JoVE Logo

S'identifier

15.27 : Esters to β-Ketoesters: Claisen Condensation Mechanism

Regular Claisen condensation involves the synthesis of β-ketoesters by combining identical ester molecules bearing two α hydrogens in the presence of an alkoxide base. The reaction commences with the deprotonation of the acidic α hydrogen by the base to form a resonance stabilized ester enolate. This nucleophilic ion then attacks the carbonyl center of another ester molecule to generate a tetrahedral alkoxide intermediate. Next, the expulsion of the alkoxide group from the intermediate restores the carbonyl center and produces an acyl-substituted ester. The alkoxide by-product subsequently abstracts the second α proton from the β-dicarbonyl compound to form a doubly-stabilized enolate ion. This step is the driving force of the reaction to completion and suggests the essential requirement of two α protons in starting ester. Finally, acidification of the enolate produces the desired β-ketoester. The utility of the Claisen condensation process is also observed in biological systems. For instance, the synthesis of acetoacetyl-CoA from the condensation of acetyl-CoA in the presence of thiolase enzyme.

Tags

Claisen CondensationketoestersEster EnolateNucleophilic AttackTetrahedral IntermediateAlkoxide GroupAcyl substituted EsterDicarbonyl CompoundEnolate IonAcidificationAcetoacetyl CoAThiolase Enzyme

Du chapitre 15:

article

Now Playing

15.27 : Esters to β-Ketoesters: Claisen Condensation Mechanism

α-Carbon Chemistry: Enols, Enolates, and Enamines

3.5K Vues

article

15.1 : Réactivité des énols

α-Carbon Chemistry: Enols, Enolates, and Enamines

2.9K Vues

article

15.2 : Réactivité des ions énolates

α-Carbon Chemistry: Enols, Enolates, and Enamines

2.4K Vues

article

15.3 : Types d’énols et d’énolates

α-Carbon Chemistry: Enols, Enolates, and Enamines

2.5K Vues

article

15.4 : Conventions du mécanisme énologique

α-Carbon Chemistry: Enols, Enolates, and Enamines

2.1K Vues

article

15.5 : Formation régiosélective des énolates

α-Carbon Chemistry: Enols, Enolates, and Enamines

2.5K Vues

article

15.6 : Effets stéréochimiques de l’énolisation

α-Carbon Chemistry: Enols, Enolates, and Enamines

2.0K Vues

article

15.7 : α-halogénation d’aldéhydes et de cétones catalysée par un acide

α-Carbon Chemistry: Enols, Enolates, and Enamines

3.6K Vues

article

15.8 : α-halogénation des aldéhydes et des cétones promue par une base

α-Carbon Chemistry: Enols, Enolates, and Enamines

3.4K Vues

article

15.9 : Halogénation multiple des méthylcétones : réaction haloforme

α-Carbon Chemistry: Enols, Enolates, and Enamines

2.0K Vues

article

15.10 : α-halogénation des dérivés de l’acide carboxylique : aperçu

α-Carbon Chemistry: Enols, Enolates, and Enamines

3.3K Vues

article

15.11 : α-bromation des acides carboxyliques : réaction Hell-Volhard-Zelinski

α-Carbon Chemistry: Enols, Enolates, and Enamines

2.9K Vues

article

15.12 : Réactions des composés α-halocarbonyles : substitution nucléophile

α-Carbon Chemistry: Enols, Enolates, and Enamines

3.2K Vues

article

15.13 : Nitrosation des énols

α-Carbon Chemistry: Enols, Enolates, and Enamines

2.5K Vues

article

15.14 : Formation de liaisons C-C : aperçu de la condensation Aldol

α-Carbon Chemistry: Enols, Enolates, and Enamines

13.5K Vues

See More

JoVE Logo

Confidentialité

Conditions d'utilisation

Politiques

Recherche

Enseignement

À PROPOS DE JoVE

Copyright © 2025 MyJoVE Corporation. Tous droits réservés.