Methyl 11-bromoundecanoate is a functionalized aliphatic linker featuring a terminal bromide for nucleophilic substitution and a methyl ester at the opposite end, providing two chemically addressable handles for stepwise PROTAC assembly. The eleven-carbon chain offers a flexible hydrophobic spacer that can tune the effective distance and relative orientation between a target-binding ligand and an E3-recruiting moiety, which is critical for productive ternary-complex formation. In targeted protein degradation workflows, the bromide can be used to introduce the linker onto heteroatom-containing partners (e.g., via alkylation of amines or other nucleophiles), while the ester enables subsequent transformations such as ester-to-amide conversion or hydrolysis to generate carboxylic acid intermediates for amide coupling. This combination makes the reagent valuable for synthesizing modular PROTAC linkers, enabling systematic structure–activity relationship studies that probe how linker length, flexibility, and terminal chemistry influence degradation potency and selectivity.
Structure of 6287-90-7
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Methyl 11-bromoundecanoate, is a functionalized alkyl bromide ester designed to support modular assembly of targeted protein degradation (PROTAC) constructs. Its electrophilic bromomethyl terminus enables efficient linkage formation under standard organic synthesis conditions, facilitating rapid variation of warhead and ligand conjugates. The molecule’s flexible hydrophobic spacer and ester functionality help tune linker length, polarity, and overall physicochemical behavior in PROTAC libraries. The subsequent points describe its structure and practical reactivity in detail below.
Structure: Methyl 11-bromoundecanoate is a long-chain aliphatic bromide ester featuring a terminal alkyl bromide and a methyl ester. It contains saturated carbon–carbon and carbon–oxygen bonds, with a reactive C–Br bond and an ester carbonyl suitable for further derivatization. The flexible hydrophobic scaffold supports conformational adaptability.
Reactivity: The key transformation for PROTAC linker construction is nucleophilic substitution at the alkyl bromide, typically proceeding via an SN2 mechanism with appropriate nucleophiles. Suitable conditions often employ polar aprotic solvents and temperature control to favor substitution while minimizing elimination. Common nucleophiles include amines, thiols, and carboxylate-derived species, enabling formation of C–N, C–S, or related linkages. No special catalysts are generally required for straightforward alkylation, though base selection can be critical to nucleophile generation and selectivity.
* Our calculator is based on the following equation:
Concentration (start) x Volume (start) = Concentration (final) x Volume (final)
It is commonly abbreviated as: C1V1 = C2V2
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