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Search for "enolate" in Full Text gives 241 result(s) in Beilstein Journal of Organic Chemistry. Showing first 200.

Synthesis of β-triazolylenones via metal-free desulfonylative alkylation of N-tosyl-1,2,3-triazoles

  • Soumyaranjan Pati,
  • Renata G. Almeida,
  • Eufrânio N. da Silva Júnior and
  • Irishi N. N. Namboothiri

Beilstein J. Org. Chem. 2021, 17, 762–770, doi:10.3762/bjoc.17.66

Graphical Abstract
  • to exist in twist-boat conformation. When R = H, the pseudoaxial approach of the nucleophile towards the β-position leading to the enolate intermediate VI (R = H) bearing pseudoequatorially oriented OTs group or the pseudoequatorial approach of the nucleophile leading to the intermediate VII (R = H
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Published 31 Mar 2021

α,γ-Dioxygenated amides via tandem Brook rearrangement/radical oxygenation reactions and their application to syntheses of γ-lactams

  • Mikhail K. Klychnikov,
  • Radek Pohl,
  • Ivana Císařová and
  • Ullrich Jahn

Beilstein J. Org. Chem. 2021, 17, 688–704, doi:10.3762/bjoc.17.58

Graphical Abstract
  • corresponding acyclic or cyclic allylic amines in very good yields (see Supporting Information File 1 for details). Their subsequent α-deprotonation by LDA followed by treatment with chlorotrimethylsilane at −78 °C [81] resulted in clean C-silylation of the corresponding enolate providing silylacetamides 8a–m
  • enolate formation from 8h,i with s-BuLi, a deuterium quenching experiment with D2O was performed. Analysis by 1H NMR spectroscopy revealed 87 and 91% deuterium incorporation, respectively, indicating that a deprotonation occurred, but the epoxide opening was hampered by the combination of a sterically
  • diastereomeric ratios. To confirm enolate formation, lactam 12f was deprotonated by LDA at −78 °C and quenched with D2O, resulting in lactam 12f with 86% deuterium incorporation, but no change in the diastereomeric ratio. Spirolactams 12m,n were also subjected to epimerization (Scheme 4). The change of the
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Published 09 Mar 2021

Progress in the total synthesis of inthomycins

  • Bidyut Kumar Senapati

Beilstein J. Org. Chem. 2021, 17, 58–82, doi:10.3762/bjoc.17.7

Graphical Abstract
  • followed by subsequent oxidation produced aldehyde (Z,Z)-61. After extensive unsuccessful efforts to produce enantiopure aldol fragment (Z,Z)-62 using the N-tosyl-ʟ-valine-derived oxazaborolidinone, the racemic synthesis of (Z,Z)-(rac)-62 was achieved by utilizing the lithium enolate of methyl isobutyrate
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Published 07 Jan 2021

Recent progress in the synthesis of homotropane alkaloids adaline, euphococcinine and N-methyleuphococcinine

  • Dimas J. P. Lima,
  • Antonio E. G. Santana,
  • Michael A. Birkett and
  • Ricardo S. Porto

Beilstein J. Org. Chem. 2021, 17, 28–41, doi:10.3762/bjoc.17.4

Graphical Abstract
  • potassium enolate to neutral η3-allylmolibdenum. The crude anionic intermediate 72 was treated with nitrosonium hexafluorophosphate in DME to provide bicyclic enone (−)-73 with 80% yield over two steps. Protection of the non-conjugated ketone (−)-73 as an acetal derivative occurred selectively to provide
  • -sulfinimes (+)-95 and (+)-96 were added to a −78 °C solution of the N-methoxy-N-methylacetamide enolate 102, leading to Weinreb amides (+)-97 and (+)-98, respectively, with good yields and high diastereoisomeric excesses (Scheme 11). The reaction of (+)-97 and (+)-98 with five equivalents of methylmagnesium
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Published 05 Jan 2021

