Cargando…

Peptide Conjugates Derived from flg15, Pep13, and PIP1 That Are Active against Plant-Pathogenic Bacteria and Trigger Plant Defense Responses

Thirty peptide conjugates were designed by combining an antimicrobial peptide (BP16, BP100, BP143, KSL-W, BP387, or BP475) at the N- or C-terminus of a plant defense elicitor peptide (flg15, BP13, Pep13, or PIP1). These conjugates were highly active in vitro against six plant-pathogenic bacteria, es...

Descripción completa

Detalles Bibliográficos
Autores principales: Oliveras, Àngel, Camó, Cristina, Caravaca-Fuentes, Pau, Moll, Luís, Riesco-Llach, Gerard, Gil-Caballero, Sergio, Badosa, Esther, Bonaterra, Anna, Montesinos, Emilio, Feliu, Lidia, Planas, Marta
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9238401/
https://www.ncbi.nlm.nih.gov/pubmed/35638842
http://dx.doi.org/10.1128/aem.00574-22
_version_ 1784737041904304128
author Oliveras, Àngel
Camó, Cristina
Caravaca-Fuentes, Pau
Moll, Luís
Riesco-Llach, Gerard
Gil-Caballero, Sergio
Badosa, Esther
Bonaterra, Anna
Montesinos, Emilio
Feliu, Lidia
Planas, Marta
author_facet Oliveras, Àngel
Camó, Cristina
Caravaca-Fuentes, Pau
Moll, Luís
Riesco-Llach, Gerard
Gil-Caballero, Sergio
Badosa, Esther
Bonaterra, Anna
Montesinos, Emilio
Feliu, Lidia
Planas, Marta
author_sort Oliveras, Àngel
collection PubMed
description Thirty peptide conjugates were designed by combining an antimicrobial peptide (BP16, BP100, BP143, KSL-W, BP387, or BP475) at the N- or C-terminus of a plant defense elicitor peptide (flg15, BP13, Pep13, or PIP1). These conjugates were highly active in vitro against six plant-pathogenic bacteria, especially against Xanthomonas arboricola pv. pruni, Xanthomonas fragariae and Xanthomonas axonopodis pv. vesicatoria. The most active peptides were those incorporating Pep13. The order of the conjugation influenced the antibacterial activity and the hemolysis. Regarding the former, peptide conjugates incorporating the elicitor peptide flg15 or Pep13 at the C-terminus were, in general, more active against Pseudomonas syringae pv. actinidiae and P. syringae pv. syringae, whereas those bearing these elicitor peptides at the N-terminus displayed higher activity against Erwinia. amylovora and the Xanthomonas species. The best peptide conjugates displayed MIC values between 0.8 and 12.5 μM against all the bacteria tested and also had low levels of hemolysis and low phytotoxicity. Analysis of the structural and physicochemical parameters revealed that a positive charge ranging from +5 to +7 and a moderate hydrophobic moment/amphipathic character is required for an optimal biological profile. Interestingly, flg15-BP475 exhibited a dual activity, causing the upregulation of the same genes as flg15 and reducing the severity of bacterial spot in tomato plants with a similar or even higher efficacy than copper oxychloride. Characterization by nuclear magnetic resonance (NMR) of the secondary structure of flg15-BP475 showed that residues 10 to 25 fold into an α-helix. This study establishes trends to design new bifunctional peptides useful against plant diseases caused by plant-pathogenic bacteria. IMPORTANCE The consequences of plant pathogens on crop production together with the lack of effective and environmentally friendly pesticides evidence the need of new agents to control plant diseases. Antimicrobial and plant defense elicitor peptides have emerged as good candidates to tackle this problem. This study focused on combining these two types of peptides into a single conjugate with the aim to potentiate the activity of the individual fragments. Differences in the biological activity of the resulting peptide conjugates were obtained depending on their charge, amphipathicity, and hydrophobicity, as well as on the order of the conjugation of the monomers. This work provided bifunctional peptide conjugates able to inhibit several plant-pathogenic bacteria, to stimulate plant defense responses, and to reduce the severity of bacterial spot in tomato plants. Thus, this study could serve as the basis for the development of new antibacterial/plant defense elicitor peptides to control bacterial plant pathogens.
format Online
