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Rational Design of Stapled Antimicrobial Peptides to Enhance Stability and In Vivo Potency against Polymicrobial Sepsis

In this work, we sought to develop a TP4-based stapled peptide that can be used to counter polymicrobial sepsis. First, we segregated the TP4 sequence into hydrophobic and cationic/hydrophilic zones and substituted the preferred residue, lysine, as the sole cationic amino acid. These modifications m...

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Autores principales: Yeh, Jih-Chao, Hazam, Prakash Kishore, Hsieh, Chu-Yi, Hsu, Po-Hsien, Lin, Wen-Chun, Chen, Yun-Ru, Li, Chao-Chin, Chen, Jyh-Yih
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10101059/
https://www.ncbi.nlm.nih.gov/pubmed/36877022
http://dx.doi.org/10.1128/spectrum.03853-22
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author Yeh, Jih-Chao
Hazam, Prakash Kishore
Hsieh, Chu-Yi
Hsu, Po-Hsien
Lin, Wen-Chun
Chen, Yun-Ru
Li, Chao-Chin
Chen, Jyh-Yih
author_facet Yeh, Jih-Chao
Hazam, Prakash Kishore
Hsieh, Chu-Yi
Hsu, Po-Hsien
Lin, Wen-Chun
Chen, Yun-Ru
Li, Chao-Chin
Chen, Jyh-Yih
author_sort Yeh, Jih-Chao
collection PubMed
description In this work, we sought to develop a TP4-based stapled peptide that can be used to counter polymicrobial sepsis. First, we segregated the TP4 sequence into hydrophobic and cationic/hydrophilic zones and substituted the preferred residue, lysine, as the sole cationic amino acid. These modifications minimized the intensity of cationic or hydrophobic characteristics within small segments. Then, we incorporated single or multiple staples into the peptide chain, bracketing the cationic/hydrophilic segments to improve pharmacological suitability. Using this approach, we were able to develop an AMP with low toxicity and notable in vivo efficacy. IMPORTANCE In our in vitro studies, one dual stapled peptide out of the series of candidates (TP4-3: FIIXKKSXGLFKKKAGAXKKKXIKK) showed significant activity, low toxicity, and high stability (in 50% human serum). When tested in cecal ligation and puncture (CLP) mouse models of polymicrobial sepsis, TP4-3 improved survival (87.5% on day 7). Furthermore, TP4-3 enhanced the activity of meropenem against polymicrobial sepsis (100% survival on day 7) compared to meropenem alone (37.5% survival on day 7). Molecules such as TP4-3 may be well suited for a wide variety of clinical applications.
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spelling pubmed-101010592023-04-14 Rational Design of Stapled Antimicrobial Peptides to Enhance Stability and In Vivo Potency against Polymicrobial Sepsis Yeh, Jih-Chao Hazam, Prakash Kishore Hsieh, Chu-Yi Hsu, Po-Hsien Lin, Wen-Chun Chen, Yun-Ru Li, Chao-Chin Chen, Jyh-Yih Microbiol Spectr Research Article In this work, we sought to develop a TP4-based stapled peptide that can be used to counter polymicrobial sepsis. First, we segregated the TP4 sequence into hydrophobic and cationic/hydrophilic zones and substituted the preferred residue, lysine, as the sole cationic amino acid. These modifications minimized the intensity of cationic or hydrophobic characteristics within small segments. Then, we incorporated single or multiple staples into the peptide chain, bracketing the cationic/hydrophilic segments to improve pharmacological suitability. Using this approach, we were able to develop an AMP with low toxicity and notable in vivo efficacy. IMPORTANCE In our in vitro studies, one dual stapled peptide out of the series of candidates (TP4-3: FIIXKKSXGLFKKKAGAXKKKXIKK) showed significant activity, low toxicity, and high stability (in 50% human serum). When tested in cecal ligation and puncture (CLP) mouse models of polymicrobial sepsis, TP4-3 improved survival (87.5% on day 7). Furthermore, TP4-3 enhanced the activity of meropenem against polymicrobial sepsis (100% survival on day 7) compared to meropenem alone (37.5% survival on day 7). Molecules such as TP4-3 may be well suited for a wide variety of clinical applications. American Society for Microbiology 2023-03-06 /pmc/articles/PMC10101059/ /pubmed/36877022 http://dx.doi.org/10.1128/spectrum.03853-22 Text en Copyright © 2023 Yeh et al. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Yeh, Jih-Chao
Hazam, Prakash Kishore
Hsieh, Chu-Yi
Hsu, Po-Hsien
Lin, Wen-Chun
Chen, Yun-Ru
Li, Chao-Chin
Chen, Jyh-Yih
Rational Design of Stapled Antimicrobial Peptides to Enhance Stability and In Vivo Potency against Polymicrobial Sepsis
title Rational Design of Stapled Antimicrobial Peptides to Enhance Stability and In Vivo Potency against Polymicrobial Sepsis
title_full Rational Design of Stapled Antimicrobial Peptides to Enhance Stability and In Vivo Potency against Polymicrobial Sepsis
title_fullStr Rational Design of Stapled Antimicrobial Peptides to Enhance Stability and In Vivo Potency against Polymicrobial Sepsis
title_full_unstemmed Rational Design of Stapled Antimicrobial Peptides to Enhance Stability and In Vivo Potency against Polymicrobial Sepsis
title_short Rational Design of Stapled Antimicrobial Peptides to Enhance Stability and In Vivo Potency against Polymicrobial Sepsis
title_sort rational design of stapled antimicrobial peptides to enhance stability and in vivo potency against polymicrobial sepsis
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10101059/
https://www.ncbi.nlm.nih.gov/pubmed/36877022
http://dx.doi.org/10.1128/spectrum.03853-22
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