similar protocol to achieve the coupling of aryl iodides and thiourea by CuI/L-proline-catalyzed reaction in the presence of Cs2CO3 as base in DMSO [98]. In 2004, the Itoh group demonstrated that Pd2(dba)3/Xantphos (L14) could catalyze the coupling of aryl halides and aryl or
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Published 23 Mar 2017

Pd- and Cu-catalyzed approaches in the syntheses of new cholane aminoanthraquinone pincer-like ligands

  • Nikolay V. Lukashev,
  • Gennadii A. Grabovyi,
  • Dmitry A. Erzunov,
  • Alexey V. Kazantsev,
  • Gennadij V. Latyshev,
  • Alexei D. Averin and
  • Irina P. Beletskaya.

Beilstein J. Org. Chem. 2017, 13, 564–570, doi:10.3762/bjoc.13.55

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  • ability, chromophoric properties, and antitumor activity as well [40]. We compared several CuI-based catalytic systems in the arylation of amine 3b with 4-iodotoluene as a model substrate. We found out that the CuI/L-proline combination with K2CO3 led to the target aniline 4 in excellent yield (Scheme 3
  • anthraquinones. Further attempts to apply the Cu-based catalytic system in this reaction with L-proline and other commonly used N,N, N,O, and O,O bidentate ligands were fruitless. Previously, some of us successfully used the classic conditions of the Buchwald–Hartwig amination for the preparation of bis-amino
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Published 20 Mar 2017

Multicomponent synthesis of spiropyrrolidine analogues derived from vinylindole/indazole by a 1,3-dipolar cycloaddition reaction

  • Manjunatha Narayanarao,
  • Lokesh Koodlur,
  • Vijayakumar G. Revanasiddappa,
  • Subramanya Gopal and
  • Susmita Kamila

Beilstein J. Org. Chem. 2016, 12, 2893–2897, doi:10.3762/bjoc.12.288

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  • stereospecific cyclic adducts. Keywords: L-proline; ninhydrin; sarcosine; spiropyrrolidine; 5-vinylindazole; 5-vinylindole; Introduction The [3 + 2] cycloaddition between azomethine ylides and olefins/acetylene as dipolarophiles is an important reaction to access a number of novel heterocyclic spiro scaffolds
  • in the construction of functionalized spiro compounds. We report herein the facile synthesis of novel spiropyrrolidine compounds through a one-pot three-component reaction involving N-substituted vinylindole/indazole, ninhydrin and sarcosine/L-proline. The present multicomponent reaction (MCR) leads
  • cyclic amino acid L-proline (6) which was reacted with 3 under the optimized reaction conditions. The corresponding stereo- and regiospecific isomers of spiropyrrolidines 8 were obtained in good yields (Table 1, entries 12–22). The stereochemical assignments for compounds 8 were supported by 2D NMR data
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Published 29 Dec 2016

Towards the development of continuous, organocatalytic, and stereoselective reactions in deep eutectic solvents

  • Davide Brenna,
  • Elisabetta Massolo,
  • Alessandra Puglisi,
  • Sergio Rossi,
  • Giuseppe Celentano,
  • Maurizio Benaglia and
  • Vito Capriati

Beilstein J. Org. Chem. 2016, 12, 2620–2626, doi:10.3762/bjoc.12.258

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  • synthesis of enantiomerically enriched products by testing different experimental set-ups. L-Proline-catalysed cross-aldol reactions were efficiently performed in continuo, with high yield (99%), anti-stereoselectivity, and enantioselectivity (up to 97% ee). Moreover, using two different DES mixtures, the
  • chiral products [2]. Among all the possible options, the L-proline-catalysed stereoselective cross-aldol reaction remains the greener choice. After the pioneering works by List and Barbas [3], a huge effort was made by the scientific community to improve both the yield and the stereoselectivity of the
  • recently reported that L-proline-catalysed direct aldol reactions may be successfully carried out also in deep eutectic solvents (DESs) [20][21][22]. Recently, our group reported on the possibility of running organocatalyzed, stereoselective reactions in DESs, promoted by an enantiopure primary amine, with
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Published 05 Dec 2016

p-Nitrophenyl carbonate promoted ring-opening reactions of DBU and DBN affording lactam carbamates

  • Madhuri Vangala and
  • Ganesh P Shinde

Beilstein J. Org. Chem. 2016, 12, 2086–2092, doi:10.3762/bjoc.12.197

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  • explore the structural diversity using different p-nitrophenyl carbonates which were prepared by treating an alcohol with p-nitrophenyl chloroformate in CH2Cl2 using pyridine as a base. Thus, homopropargyl alcohol, decanol, cholesterol and N-Boc-trans-4-hydroxy-L-proline methyl ester gave the
  • -caprolactam of N-Boc-trans-4-hydroxy-L-proline methyl ester 5b, rotamers due to flipping of the N-Boc group were obtained. Owing to the importance of sugar caprolactams in polymerizations, 2,3-di-O-benzyl-4-O-p-methoxybenzyl-α-methyl-D-glucopyranoside and 2,3,4-tri-O-benzoyl-α-methyl-D-glucopyranoside [30][31
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Published 26 Sep 2016

