Cargando…

Main-chain flexibility and hydrophobicity of ionenes strongly impact their antimicrobial activity: an extended study on drug resistance strains and Mycobacterium

The spread of antibiotic-resistant pathogens and the resurgence of tuberculosis disease are major motivations to search for novel antimicrobial agents. Some promising candidates in this respect are cationic polymers, also known as synthetic mimics of antimicrobial peptides (SMAMPs), which act throug...

Descripción completa

Detalles Bibliográficos
Autores principales: Kopiasz, Rafał Jerzy, Zabost, Anna, Myszka, Magdalena, Kuźmińska, Aleksandra, Drężek, Karolina, Mierzejewska, Jolanta, Tomaszewski, Waldemar, Iwańska, Agnieszka, Augustynowicz-Kopeć, Ewa, Ciach, Tomasz, Jańczewski, Dominik
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9477016/
https://www.ncbi.nlm.nih.gov/pubmed/36275090
http://dx.doi.org/10.1039/d2ra04121a
_version_ 1784790263025106944
author Kopiasz, Rafał Jerzy
Zabost, Anna
Myszka, Magdalena
Kuźmińska, Aleksandra
Drężek, Karolina
Mierzejewska, Jolanta
Tomaszewski, Waldemar
Iwańska, Agnieszka
Augustynowicz-Kopeć, Ewa
Ciach, Tomasz
Jańczewski, Dominik
author_facet Kopiasz, Rafał Jerzy
Zabost, Anna
Myszka, Magdalena
Kuźmińska, Aleksandra
Drężek, Karolina
Mierzejewska, Jolanta
Tomaszewski, Waldemar
Iwańska, Agnieszka
Augustynowicz-Kopeć, Ewa
Ciach, Tomasz
Jańczewski, Dominik
author_sort Kopiasz, Rafał Jerzy
collection PubMed
description The spread of antibiotic-resistant pathogens and the resurgence of tuberculosis disease are major motivations to search for novel antimicrobial agents. Some promising candidates in this respect are cationic polymers, also known as synthetic mimics of antimicrobial peptides (SMAMPs), which act through the membrane-lytic mechanism. Development of resistance toward SMAMPs is less likely than toward currently employed antibiotics; however, further studies are needed to better understand their structure–activity relationship. The main objective of this work is to understand the cross-influence of hydrophobicity, main-chain flexibility, and the topology of ionenes (polycations containing a cationic moiety within the main-chain) on activity. To fulfill this goal, a library of ionenes was developed and compared with previously investigated molecules. The obtained compounds display promising activity against the model microorganisms and drug-resistance clinical isolates, including Mycobacterium tuberculosis. The killing efficiency was also investigated, and results confirm a strong effect of hydrophobicity, revealing higher activity for molecules possessing the flexible linker within the polymer main-chain.
format Online
Article
Text
id pubmed-9477016
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-94770162022-10-20 Main-chain flexibility and hydrophobicity of ionenes strongly impact their antimicrobial activity: an extended study on drug resistance strains and Mycobacterium Kopiasz, Rafał Jerzy Zabost, Anna Myszka, Magdalena Kuźmińska, Aleksandra Drężek, Karolina Mierzejewska, Jolanta Tomaszewski, Waldemar Iwańska, Agnieszka Augustynowicz-Kopeć, Ewa Ciach, Tomasz Jańczewski, Dominik RSC Adv Chemistry The spread of antibiotic-resistant pathogens and the resurgence of tuberculosis disease are major motivations to search for novel antimicrobial agents. Some promising candidates in this respect are cationic polymers, also known as synthetic mimics of antimicrobial peptides (SMAMPs), which act through the membrane-lytic mechanism. Development of resistance toward SMAMPs is less likely than toward currently employed antibiotics; however, further studies are needed to better understand their structure–activity relationship. The main objective of this work is to understand the cross-influence of hydrophobicity, main-chain flexibility, and the topology of ionenes (polycations containing a cationic moiety within the main-chain) on activity. To fulfill this goal, a library of