Crystal Structure and NMR of an α,δ‐Peptide Foldamer Helix Shows Side‐Chains are Well Placed for Bifunctional Catalysis: Application as a Minimalist Aldolase Mimic**

Author:

Lin Qi1,Lan Hao2,Ma Chunmiao3,Stendall Ryan T.1,Shankland Kenneth4,Musgrave Rebecca A.1,Horton Peter N.5,Baldauf Carsten6,Hofmann Hans‐Jörg7,Butts Craig P.2,Müller Manuel M.1,Cobb Alexander J. A.1ORCID

Affiliation:

1. Department of Chemistry King's College London 7 Trinity Street London SE1 1DB UK

2. School of Chemistry University of Bristol Cantocks Close Bristol BS8 1TS UK

3. School of Chemistry and Chemical Engineering Huazhong University of Science and Technology Wuhan 430074 P. R. China

4. School of Chemistry Food and Pharmacy (SCFP) University of Reading Whiteknights Berks Reading RG6 6AD UK

5. EPSRC National Crystallography Service School of Chemistry University of Southampton Highfield Southampton SO17 1BJ UK

6. Fritz-Haber-Institut der Max-Planck-Gesellschaft Faradayweg 4–6 14195 Berlin Germany

7. Institut für Biochemie Universität Leipzig Brüderstrasse 34 04103 Leipzig Germany

Abstract

AbstractWe report the first NMR and X‐ray diffraction (XRD) structures of an unusual 13/11‐helix (alternating i, i+1 {NH−O=C} and i, i+3 {C=O−H−N} H‐bonds) formed by a heteromeric 1 : 1 sequence of α‐ and δ‐amino acids, and demonstrate the application of this framework towards catalysis. Whilst intramolecular hydrogen bonds (IMHBs) are the clear driver of helix formation in this system, we also observe an apolar interaction between the ethyl residue of one δ‐amino acid and the cyclohexyl group of the next δ‐residue in the sequence that seems to stabilize one type of helix over another. To the best of our knowledge this type of additional stabilization leading to a specific helical preference has not been observed before. Critically, the helix type realized places the α‐residue functionalities in positions proximal enough to engage in bifunctional catalysis as demonstrated in the application of our system as a minimalist aldolase mimic.

Funder

Leverhulme Trust

China Scholarship Council

Engineering and Physical Sciences Research Council

Wellcome Trust

Publisher

Wiley

Subject

General Chemistry,Catalysis

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