Literature DB >> 15244435

External chirality-triggered helicity control promoted by introducing a beta-Ala residue into the N-terminus of chiral peptides.

Yoshihito Inai1, Hisatoshi Komori.   

Abstract

The noncovalent chiral domino effect (NCDE), defined as chiral interaction upon an N-terminus of a 3(10)-helical peptide, will provide a unique method for structural control of a peptide helix through the use of external chirality. On the other hand, the NCDE has not been considered to be effective for the helicity control of peptides strongly favoring a one-handed screw sense. We here aim to promote the NCDE on peptide helicity using two types of nonapeptides: H-beta-Ala-Delta(Z)Phe-Aib-Delta(Z)Phe-X-(Delta(Z)Phe-Aib)(2)-OCH(3) [Delta(Z)Phe = alpha,beta-didehydrophenylalanine, Aib = alpha-aminoisobutyric acid], where X as the single chirality is L-leucine (1) or L-phenylalanine (2). NMR, IR, and CD spectroscopy as well as energy calculation revealed that both peptides alone form a right-handed 3(10)-helix. The original CD amplitudes or signs in chloroform, irrespective of a strong screw-sense preference in the central chirality, responded sensitively to external chiral information. Namely added Boc-L-amino acid stabilized the original right-handed helix, while the corresponding d-isomer destabilized it or transformed it into a left-handed helix. These peptides were also shown to bind more favorably to an L-isomer from the racemate. Although similar helicity control was observed for analogous nonapeptides bearing an N-terminal Aib residue (Inai, Y.; et al. Biomacromolecules 2003, 4, 122), the present findings demonstrate that the N-terminal replacement by the beta-Ala residue significantly improves the previous NCDE to achieve more effective control of helicity. Semiempirical molecular orbital calculations on complexation of peptide 2 with Boc-(L or D)-Pro-OH reasonably explained the unique conformational change induced by external chirality.

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Year:  2004        PMID: 15244435     DOI: 10.1021/bm0344001

Source DB:  PubMed          Journal:  Biomacromolecules        ISSN: 1525-7797            Impact factor:   6.988


  3 in total

1.  Controllability of dynamic double helices: quantitative analysis of the inversion of a screw-sense preference upon complexation.

Authors:  Ryo Katoono; Shunsuke Kawai; Kenshu Fujiwara; Takanori Suzuki
Journal:  Chem Sci       Date:  2015-08-07       Impact factor: 9.825

2.  A tendril perversion in a helical oligomer: trapping and characterizing a mobile screw-sense reversal.

Authors:  Michael Tomsett; Irene Maffucci; Bryden A F Le Bailly; Liam Byrne; Stefan M Bijvoets; M Giovanna Lizio; James Raftery; Craig P Butts; Simon J Webb; Alessandro Contini; Jonathan Clayden
Journal:  Chem Sci       Date:  2017-01-25       Impact factor: 9.825

3.  Flaws in foldamers: conformational uniformity and signal decay in achiral helical peptide oligomers.

Authors:  Bryden A F Le Bailly; Liam Byrne; Vincent Diemer; Mohammadali Foroozandeh; Gareth A Morris; Jonathan Clayden
Journal:  Chem Sci       Date:  2015-01-21       Impact factor: 9.825

  3 in total

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