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1 Claisen condensation, the key step in constructing the p
2 Claisen rearrangement transition states are also highly
4 d via two efficient through processes: (1) a Claisen rearrangement followed by a Ru(VIII)-catalyzed o
5 e synthase, an enzyme which catalyzes both a Claisen condensation and thioester hydrolysis reaction.
6 a link to the indole core is introduced by a Claisen rearrangement from the allylated phenol moiety o
8 er-accelerated catalytic carboalumination, a Claisen rearrangement, and a nucleophilic carbonyl addit
9 dentified, purified, and shown to catalyze a Claisen-type condensation between long chain acyl-CoA su
10 ctions generated the fused tricyclic core, a Claisen rearrangement was used to install an otherwise u
11 nclude a Ru-catalyzed [5+2] cycloaddition, a Claisen rearrangement, and a ring expansion to construct
13 This allylic alcohol is then utilized in a Claisen rearrangement under Johnson's conditions to intr
15 tudy of competitive substituent effects in a Claisen-Schmidt reaction, interfacial effects have been
23 dium-catalyzed vinyl transfer coupled with a Claisen reaction was used to produce the aldehyde requir
25 f a resonance stabilized DcA reaction with a Claisen rearrangement for the synthesis of multisubstitu
26 tion of cyclic carbonate 90 in tandem with a Claisen rearrangement that generates the octenalactone p
28 phosphorus-stabilized, carbanion-accelerated Claisen rearrangements proceed rapidly at room temperatu
29 d allylic alcohols via nucleophilic addition/Claisen rearrangement/cyclization reaction is described.
30 the strategy is a tandem Claisen/Diels-Alder/Claisen rearrangement of a suitably substituted xanthone
39 rbase reagent was tested in Knoevenagel- and Claisen-Schmidt-type condensations and showed conversion
40 gies toward the synthesis of morpholines and Claisen rearrangement products based on the divergent re
41 relative positions of the bis-pericyclic and Claisen rearrangement transition states may control peri
43 amolecular C-H phenolization via an aromatic Claisen rearrangement of the respective Mitsunobu adduct
47 ent data on the regioselectivity of aromatic Claisen rearrangements with meta-substituted benzenes.
48 atalysts have been designed for the aromatic Claisen rearrangement of a 1,1-dimethylallyl coumarin.
49 to-enol tautomerization step of the aromatic Claisen rearrangement to be the rate-determining step.
54 ported relying on a key efficient asymmetric Claisen rearrangement, triggered by electrophilic activa
56 ediate and its transformation through an aza-Claisen rearrangement to the desired pyridine product.
58 ssentially constitutes a Pd(0)-catalyzed aza-Claisen rearrangement of N-allyl ynamides, which can als
59 -Heterocyclic carbenes (NHCs) catalyzing aza-Claisen rearrangement of alpha,beta-unsaturated enals wi
60 can then undergo a base-catalyzed domino aza-Claisen rearrangement/cyclization reaction sequence, sim
62 mbination involves addition-elimination, aza-Claisen rearrangement, tosyl migration, and aromatizatio
63 d acid catalyzed enantioselective indole aza-Claisen rearrangement for the synthesis of chiral 3-amin
64 stigations into Pd-catalyzed and thermal aza-Claisen-carbocyclizations of N-allyl ynamides to prepare
66 ity for an alternative intramolecular Bellus-Claisen-type rearrangement rather than an expected intra
67 domain of the molecule involved a biomimetic Claisen/Diels-Alder cascade, whereas the novel spiroxala
68 xybutyronitrile and the respective esters by Claisen condensation and subsequent Paal-Knorr pyrrole s
69 p, allylation of the 5-hydroxyl, followed by Claisen rearrangement under microwave conditions with co
72 roplets is demonstrated for a base-catalyzed Claisen-Schmidt condensation, hydrazone formation from p
74 The N-heterocyclic carbene (NHC)-catalyzed Claisen rearrangement of hybrid Ireland-Coates structure
75 ts were discovered as superior in catalyzing Claisen rearrangements of allyloxy- or proparyloxy-subst
78 roups, by a novel tandem double condensation/Claisen rearrangement, a gold(I)-catalyzed alkyne hydroa
82 hinckdentine A, which features a dearomative Claisen rearrangement, a diastereocontrolled hydrogenati
85 t with OleA catalyzing a non-decarboxylative Claisen condensation reaction in the first step of the o
86 on- and energy-efficient non-decarboxylative Claisen condensation reactions and subsequent beta-reduc
89 hat these reactions involve rate-determining Claisen rearrangements followed by subsequent reaction c
90 to the carbodiimide followed by a 1,3-diaza-Claisen rearrangement affords [9,5]- and [9,6]-bicyclic
92 diate followed by the zwitterionic 1,3-diaza-Claisen rearrangement was consistently a higher energy p
95 erionic intermediates that undergo 1,3-diaza-Claisen rearrangements to afford highly substituted urea
96 2 decreases the reactivity toward 1,3-diaza-Claisen rearrangements, while the exodiastereomers 3b an
99 other methods for catalytic enantioselective Claisen rearrangements have not provided a satisfactory
103 col for the dearomative Meerwein-Eschenmoser-Claisen rearrangement of 3-indolyl alcohols that provide
104 y crossover observed between the Eschenmoser-Claisen rearrangement and the thio-Claisen rearrangement
105 de, and diisopropylamine, via an ortho ester-Claisen rearrangement from a propargylic alcohol, or via
107 c triad and its role in catalyzing the final Claisen-type cyclization to the aflatoxin precursor, nor
108 ne were determined as the rate constants for Claisen-type addition of glycine to 1 where deprotonatio
110 A sequential allyl vinyl ether formation-Claisen rearrangement process catalyzed by a palladium(I
111 allylic alkoxides gave products arising from Claisen rearrangement, providing access to keto-alkenes
114 S subsequently catalyzes dual intramolecular Claisen and aldol condensations of this linear intermedi
115 was obtained by a similar strategy involving Claisen rearrangement to transfer an allyl group from th
116 e reaction proceeds via a reductive iodonium Claisen rearrangement of in situ-generated beta-pyridini
117 gent approach featuring (1) a double Ireland Claisen rearrangement to establish key core bonds with c
119 rearrangement sequence, wherein the Ireland Claisen rearrangement effects ring contraction to a stra
120 dienes via sequential N-alkylation, Ireland-Claisen ester enolate rearrangement and esterification.