All-carbon [3 + 2] cycloaddition in natural product synthesis

  • Zhuo Wang and
  • Junyang Liu

Beilstein J. Org. Chem. 2020, 16, 3015–3031, doi:10.3762/bjoc.16.251

Graphical Abstract
  • [52][53] with the allenyl rhodium to the enal and gives the allenyl rhodium species C. A Conia-ene-type reaction [54] between the Rhoda-enolate species and the allene of complex C produces the desired [3.3.0] bicycle D. Protonolysis [55][56][57] of complex D with the alcohol 110 gives bicyclic product
  • cation, which is intercepted by the titanium enolate and results in the new C–C bond formation to give the five-membered carbocycle 169. Conclusion The all-carbon [3 + 2] cycloaddition, together with the [3 + 2] annulation, continue to be an attractive class of reactions for the synthesis of highly
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Published 09 Dec 2020

Synthesis of novel fluorinated building blocks via halofluorination and related reactions

  • Attila Márió Remete,
  • Tamás T. Novák,
  • Melinda Nonn,
  • Matti Haukka,
  • Ferenc Fülöp and
  • Loránd Kiss

Beilstein J. Org. Chem. 2020, 16, 2562–2575, doi:10.3762/bjoc.16.208

Graphical Abstract
  • epimerization is required. The requirement of additional reaction steps may explain the lower yield (31%) of this reaction. Note, that from the other three substrates, the product (rac)-27 was obtained in a yield of 52–54%. Since the enolate (rac)-T9 is all-equatorial, and consequently, the energy is lower than
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Published 16 Oct 2020

Recent developments in enantioselective photocatalysis

  • Callum Prentice,
  • James Morrisson,
  • Andrew D. Smith and
  • Eli Zysman-Colman

Beilstein J. Org. Chem. 2020, 16, 2363–2441, doi:10.3762/bjoc.16.197

Graphical Abstract
  • trapped by enolate 160 in a chiral environment, provided by the PTC, to form a α-hydroperoxyl intermediate 161. Subsequent deoxygenation by another molecule of 160 forms two molecules of the α-hydroxylated products 162 in excellent yields and moderate enantioselectivities (11 examples, up to 88:12 er
  •  24) [77]. Interestingly, this takes place without the need for an external photocatalyst and is proposed to proceed via an intermediate EDA complex 164, which, upon excitation, forms perfluoroalkyl radicals 163• that add to the enolate substrate that is coordinated to a chiral counterion 165 to give
  • to generate diradical 177 that then adds to the alkene to form diradical 178. A SET between the ketyl radical and the α-carbonyl radical generates enolate intermediate 179, which after proton transfer regenerates the catalyst and releases the desired cyclisation product 180 in a moderate yield and
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Published 29 Sep 2020

Pauson–Khand reaction of fluorinated compounds

  • Jorge Escorihuela,
  • Daniel M. Sedgwick,
  • Alberto Llobat,
  • Mercedes Medio-Simón,
  • Pablo Barrio and
  • Santos Fustero

Beilstein J. Org. Chem. 2020, 16, 1662–1682, doi:10.3762/bjoc.16.138

Graphical Abstract
  • nucleophilic addition, the authors suggested the tentative mechanism depicted in Scheme 34. As shown, γ-fluoride loss from enolate I, formed after the conjugate Michael addition, would lead to the formation of difluoroenone II. This could in turn undergo a nucleophilic addition of water, followed by a retro
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Published 14 Jul 2020

NHC-catalyzed enantioselective synthesis of β-trifluoromethyl-β-hydroxyamides

  • Alyn T. Davies,
  • Mark D. Greenhalgh,
  • Alexandra M. Z. Slawin and
  • Andrew D. Smith

