Synthesis of bioorthogonal and crosslinking amino acids for use in peptide synthesis

The ability to incorporate non-canonical amino acids into proteins by genetic or chemical methods allows one to introduce novel chemical properties into a protein at a defined residue. Such a residue may then be modified using common organic transformations. In this way, the structure or function of...

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Veröffentlicht in:Amino acids 2010-11, Vol.39 (5), p.1381-1384
Hauptverfasser: Sundaram, G. S. M, Morgan, Ian R, Tippmann, Eric M
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container_title Amino acids
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creator Sundaram, G. S. M
Morgan, Ian R
Tippmann, Eric M
description The ability to incorporate non-canonical amino acids into proteins by genetic or chemical methods allows one to introduce novel chemical properties into a protein at a defined residue. Such a residue may then be modified using common organic transformations. In this way, the structure or function of the peptide may be altered without perturbing any of the other neighbouring amino acids in the peptide chain. Here, we describe the syntheses and potential applications of multiple para-substituted phenylalanine derivatives comprising an isothiocyanate, α-diazoketone, or nitrone functionality. In all, three novel amino acids were synthesized in good overall yields. These non-canonical amino acids permit the further development of in vitro and in vivo chemoselective and regioselective bioconjugate reactions not possible with other reagents.
doi_str_mv 10.1007/s00726-010-0594-3
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subjects Amino acids
Analytical Chemistry
Biochemical Engineering
Biochemistry
Bioconjugate chemistry
Biomedical and Life Sciences
Expanded genetic code
Isothiocyanates - chemistry
Ketones - chemistry
Life Sciences
Molecular Structure
Neurobiology
Nitrogen Oxides - chemistry
Non-canonical amino acids
Original Article
Peptides
Peptides - chemical synthesis
Peptides - chemistry
Phenylalanine - chemical synthesis
Phenylalanine - chemistry
Proteomics
Stereoisomerism
title Synthesis of bioorthogonal and crosslinking amino acids for use in peptide synthesis
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