126 tudies of the aldol condensation and Ireland-Claisen rearrangement of the resulting Et 3N-solvated en
127 zes on the highly diastereoselective Ireland-Claisen rearrangement of an acyclic alpha-branched allyl
128 A one-pot difluorocyclopropenation/Ireland-Claisen rearrangement sequence applied to readily availa
129 ion, substrate-directed epoxidation, Ireland-Claisen rearrangement, and diastereotopic group selectiv
133 thetic sequence involving the use of Ireland-Claisen rearrangement of propargylic acetates to form th
134 is based on the early application of Ireland-Claisen rearrangement, macrolactamization, and a late-st
135 ynthetic equivalents for the related Ireland-Claisen and Eschenmoser Claisen/Claisen rearrangements w
136 s to allyl fumarates with subsequent Ireland-Claisen rearrangement has been accomplished yielding sub
137 The tandem, sequential use of the Ireland-Claisen rearrangement also proved suitable for chirality
140 tal/theoretical investigation of the Ireland-Claisen rearrangement of tetrasubstituted alpha-phthalim
143 In the case of cyclodienes, the Ireland-Claisen rearrangement produced s-trans locked dienes whi
145 marked (20-fold) acceleration of the Ireland-Claisen rearrangement with evidence of autocatalysis.
151 readily obtained using olefin isomerization-Claisen rearrangement (ICR) reactions to prepare the key
154 or ruthenium hydride-mediated isomerization/Claisen rearrangement cascade and a ring-closing metathe
155 logenation of a simple alkene, and a Johnson-Claisen rearrangement that generates a quaternary carbon
156 symmetric alkylation, and asymmetric Johnson-Claisen rearrangement to set six of the seven chiral cen
157 (97% ee), followed by an orthoester Johnson-Claisen [3,3]-sigmatropic rearrangement to construct a s
161 repared by a convergent, single-step Michael-Claisen condensation of AB precursor 1 or 2 with D-ring
162 ations include a diastereoselective modified Claisen condensation, a chemo- and diastereoselective re
164 ts into the competition between the observed Claisen-type reaction and the historically expected (2 +
165 mical outcome is defined by a combination of Claisen stereospecificity and stereoelectronic effects i
167 surfactants were used to study the scope of Claisen-Schmidt reactants, and a wide scope on both arom
171 etone 16 has been prepared by using an oxaza-Claisen rearrangement, followed by nitrogen deprotection
172 st energy pathway (cation-accelerated oxonia Claisen rearrangement) originates from the second most s
176 ), in combination with photo-Fries and photo-Claisen-type reactions of 1-naphthyl (R)-2-phenylpropano
177 The regio- and stereochemistries of photo-Claisen reactions of 1-naphthyl (R)-1-phenylethyl ether
180 ic acid residue (Glu117beta) likely promotes Claisen condensation by acting as the catalytic base.
182 cess entailing the Au(I)-catalyzed propargyl Claisen rearrangement/Nazarov cyclization of propargyl v
183 cess entailing a gold(I)-catalyzed propargyl Claisen rearrangement/Nazarov cyclization, a [4+2] cyclo
185 t to catalyze the first elongation reaction (Claisen condensation) of type II fatty acid synthesis in
186 anic reactions, namely Diels-Alder reaction, Claisen rearrangement, and Cope-type hydroamination.
187 is stereochemically complementary to related Claisen rearrangement reactions--processes that typicall
188 sms by which the free energy of a repetitive Claisen-like reaction is harnessed to guide the growing
189 l transition state, as well as a [3,3]-retro-Claisen rearrangement to recycle the IMDA product into l
190 analogue, the product leporin C, and a retro-Claisen reaction transition-state analogue to understand
195 les with allylic alcohols using facile retro-Claisen cleavage to form reactive intermediates in situ.
