Synthesis, characterization and biological activity of bifunctional ionic liquids based on dodine ion.

antifungal agents bifunctional salts ionic liquids sustainable agriculture systemic acquired resistance

Journal

Pest management science
ISSN: 1526-4998
Titre abrégé: Pest Manag Sci
Pays: England
ID NLM: 100898744

Informations de publication

Date de publication:
Feb 2022
Historique:
revised: 06 09 2021
received: 10 06 2021
accepted: 09 09 2021
pubmed: 11 9 2021
medline: 12 1 2022
entrez: 10 9 2021
Statut: ppublish

Résumé

Development of new plant protection strategies has become an urgent matter in modern agriculture, in view of the evidently proved negative effect of currently used active ingredients of pesticides. In recent years, much effort has been made to eliminate the use of pesticides established to be toxic to pollinators. In this study, we present a group of new bifunctional ionic liquids based on dodine (N-dodecylguanidine) cation whose physical and biological properties have been modified relative to those of the commercially available N-dodecylguanidine acetate. The decreased level of residue of active substances in plant tissues reduces their availability to pollinators, which increases the safety of their use. Moreover, lower environmental impact in combination with high antifungal activity and an additional biological function, that is the systemic acquired resistance induction, are in line with the goals of sustainable agriculture. The presented approach shows the possibility of derivatization of commonly used fungicide into the form of bifunctional salts whose physical and biological properties can be easily modified. The paper reports successful design and synthesis of new sustainable and green chemicals for the modern agriculture, being less toxic to the environment and human health but still effective against pathogens. © 2021 Society of Chemical Industry.

Sections du résumé

BACKGROUND BACKGROUND
Development of new plant protection strategies has become an urgent matter in modern agriculture, in view of the evidently proved negative effect of currently used active ingredients of pesticides. In recent years, much effort has been made to eliminate the use of pesticides established to be toxic to pollinators.
RESULTS RESULTS
In this study, we present a group of new bifunctional ionic liquids based on dodine (N-dodecylguanidine) cation whose physical and biological properties have been modified relative to those of the commercially available N-dodecylguanidine acetate. The decreased level of residue of active substances in plant tissues reduces their availability to pollinators, which increases the safety of their use. Moreover, lower environmental impact in combination with high antifungal activity and an additional biological function, that is the systemic acquired resistance induction, are in line with the goals of sustainable agriculture.
CONCLUSION CONCLUSIONS
The presented approach shows the possibility of derivatization of commonly used fungicide into the form of bifunctional salts whose physical and biological properties can be easily modified. The paper reports successful design and synthesis of new sustainable and green chemicals for the modern agriculture, being less toxic to the environment and human health but still effective against pathogens. © 2021 Society of Chemical Industry.

Identifiants

pubmed: 34505331
doi: 10.1002/ps.6639
doi:

Substances chimiques

Guanidines 0
Ionic Liquids 0
Pesticides 0
dodine 259C423Y98

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

446-455

Subventions

Organisme : Fundacja na rzecz Nauki Polskiej
Organisme : Narodowe Centrum Nauki
Organisme : European Regional Development Fund
Organisme : European Union
Organisme : Foundation for Polish Science
Organisme : National Science Centre

Informations de copyright

© 2021 Society of Chemical Industry.

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Auteurs

Rafal Kukawka (R)

Innosil Sp. z o.o, Rubiez 46, Poznan, 61-612, Poland.
Poznan Science and Technology Park, Adam Mickiewicz University Foundation, Rubiez 46, Poznan, 61-612, Poland.

Maciej Spychalski (M)

Poznan Science and Technology Park, Adam Mickiewicz University Foundation, Rubiez 46, Poznan, 61-612, Poland.

Ewa Stróżyk (E)

Poznan Science and Technology Park, Adam Mickiewicz University Foundation, Rubiez 46, Poznan, 61-612, Poland.

Ewa Byzia (E)

Poznan Science and Technology Park, Adam Mickiewicz University Foundation, Rubiez 46, Poznan, 61-612, Poland.

Adrian Zajac (A)

Poznan Science and Technology Park, Adam Mickiewicz University Foundation, Rubiez 46, Poznan, 61-612, Poland.

Piotr Kaczyński (P)

Plant Protection Institute - National Research Institute, Laboratory of Pesticide Residues, Chełmońskiego 22, Bialystok, 15-195, Poland.

Bożena Łozowicka (B)

Plant Protection Institute - National Research Institute, Laboratory of Pesticide Residues, Chełmońskiego 22, Bialystok, 15-195, Poland.

Henryk Pospieszny (H)

Poznan Science and Technology Park, Adam Mickiewicz University Foundation, Rubiez 46, Poznan, 61-612, Poland.
Plant Protection Institute - National Research Institute, Department of Virology and Bacteriology, Węgorka 20, Poznan, 60-318, Poland.

Marcin Smiglak (M)

Innosil Sp. z o.o, Rubiez 46, Poznan, 61-612, Poland.
Poznan Science and Technology Park, Adam Mickiewicz University Foundation, Rubiez 46, Poznan, 61-612, Poland.

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