Beilstein J. Org. Chem. 2020, 16, 1572–1578, doi:10.3762/bjoc.16.129

Graphical Abstract
  • stereogenic trifluoromethyl centers is through enantioselective addition of enolates or their equivalents to prochiral trifluoromethyl ketones (Figure 1A). Within this area, a common catalytic approach has utilized aliphatic ketones as enolate equivalents using prolinamide, cinchona, or hybrid catalysts that
  • using NHCs, the azolium enolate has been widely used [27][28]. Methods to generate azolium enolates from a number of precursors have been reported, including the use of ketenes [29][30], α-functionalized aldehydes [31][32][33][34][35], enals [36][37][38], aryl esters [39][40][41][42], or aldehydes [43
  • ][44][45] in the presence of an oxidant. As representative examples of the use of azolium enolates in reactions with trifluoroacetophenone derivatives, Ye and co-workers have shown that using disubstituted ketenes as azolium enolate precursors and NHC precatalyst 1 allowed access to trifluoromethyl
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Published 30 Jun 2020

One-step route to tricyclic fused 1,2,3,4-tetrahydroisoquinoline systems via the Castagnoli–Cushman protocol

  • Aleksandar Pashev,
  • Nikola Burdzhiev and
  • Elena Stanoeva

Beilstein J. Org. Chem. 2020, 16, 1456–1464, doi:10.3762/bjoc.16.121

Graphical Abstract
  • ][14][20][21]. The mechanism of the reaction is still under debate with two prevailing versions in the literature (Scheme 2) [16][17][22][23][24]. The first reaction pathway includes the formation of an N-acyliminium ion 15, followed by a ring closure through an enolate ion 16. The other mechanistic
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Published 24 Jun 2020

Fluorinated phenylalanines: synthesis and pharmaceutical applications

  • Laila F. Awad and
  • Mohammed Salah Ayoup

Beilstein J. Org. Chem. 2020, 16, 1022–1050, doi:10.3762/bjoc.16.91

Graphical Abstract
  • with zincate 11 using a variety of catalysts and different reaction conditions, was unsuccessful. However, coupling of 4-[bis(dimethoxybenzyl)difluoromethyl]benzyl bromide (14) with the lithium enolate of William`s lactone 15 gave the protected amino acid 16 in 80% yield. The desired protected amino
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Published 15 May 2020

Copper-catalysed alkylation of heterocyclic acceptors with organometallic reagents

  • Yafei Guo and
  • Syuzanna R. Harutyunyan

Beilstein J. Org. Chem. 2020, 16, 1006–1021, doi:10.3762/bjoc.16.90

Graphical Abstract
  • access various derivatives, such as 12 and 13, derived from the trapping and Baeyer–Villiger oxidation of 11, respectively, or compound 16, obtained via the ring opening reaction of 15 with an amine (Scheme 5). Taking the enolate intermediate derived from the addition of EtMgBr to coumarin as an example
  • , it was shown that upon the treatment with an amine, this enolate produced the final chiral amide product with a good yield (82%) and ee (96%). While the methodology for the ACAs of Grignard reagents to chromones and coumarins has been established successfully, quinolones remained challenging
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Published 14 May 2020

Recent applications of porphyrins as photocatalysts in organic synthesis: batch and continuous flow approaches

  • Rodrigo Costa e Silva,
  • Luely Oliveira da Silva,
  • Aloisio de Andrade Bartolomeu,
  • Timothy John Brocksom and
  • Kleber Thiago de Oliveira

Beilstein J. Org. Chem. 2020, 16, 917–955, doi:10.3762/bjoc.16.83

Graphical Abstract
  • -α-hydroxy-β-keto esters in 81–93% yields and 39–75% ee (Scheme 41). The mechanism of this reaction involves the attack of the enolate paired with the chiral counter ion PTC to the singlet oxygen electrophile to give the hydroperoxide intermediate, which is converted to α-hydroxy-β-keto esters
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Published 06 May 2020