196 led a cascade Michael-hemiketalization-retro-Claisen reaction resulting in the C-C(CO) bond cleavage
199 ketone pronucleophile, undergo in situ retro-Claisen activation to generate an allylic acetate and a
201 his reaction cascade suggest that the C-ring Claisen/Diels-Alder rearrangement proceeds initially and
202 doxal-glycine iminium ion to form the second Claisen-type adduct 3 as the major reaction product.
203 C) hybrids were synthesized via a sequential Claisen-Schmidt-Knoevenagel-Heck approach and evaluated
204 )-catalyzed olefin isomerization and in situ Claisen rearrangement to afford stereodefined beta-boryl
206 approach is convergent and uses a late-stage Claisen-like enolate/acid chloride coupling to establish
207 ction with styryl bromide via O-styrylation, Claisen rearrangement, ene reaction, and O-alkylation oc
209 onate 46, methylenation of 46 and subsequent Claisen rearrangement of the corresponding alkenyl-subst
210 duce a highly congested ketone, and a tandem Claisen-ene cascade that establishes the 8-membered ring
212 c ketone 33 was prepared by sequential Tebbe-Claisen rearrangement of lactones 29 and 30, which origi
217 urface by shifting the cycloaddition and the Claisen rearrangement transition states in opposite dire
219 ts alkylation of indole with benzhydrol, the Claisen-Schmidt condensation of benzaldehyde and hydroxy
221 etoacyl ACP synthase I mtKasA, catalyzes the Claisen-type condensation reaction responsible for fatty
222 oA lyase, a well-known enzyme catalyzing the Claisen condensation of acetyl-CoA with glyoxylate and y
224 ovides a unique mechanism for catalyzing the Claisen rearrangement on the microsecond lifetime of the
225 wo reaction cascades occurring following the Claisen rearrangements of aryl propargyl ethers to the a
226 New insight into solvent effects for the Claisen rearrangement is presented herein, and a QM/MM a
227 in highly enantioselective catalysts for the Claisen rearrangement of allyloxy- and propargyloxy-indo
228 by the chorismate mutase (CM) enzyme for the Claisen rearrangement of chorismate to prephenate has be
229 he transition state, were calculated for the Claisen rearrangement of chorismate to prephenate in six
231 irst examples of asymmetric induction in the Claisen rearrangement with chiral, phosphorus, anion-sta
232 of a short-lived ketone intermediate in the Claisen rearrangement, a task that is challenged by a th
234 d, and together they enhance the rate of the Claisen rearrangement by a factor of 58 over the backgro
236 lowed by subsequent reaction cascades of the Claisen rearrangement products depending on the presence
239 for information about the association of the Claisen-Schmidt reactants with the micelles and their lo
240 key step of the first approach relies on the Claisen rearrangement of glucal 18 to provide ester 20a.
241 ole-substituted guanidinium ions promote the Claisen rearrangement of O-allyl alpha-ketoesters and in
242 Thin film formats are used to study the Claisen-Schmidt base-catalyzed condensation of 6-hydroxy
244 ant allyl ethers were subjected to a thermal Claisen rearrangement to give the corresponding methyl 7
245 ic iridium(I) catalyst followed by a thermal Claisen rearrangement to provide the allylsilanes in exc
246 -gamma-lactone derivatives using the thermal Claisen rearrangement of the corresponding 3-O- and 2-O-
248 mary of our most recent study using the thio-Claisen rearrangement for the synthesis of anti-beta-fun
251 3,3]-sigmatropic rearrangement of the thiono-Claisen variety that is among the fastest sigmatropic re
253 ylcyclohexa-2,4-dien-1-one, involved in this Claisen rearrangement was captured and characterized by
254 chain extension by two carbon atoms through Claisen condensation with malonyl-acyl carrier protein.
255 F elimination and C-C bond formation through Claisen rearrangement of in situ generated difluorovinyl
256 l-2-propenone (PA-1) was synthesized through Claisen-Schmidt condensation between acetyl pyrene and s
257 strong sensitivity of the strained esters to Claisen condensation (cyclobutatanes), or facile decompo
258 e PKSs (NR-PKSs) has been shown to extend to Claisen cyclase (CLC) chemistry by catalyzing C-C ring c
259 or Suzuki cross-coupling provides a route to Claisen adducts previously inaccessible from the ICR met
260 aldehyde with an o-hydroxyacetophenone under Claisen-Schmidt conditions afforded a chalcone that was
265 sical Claisen condensation, however, the VAT-Claisen reaction described herein is rendered irreversib
267 o the intramolecular delivery of ring E (via Claisen rearrangement, Heck-type cyclization, or radical
268 e-tethered chromanone/coumarin scaffolds via Claisen rearrangement using a solid state melt reaction
269 or 2 is quite rapid at -78 degrees C, while Claisen cyclization of the enolate produced is rate-dete