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Updated: Jan 10, 2026

Chemical Modification of the Tryptophan Residue in a Recombinant Ca2+-ATPase N-domain for Studying Tryptophan-ANS FRET
Published on: October 9, 2021
Impact of Tryptophan Positional Isomerism on Physicochemical and Biological Properties: A Case Study Using Gramicidin
Takahiro Migita1, Hiroaki Itoh1, Hiroshi Hamamoto2
1Graduate School of Pharmaceutical Sciences, The University of Tokyo, 7-3-1 Hongo, Bunkyo-ku, Tokyo 113-0033, Japan.
Abstract:
Tryptophan (Trp) displays unique physicochemical properties due to its C3-substituted indole ring, containing a hydrophobic benzene ring and a hydrophilic N-H bond. Herein, we synthetically incorporated five Trp positional isomers with C2/4/5/6/7-substituted indoles in place of the Trp of residue 11 in gramicidin A, a 15-mer linear peptidic natural product. Gramicidin A conducts monovalent cations across the cell membrane and exhibits potent toxicity against both bacterial and mammalian cells. Our functional evaluation of the five analogs revealed that positional isomerism controlled the overall hydrophobicity and biological activities for the first time. Most importantly, we found that the hydrophobicity of the analogs correlated with the potency of mammalian cytotoxicity but not with the strength of the antibacterial activity, indicating that antibacterial and mammalian toxicities can be separated only by tuning the hydrophobicity. In addition, we designed and synthesized a triply mutated analog, in which the original valine, leucine, and Trp were replaced with less hydrophobic threonine, valine, and a C5-isomer, respectively. While the original antibacterial activity was maintained, the mammalian toxicity of the analog was more than 20-fold weaker. Consequently, these new findings offer a novel molecular editing approach to optimize the physicochemical and biological properties of Trp-containing bioactive peptides and proteins.
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