Bicyclic organo-peptides as selective carbohydrate receptors: Design, solid-phase synthesis, and on-bead binding capability

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Standard

Bicyclic organo-peptides as selective carbohydrate receptors : Design, solid-phase synthesis, and on-bead binding capability. / Benito, Juan M.; Meldal, Morten.

I: QSAR and Combinatorial Science, Bind 23, Nr. 2-3, 04.2004, s. 117-129.

Publikation: Bidrag til tidsskriftTidsskriftartikelForskningfagfællebedømt

Harvard

Benito, JM & Meldal, M 2004, 'Bicyclic organo-peptides as selective carbohydrate receptors: Design, solid-phase synthesis, and on-bead binding capability', QSAR and Combinatorial Science, bind 23, nr. 2-3, s. 117-129. https://doi.org/10.1002/qsar.200320011

APA

Benito, J. M., & Meldal, M. (2004). Bicyclic organo-peptides as selective carbohydrate receptors: Design, solid-phase synthesis, and on-bead binding capability. QSAR and Combinatorial Science, 23(2-3), 117-129. https://doi.org/10.1002/qsar.200320011

Vancouver

Benito JM, Meldal M. Bicyclic organo-peptides as selective carbohydrate receptors: Design, solid-phase synthesis, and on-bead binding capability. QSAR and Combinatorial Science. 2004 apr.;23(2-3):117-129. https://doi.org/10.1002/qsar.200320011

Author

Benito, Juan M. ; Meldal, Morten. / Bicyclic organo-peptides as selective carbohydrate receptors : Design, solid-phase synthesis, and on-bead binding capability. I: QSAR and Combinatorial Science. 2004 ; Bind 23, Nr. 2-3. s. 117-129.

Bibtex

@article{ec63bfb8a0944b71a38b528648e0b282,
title = "Bicyclic organo-peptides as selective carbohydrate receptors: Design, solid-phase synthesis, and on-bead binding capability",
abstract = "Selective recognition of monosaccharides in polar media by conformationally restricted bicyclic peptides containing an aromatic surface to facilitate the initial interaction has been examined. Molecular modeling assisted design of these peptidic receptors has been employed to optimize guest fitting in the peptide cavity. Different solid-phase synthetic approaches to the target structures are discussed in order to develop a flexible methodology suitable for a combinatorial approach. A series of putative receptors, differing in the aromatic spacer as well as the peptide ring size, has been synthesized and characterized by HPLC and HR-MS. They have been subjected to FRET-based screening for binding to mono and disaccharides. This indicates that binding properties are strongly dependent on the size and rigidity of the receptors, detecting β-glucoside selectivity in the case of a naphthyl-bridged cyclic dodecapeptide. In addition, an ES-MS/MS-based method that allows structural elucidation of single bead samples with no need of encoding techniques has been devised, which will be useful for structure elucidation in libraries of cyclic peptides.",
keywords = "Carbohydrate receptor, Electrospray tandem MS-MS, Fluorescence resonance energy transfer (FRET), Molecular recognition, Solid-phase synthesis",
author = "Benito, {Juan M.} and Morten Meldal",
year = "2004",
month = apr,
doi = "10.1002/qsar.200320011",
language = "English",
volume = "23",
pages = "117--129",
journal = "Molecular Informatics",
issn = "1868-1743",
publisher = "Wiley - V C H Verlag GmbH & Co. KGaA",
number = "2-3",

}

RIS

TY - JOUR

T1 - Bicyclic organo-peptides as selective carbohydrate receptors

T2 - Design, solid-phase synthesis, and on-bead binding capability

AU - Benito, Juan M.

AU - Meldal, Morten

PY - 2004/4

Y1 - 2004/4

N2 - Selective recognition of monosaccharides in polar media by conformationally restricted bicyclic peptides containing an aromatic surface to facilitate the initial interaction has been examined. Molecular modeling assisted design of these peptidic receptors has been employed to optimize guest fitting in the peptide cavity. Different solid-phase synthetic approaches to the target structures are discussed in order to develop a flexible methodology suitable for a combinatorial approach. A series of putative receptors, differing in the aromatic spacer as well as the peptide ring size, has been synthesized and characterized by HPLC and HR-MS. They have been subjected to FRET-based screening for binding to mono and disaccharides. This indicates that binding properties are strongly dependent on the size and rigidity of the receptors, detecting β-glucoside selectivity in the case of a naphthyl-bridged cyclic dodecapeptide. In addition, an ES-MS/MS-based method that allows structural elucidation of single bead samples with no need of encoding techniques has been devised, which will be useful for structure elucidation in libraries of cyclic peptides.

AB - Selective recognition of monosaccharides in polar media by conformationally restricted bicyclic peptides containing an aromatic surface to facilitate the initial interaction has been examined. Molecular modeling assisted design of these peptidic receptors has been employed to optimize guest fitting in the peptide cavity. Different solid-phase synthetic approaches to the target structures are discussed in order to develop a flexible methodology suitable for a combinatorial approach. A series of putative receptors, differing in the aromatic spacer as well as the peptide ring size, has been synthesized and characterized by HPLC and HR-MS. They have been subjected to FRET-based screening for binding to mono and disaccharides. This indicates that binding properties are strongly dependent on the size and rigidity of the receptors, detecting β-glucoside selectivity in the case of a naphthyl-bridged cyclic dodecapeptide. In addition, an ES-MS/MS-based method that allows structural elucidation of single bead samples with no need of encoding techniques has been devised, which will be useful for structure elucidation in libraries of cyclic peptides.

KW - Carbohydrate receptor

KW - Electrospray tandem MS-MS

KW - Fluorescence resonance energy transfer (FRET)

KW - Molecular recognition

KW - Solid-phase synthesis

UR - http://www.scopus.com/inward/record.url?scp=8444227539&partnerID=8YFLogxK

U2 - 10.1002/qsar.200320011

DO - 10.1002/qsar.200320011

M3 - Journal article

AN - SCOPUS:8444227539

VL - 23

SP - 117

EP - 129

JO - Molecular Informatics

JF - Molecular Informatics

SN - 1868-1743

IS - 2-3

ER -

ID: 326847909