Recent advances in Cu-catalyzed C(sp3)–Si and C(sp3)–B bond formation

  • Balaram S. Takale,
  • Ruchita R. Thakore,
  • Elham Etemadi-Davan and
  • Bruce H. Lipshutz

Beilstein J. Org. Chem. 2020, 16, 691–737, doi:10.3762/bjoc.16.67

Graphical Abstract
  • . have contributed to the understanding of the mechanism of silylation reactions of unsaturated compounds. In their studies, it was possible, surprisingly, to isolate and characterize a β-silyl boron enolate complex 158. On the basis of experimental and NMR studies, they proposed that for α,β-unsaturated
  • ketones, a 1,4-addition product was formed through a transient copper enolate, 157. With α,β-unsaturated esters, however, a carbon enolate, 160, is the intermediate. In order to maintain a catalytic cycle, iPrOH could be added to regenerate the active Cu species (Scheme 28). This study again proofed that
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Published 15 Apr 2020

Copper-catalyzed O-alkenylation of phosphonates

  • Nuria Vázquez-Galiñanes,
  • Mariña Andón-Rodríguez,
  • Patricia Gómez-Roibás and
  • Martín Fañanás-Mastral

Beilstein J. Org. Chem. 2020, 16, 611–615, doi:10.3762/bjoc.16.56

Graphical Abstract
  • procedures involving a Mitsunobu reaction between 2-hydroxyalkyl phenyl selenides and phosphonic acid monoesters followed by an oxidation/elimination step [14] or reaction of an enolate with a phosphonic dichloride and subsequent treatment with an alcohol [15] (Scheme 1a). However, these procedures are
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Published 03 Apr 2020

Copper-catalyzed enantioselective conjugate reduction of α,β-unsaturated esters with chiral phenol–carbene ligands

  • Shohei Mimura,
  • Sho Mizushima,
  • Yohei Shimizu and
  • Masaya Sawamura

Beilstein J. Org. Chem. 2020, 16, 537–543, doi:10.3762/bjoc.16.50

Graphical Abstract
  • π-complex C undergoes 1,4-hydrocupration to afford copper enolate D. During our initial investigations, we observed configurational isomerization from 1a to (E)-1a when the reaction was conducted in the absence of alcoholic protonation reagents. This observation implied that the 1,4-hydrocupration
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Published 31 Mar 2020

Synthesis of 4-amino-5-fluoropyrimidines and 5-amino-4-fluoropyrazoles from a β-fluoroenolate salt

  • Tobias Lucas,
  • Jule-Philipp Dietz and
  • Till Opatz

Beilstein J. Org. Chem. 2020, 16, 445–450, doi:10.3762/bjoc.16.41

Graphical Abstract
  • ) of potassium formate, which could not easily be removed without risking the decomposition of the enolate salt (Scheme 1). As the fluorine atom is part of a building block, harsh conditions for a late-stage fluorination can be avoided, and even products with sensitive functionalities are accessible
  • ) and electron-withdrawing groups (compound 10l) were formed in nearly quantitative yields (95–99%). Only the 4-hydroxyphenyl derivative 10j was obtained in a moderate yield (69%) presumably due to competing polymerization of the enolate. The 4-chloro and 4-bromo derivatives (10m and 10n) were also
  •  2). In the first reactions, only traces of the desired compound 13a were observed. Changing the temperature did not increase the yield. Acidic conditions were tested next but phenylhydrazine hydrochloride and acetic acid again gave only traces of 13a and polymerization of the enolate took place. To
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Published 20 Mar 2020

Copper-catalyzed enantioselective conjugate addition of organometallic reagents to challenging Michael acceptors

  • Delphine Pichon,
  • Jennifer Morvan,
  • Christophe Crévisy and
  • Marc Mauduit

