We report the synthesis of diverse β‐hydroxy‐α,α‐dialkyl‐α‐amino acids with perfect stereoselectivity for the α‐quaternary center through the action of l‐ and d‐specific threonine aldolases. A wide variety of aliphatic and aromatic aldehydes were accepted by the enzymes and conversions up to >80 % were obtained. In the case of d‐selective threonine aldolase from Pseudomonas sp., generally higher diastereoselectivities were observed. The applicability of the protocol was demonstrated by performing enzymatic reactions on preparative scale. Using the d‐threonine aldolase from Pseudomonas sp., (2R,3S)‐2‐amino‐3‐(2‐fluorophenyl)‐3‐hydroxy‐2‐methylpropanoic acid was generated in preparative amounts in one step with a diastereomeric ratio >100 favoring the syn‐product. A Birch‐type reduction enabled the reductive removal of the β‐hydroxy group from (2S)‐2‐amino‐3‐hydroxy‐2‐methyl‐3‐phenylpropanoic acid to generate enantiopure l‐α‐methyl‐phenylalanine via a two‐step chemo‐enzymatic transformation.
Teraryl‐based α‐helix mimetics have proven to be useful compounds for the inhibition of protein‐protein interactions (PPI). We have developed a modular and flexible approach for the synthesis of teraryl‐based α‐helix mimetics using a benzene core unit featuring two halide leaving groups of differentiated reactivity in the Pd‐catalyzed cross‐coupling used for teraryl assembly. The use of para‐bromo iodoarene core fragments resolved the issue of hydrolysis during cross‐coupling that was observed when using triflate as a leaving group. We report a complete set of para‐bromoiodoarene core fragments decorated with side chains of all proteinogenic amino acids relevant for PPI (Ala, Arg, Asn, Asp, Cys, Gln, Glu, His, Ile, Leu, Lys, Met, Phe, Ser, Thr, Trp, Tyr and Val). In order to be compatible with general cross‐coupling conditions, some of the nucleophilic side chains had to be provided in a protected form to serve as stable building blocks.
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