Stereo- and regioselectivity of the hetero-Diels–Alder reaction of nitroso derivatives with conjugated dienes

  • Lucie Brulíková,
  • Aidan Harrison,
  • Marvin J. Miller and
  • Jan Hlaváč

Beilstein J. Org. Chem. 2016, 12, 1949–1980, doi:10.3762/bjoc.12.184

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  • )-alkoxyamine 123. The reaction of the L-proline derivative 124 and its analogues 125 and 126 with cyclohexadiene (120) gave relatively low de values [112] (Scheme 25). A more comprehensive study on amino acid based acylnitroso dienophiles was performed by Miller et al. [28][113]. For a number of L- and D-amino
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Published 01 Sep 2016

Rh-Catalyzed reductive Mannich-type reaction and its application towards the synthesis of (±)-ezetimibe

  • Motoyuki Isoda,
  • Kazuyuki Sato,
  • Yurika Kunugi,
  • Satsuki Tokonishi,
  • Atsushi Tarui,
  • Masaaki Omote,
  • Hideki Minami and
  • Akira Ando

Beilstein J. Org. Chem. 2016, 12, 1608–1615, doi:10.3762/bjoc.12.157

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  • asymmetric Mannich reaction using a Lewis acid catalyst [1]. (L)-Proline is known as an excellent promoter for the Mannich reaction [2][3][4][5][6], and besides this, the reaction of the silyl enol ether derivatives with imines was used as an effective method [7][8][9]. In this situation, a wide variety of
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Published 27 Jul 2016

Catalytic asymmetric synthesis of biologically important 3-hydroxyoxindoles: an update

  • Bin Yu,
  • Hui Xing,
  • De-Quan Yu and
  • Hong-Min Liu

Beilstein J. Org. Chem. 2016, 12, 1000–1039, doi:10.3762/bjoc.12.98

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  • cyanomethylation of isatins with cyanoacetic acid using the L-proline-derived thiourea as the catalyst (cat. 30), giving the cyanomethylated products in good yields (up to 82%) and with excellent enantioselectivities (up to 90% ee, Scheme 44) [61]. The reactions were performed in methyl tert-butyl ether at room
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Published 18 May 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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  • enolate of cyclohexanone. Two subsequent aldol reactions furnished the desired product. Miscellaneous thiourea-catalysts and catalytic systems promoting asymmetric transformations that lead to a six-membered ring The discovery of L-proline as an organocatalyst for the aldol reaction was of major
  • importance and therefore many asymmetric reactions that could not be achieved, are now possible. There are many reactions catalyzed by L-proline, affording stereoselective products in high yields and enantiomeric excess, nevertheless there are many limitations. For that reason, it has emerged the need for
  • the synthesis of new molecules that would have the same reactivity with L-proline in catalyzed asymmetric reactions and better properties. The combination of proline with other molecules to provide a catalytic system was exploited by Ramachary and co-workers in an enamine-based Michael reaction
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Published 10 Mar 2016

Diastereoselective Ugi reaction of chiral 1,3-aminoalcohols derived from an organocatalytic Mannich reaction

  • Samantha Caputo,
  • Andrea Basso,
  • Lisa Moni,
  • Renata Riva,
  • Valeria Rocca and
  • Luca Banfi

Beilstein J. Org. Chem. 2016, 12, 139–143, doi:10.3762/bjoc.12.15

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  • -Boc imines 2 and catalytic L-proline [29][30], followed by reduction of 3 and cleavage of the Boc group. This short and straightforward synthesis allows the introduction of 2 diversity inputs (R1 and Ar), whereas stereochemical diversity can also be explored using D-proline or different, anti
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Published 26 Jan 2016

Recent advances in copper-catalyzed asymmetric coupling reactions

  • Fengtao Zhou and
  • Qian Cai

Beilstein J. Org. Chem. 2015, 11, 2600–2615, doi:10.3762/bjoc.11.280

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  • et al. [39] has been the only example of this type of catalytic asymmetric coupling reaction. They reacted 2-halotrifluoroacetanilides with 2-methylacetoacetates under the catalysis of CuI/trans-4-hydroxy-L-proline and obtained the arylated products in good yields and enantioselectivities. In this
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Published 15 Dec 2015

Cu(I)-catalyzed N,N’-diarylation of natural diamines and polyamines with aryl iodides

  • Svetlana P. Panchenko,
  • Alexei D. Averin,
  • Maksim V. Anokhin,
  • Olga A. Maloshitskaya and
  • Irina P. Beletskaya

Beilstein J. Org. Chem. 2015, 11, 2297–2305, doi:10.3762/bjoc.11.250

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  • of diamines and spermine while the CuI/L-proline/EtCN system proved to be preferable for the diarylation of other tri- and tetraamines like spermidine, norspermidine and norspermine. Keywords: amination; aryl amines; aryl iodides; copper catalysis; polyamines; Introduction Natural diamines and
  • iodides in the copper-catalyzed amination of di- and polyamines providing mainly N-monoaryl derivatives [31]. On the basis of our recent investigations, in order to obtain N,N’-diaryl derivatives, we employed the most suitable catalytic systems, CuI/L-proline (L1) and CuI/2-(isobutyryl)cyclohexanone (L2
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Published 24 Nov 2015
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