ionenes was developed and compared with previously investigated molecules. The obtained compounds display promising activity against the model microorganisms and drug-resistance clinical isolates, including Mycobacterium tuberculosis. The killing efficiency was also investigated, and results confirm a strong effect of hydrophobicity, revealing higher activity for molecules possessing the flexible linker within the polymer main-chain. The Royal Society of Chemistry 2022-09-15 /pmc/articles/PMC9477016/ /pubmed/36275090 http://dx.doi.org/10.1039/d2ra04121a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Kopiasz, Rafał Jerzy
Zabost, Anna
Myszka, Magdalena
Kuźmińska, Aleksandra
Drężek, Karolina
Mierzejewska, Jolanta
Tomaszewski, Waldemar
Iwańska, Agnieszka
Augustynowicz-Kopeć, Ewa
Ciach, Tomasz
Jańczewski, Dominik
Main-chain flexibility and hydrophobicity of ionenes strongly impact their antimicrobial activity: an extended study on drug resistance strains and Mycobacterium
title Main-chain flexibility and hydrophobicity of ionenes strongly impact their antimicrobial activity: an extended study on drug resistance strains and Mycobacterium
title_full Main-chain flexibility and hydrophobicity of ionenes strongly impact their antimicrobial activity: an extended study on drug resistance strains and Mycobacterium
title_fullStr Main-chain flexibility and hydrophobicity of ionenes strongly impact their antimicrobial activity: an extended study on drug resistance strains and Mycobacterium
title_full_unstemmed Main-chain flexibility and hydrophobicity of ionenes strongly impact their antimicrobial activity: an extended study on drug resistance strains and Mycobacterium
title_short Main-chain flexibility and hydrophobicity of ionenes strongly impact their antimicrobial activity: an extended study on drug resistance strains and Mycobacterium
title_sort main-chain flexibility and hydrophobicity of ionenes strongly impact their antimicrobial activity: an extended study on drug resistance strains and mycobacterium
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9477016/
https://www.ncbi.nlm.nih.gov/pubmed/36275090
http://dx.doi.org/10.1039/d2ra04121a
work_keys_str_mv AT kopiaszrafałjerzy mainchainflexibilityandhydrophobicityofionenesstronglyimpacttheirantimicrobialactivityanextendedstudyondrugresistancestrainsandmycobacterium
AT zabostanna mainchainflexibilityandhydrophobicityofionenesstronglyimpacttheirantimicrobialactivityanextendedstudyondrugresistancestrainsandmycobacterium
AT myszkamagdalena mainchainflexibilityandhydrophobicityofionenesstronglyimpacttheirantimicrobialactivityanextendedstudyondrugresistancestrainsandmycobacterium
AT kuzminskaaleksandra mainchainflexibilityandhydrophobicityofionenesstronglyimpacttheirantimicrobialactivityanextendedstudyondrugresistancestrainsandmycobacterium
AT drezekkarolina mainchainflexibilityandhydrophobicityofionenesstronglyimpacttheirantimicrobialactivityanextendedstudyondrugresistancestrainsandmycobacterium
AT mierzejewskajolanta mainchainflexibilityandhydrophobicityofionenesstronglyimpacttheirantimicrobialactivityanextendedstudyondrugresistancestrainsandmycobacterium
AT tomaszewskiwaldemar mainchainflexibilityandhydrophobicityofionenesstronglyimpacttheirantimicrobialactivityanextendedstudyondrugresistancestrainsandmycobacterium
AT iwanskaagnieszka mainchainflexibilityandhydrophobicityofionenesstronglyimpacttheirantimicrobialactivityanextendedstudyondrugresistancestrainsandmycobacterium
AT augustynowiczkopecewa mainchainflexibilityandhydrophobicityofionenesstronglyimpacttheirantimicrobialactivityanextendedstudyondrugresistancestrainsandmycobacterium
AT ciachtomasz mainchainflexibilityandhydrophobicityofionenesstronglyimpacttheirantimicrobialactivityanextendedstudyondrugresistancestrainsandmycobacterium
AT janczewskidominik mainchainflexibilityandhydrophobicityofionenesstronglyimpacttheirantimicrobialactivityanextendedstudyondrugresistancestrainsandmycobacterium