A remarkable aspect of enzyme evolution is the portability of catalytic mechanisms for fundamentally different chemical reactions. For example, aspartyl proteases, which contain two active site carboxylic acid groups, catalyze the hydrolysis of amide bonds, while glycosyltransferases (and glycosyl hydrolases), which often also contain two active site carboxylates, have evolved to form (or break) glycosidic bonds. However, neither catalyst exhibits cross-reactivity in the intracellular environment. The large, macromolecular architectures of these biocatalysts tailor their active sites to their precise, divergent functions. The analogous portability of a small-molecule catalyst for truly orthogonal chemical reactivity is rare. Herein, we repo...
In the presence of short solid-phase bound peptide catalysts, the Julia\u2013Colonna epoxidation of ...
Creating efficient and residue-directed artificial proteases is a challenging task due to the extrem...
Microsomal epoxide hydrolase (mEH) belongs to the superfamily of alpha/beta-hydrolase fold enzymes. ...
We report a peptide-based catalyst that can strongly influence the regio- and enantioselectivity of ...
Inspired by nature’s nonpareil catalysts, enzymes, our lab designs small peptides to catalyze select...
Many stereoselective peptide catalysts have been established. They consist, like nature's catalysts,...
The article summarizes our research devoted to the development of peptidic catalysts for aldol react...
International audienceArtificial metalloenzymes broadens the scope of possibilities for catalysis at...
Systems Biocatalysis is a new approach consisting of organizing enzymes in vitro to generate an arti...
Introduction of innovative biocatalytic processes offers great promise for applications in green che...
The enormous structural and functional diversity available through combining different amino acids i...
Polyamino acids, such as polyleucine, behave as synthetic enzymes in the asymmetric epoxidation of c...
A unique P450 monooxygenase–peroxygenase mutual benefit system was designed as the core element in t...
Ospina Sánchez F, Schülke KH, Hammer S. Biocatalytic Alkylation Chemistry: Building Molecular Comple...
Gergel S, Soler J, Klein A, et al. Directed Evolution of a Ketone Synthase for Efficient and Highly ...
In the presence of short solid-phase bound peptide catalysts, the Julia\u2013Colonna epoxidation of ...
Creating efficient and residue-directed artificial proteases is a challenging task due to the extrem...
Microsomal epoxide hydrolase (mEH) belongs to the superfamily of alpha/beta-hydrolase fold enzymes. ...
We report a peptide-based catalyst that can strongly influence the regio- and enantioselectivity of ...
Inspired by nature’s nonpareil catalysts, enzymes, our lab designs small peptides to catalyze select...
Many stereoselective peptide catalysts have been established. They consist, like nature's catalysts,...
The article summarizes our research devoted to the development of peptidic catalysts for aldol react...
International audienceArtificial metalloenzymes broadens the scope of possibilities for catalysis at...
Systems Biocatalysis is a new approach consisting of organizing enzymes in vitro to generate an arti...
Introduction of innovative biocatalytic processes offers great promise for applications in green che...
The enormous structural and functional diversity available through combining different amino acids i...
Polyamino acids, such as polyleucine, behave as synthetic enzymes in the asymmetric epoxidation of c...
A unique P450 monooxygenase–peroxygenase mutual benefit system was designed as the core element in t...
Ospina Sánchez F, Schülke KH, Hammer S. Biocatalytic Alkylation Chemistry: Building Molecular Comple...
Gergel S, Soler J, Klein A, et al. Directed Evolution of a Ketone Synthase for Efficient and Highly ...
In the presence of short solid-phase bound peptide catalysts, the Julia\u2013Colonna epoxidation of ...
Creating efficient and residue-directed artificial proteases is a challenging task due to the extrem...
Microsomal epoxide hydrolase (mEH) belongs to the superfamily of alpha/beta-hydrolase fold enzymes. ...