Beilstein J. Org. Chem. 2020, 16, 212–232, doi:10.3762/bjoc.16.24

Graphical Abstract
  • catalytic species, the resulting metallic enolate intermediate can also react with the starting material to form the aldol byproduct, significantly altering the yield of the expected 1,4-product (Scheme 1). The first successful copper-catalyzed ECA to α,β-unsaturated aldehydes with organozinc and Grignard
  • –86%) and yield (44–63%) remained decent. The efficiency of TolBINAP (L3)/CuI was also demonstrated in the ECA of Grignard reagents to the 4-chloro-α,β-unsaturated thioester 22 [31]. Interestingly, the presence of the internal chloro leaving group allowed a powerful tandem conjugate addition–enolate
  • /enolate trapping was also studied, providing the trans-cyclopentane product 56 as a single diastereoisomer (92% ee). In 2018, the same authors reported the 1,6- and 1,4-additions of various Grignard reagents to a wide scope of conjugated dienyl amides (Scheme 22) [51]. Interestingly, the authors observed
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Published 17 Feb 2020

Why do thioureas and squaramides slow down the Ireland–Claisen rearrangement?

  • Dominika Krištofíková,
  • Juraj Filo,
  • Mária Mečiarová and
  • Radovan Šebesta

Beilstein J. Org. Chem. 2019, 15, 2948–2957, doi:10.3762/bjoc.15.290

Graphical Abstract
  • solvent and the amine’s structure [22][23]. The decomposition of the enolate is one of the side reactions, which can be suppressed by chelation. The chelation-stabilized enolates are more stable than the corresponding silyl ketene acetals, and they are capable of a direct rearrangement [24]. The chelation
  • -controlled Ireland–Claisen rearrangement of O-protected allylic glycolate esters proceeded with moderate yields and diastereoselectivities of up to 20:1 [25]. An asymmetric ester-enolate-Claisen rearrangement was achieved by using aluminum-chelate-bridged enolates and proceeded with high yields and
  • the corresponding acid 3a in 63% yield at rt (Table 1, entry 1). At a higher temperature, the product yield decreased (Table 1, entry 2). The reaction of the related (E)-but-2-en-1-yl propionate (1b) gave acid 3b under similar conditions with slightly lower yields. The rearrangement of lithium enolate
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Published 10 Dec 2019

A review of asymmetric synthetic organic electrochemistry and electrocatalysis: concepts, applications, recent developments and future directions

  • Munmun Ghosh,
  • Valmik S. Shinde and
  • Magnus Rueping

Beilstein J. Org. Chem. 2019, 15, 2710–2746, doi:10.3762/bjoc.15.264

Graphical Abstract
  • oxidation by raising the energy of the HOMO upon enolate formation. Upon constant current electrolysis of a mixture of 85 and 86 in an undivided ElectraSyn 2.0 cell in presence of 2,6-lutidine as an external base and catalyst 87, products with tertiary carbon stereocenters as well as all-carbon quaternary
  • to 2-acylimidazole derivatives 94 generates the Lewis acid/enolate complex 100 upon deprotonation (Scheme 35). This is followed by the formation of intermediate 101 by electrolysis-induced SET oxidation. In a parallel electrochemical cycle, benzylic radical species 95 was delivered by the anodic
  • asymmetric reduction of 135 using enolate reductase that afforded the corresponding chiral acid 136 in 95% yield and 95% ee. It has been shown that the cofactor NADH is oxidized during this process and can be regenerated using methyl viologen 137 as a reductive mediator (Scheme 43) [78]. In 1997, Yoneyama
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Published 13 Nov 2019

1,5-Phosphonium betaines from N-triflylpropiolamides, triphenylphosphane, and active methylene compounds

  • Vito A. Fiore,
  • Chiara Freisler and
  • Gerhard Maas

Beilstein J. Org. Chem. 2019, 15, 2603–2611, doi:10.3762/bjoc.15.253

Graphical Abstract
  • propadienones. The presentation of 1,5-zwitterions 3 with the negative charge residing on a carbon atom is more or less a formal one. The structural and spectroscopic data (vide infra) support the view that the mesomeric enolate structure 3’ (see Scheme 3) significantly contributes to the bonding state and that
  • an even wider delocalization of the negative charge, represented by formula 3”, does occur. Therefore, these zwitterions are better described as 1-phosphonium-5-oxabetaines than -5-carbabetaines. Furthermore, they represent a novel type of phosphonium enolate betaines and may be considered as
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Published 01 Nov 2019

Chiral terpene auxiliaries V: Synthesis of new chiral γ-hydroxyphosphine oxides derived from α-pinene

  • Anna Kmieciak and
  • Marek P. Krzemiński

Beilstein J. Org. Chem. 2019, 15, 2493–2499, doi:10.3762/bjoc.15.242

Graphical Abstract
  • with sodium methoxide in toluene and the resulting enolate was condensed with ethyl formate to give a keto-aldehyde, which tautomerized into the more stable β-hydroxyenone 4 [23]. The intermediate 4 was sufficiently pure for the subsequent transaldolization reaction with formaldehyde in the presence of
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Published 22 Oct 2019

Photochromic diarylethene ligands featuring 2-(imidazol-2-yl)pyridine coordination site and their iron(II) complexes

  • Andrey G. Lvov,
  • Max Mörtel,
  • Anton V. Yadykov,
  • Frank W. Heinemann,
  • Valerii Z. Shirinian and
  • Marat M. Khusniyarov

Beilstein J. Org. Chem. 2019, 15, 2428–2437, doi:10.3762/bjoc.15.235

Graphical Abstract
  • ) complexes [46][47]. Similarly, Fe–O bond distances of 1.9912(11) and 2.1238(12) Å also provide evidence for HS iron(II) [46][48][49]. The two Fe–O bonds are not equivalent as the ligand appears in its deprotonated enolate form. Furthermore, a trans-effect due to the H2B(pz)21− anion can further elongate
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Published 15 Oct 2019

N-(1-Phenylethyl)aziridine-2-carboxylate esters in the synthesis of biologically relevant compounds

  • Iwona E. Głowacka,
  • Aleksandra Trocha,
  • Andrzej E. Wróblewski and
  • Dorota G. Piotrowska

Beilstein J. Org. Chem. 2019, 15, 1722–1757, doi:10.3762/bjoc.15.168

Graphical Abstract
  • lithium enolate of methyl 4-methoxyphenylacetate would give the β-hydroxyester 169 which when treated with Lewis acid experienced the aziridine ring cleavage with simultaneous dihydrofuran-2-one ring closure to produce 170 contaminated with small amounts of the corresponding furan-2(5H)-one 171
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Published 23 Jul 2019

Synthesis of non-racemic 4-nitro-2-sulfonylbutan-1-ones via Ni(II)-catalyzed asymmetric Michael reaction of β-ketosulfones

  • Alexander N. Reznikov,
  • Anastasiya E. Sibiryakova,
  • Marat R. Baimuratov,
  • Eugene V. Golovin,
  • Victor B. Rybakov and
  • Yuri N. Klimochkin

Beilstein J. Org. Chem. 2019, 15, 1289–1297, doi:10.3762/bjoc.15.127

Graphical Abstract
  • ) complexes [56]. The above considerations lead to the use of β-ketosulfones in the Ni(II)-catalyzed reaction, since the proposed mechanism [47], that involves the formation of cyclic Ni enolate, and the high CH acidity of ketosulfones (pKa 9.8–10.5 [4]). The formation of the key intermediate can be provided
  • proposed mechanism for 1,3-dicarbonyl compounds [47] to explain how Ni catalysts are able to activate the substrates. The postulated catalytic cycle is summarized in Scheme 1. We assume that the β-ketosulfone coordinates to the Ni complex generating Ni-enolate B. The nitroalkene is activated by
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Published 12 Jun 2019
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