Article
Text
id pubmed-9238401
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher American Society for Microbiology
record_format MEDLINE/PubMed
spelling pubmed-92384012022-06-29 Peptide Conjugates Derived from flg15, Pep13, and PIP1 That Are Active against Plant-Pathogenic Bacteria and Trigger Plant Defense Responses Oliveras, Àngel Camó, Cristina Caravaca-Fuentes, Pau Moll, Luís Riesco-Llach, Gerard Gil-Caballero, Sergio Badosa, Esther Bonaterra, Anna Montesinos, Emilio Feliu, Lidia Planas, Marta Appl Environ Microbiol Plant Microbiology Thirty peptide conjugates were designed by combining an antimicrobial peptide (BP16, BP100, BP143, KSL-W, BP387, or BP475) at the N- or C-terminus of a plant defense elicitor peptide (flg15, BP13, Pep13, or PIP1). These conjugates were highly active in vitro against six plant-pathogenic bacteria, especially against Xanthomonas arboricola pv. pruni, Xanthomonas fragariae and Xanthomonas axonopodis pv. vesicatoria. The most active peptides were those incorporating Pep13. The order of the conjugation influenced the antibacterial activity and the hemolysis. Regarding the former, peptide conjugates incorporating the elicitor peptide flg15 or Pep13 at the C-terminus were, in general, more active against Pseudomonas syringae pv. actinidiae and P. syringae pv. syringae, whereas those bearing these elicitor peptides at the N-terminus displayed higher activity against Erwinia. amylovora and the Xanthomonas species. The best peptide conjugates displayed MIC values between 0.8 and 12.5 μM against all the bacteria tested and also had low levels of hemolysis and low phytotoxicity. Analysis of the structural and physicochemical parameters revealed that a positive charge ranging from +5 to +7 and a moderate hydrophobic moment/amphipathic character is required for an optimal biological profile. Interestingly, flg15-BP475 exhibited a dual activity, causing the upregulation of the same genes as flg15 and reducing the severity of bacterial spot in tomato plants with a similar or even higher efficacy than copper oxychloride. Characterization by nuclear magnetic resonance (NMR) of the secondary structure of flg15-BP475 showed that residues 10 to 25 fold into an α-helix. This study establishes trends to design new bifunctional peptides useful against plant diseases caused by plant-pathogenic bacteria. IMPORTANCE The consequences of plant pathogens on crop production together with the lack of effective and environmentally friendly pesticides evidence the need of new agents to control plant diseases. Antimicrobial and plant defense elicitor peptides have emerged as good candidates to tackle this problem. This study focused on combining these two types of peptides into a single conjugate with the aim to potentiate the activity of the individual fragments. Differences in the biological activity of the resulting peptide conjugates were obtained depending on their charge, amphipathicity, and hydrophobicity, as well as on the order of the conjugation of the monomers. This work provided bifunctional peptide conjugates able to inhibit several plant-pathogenic bacteria, to stimulate plant defense responses, and to reduce the severity of bacterial spot in tomato plants. Thus, this study could serve as the basis for the development of new antibacterial/plant defense elicitor peptides to control bacterial plant pathogens. American Society for Microbiology 2022-05-31 /pmc/articles/PMC9238401/ /pubmed/35638842 http://dx.doi.org/10.1128/aem.00574-22 Text en Copyright © 2022 Oliveras 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 Plant Microbiology
Oliveras, Àngel
Camó, Cristina
Caravaca-Fuentes, Pau
Moll, Luís
Riesco-Llach, Gerard
Gil-Caballero, Sergio
Badosa, Esther
Bonaterra, Anna
Montesinos, Emilio
Feliu, Lidia
Planas, Marta
Peptide Conjugates Derived from flg15, Pep13, and PIP1 That Are Active against Plant-Pathogenic Bacteria and Trigger Plant Defense Responses
title Peptide Conjugates Derived from flg15, Pep13, and PIP1 That Are Active against Plant-Pathogenic Bacteria and Trigger Plant Defense Responses
title_full Peptide Conjugates Derived from flg15, Pep13, and PIP1 That Are Active against Plant-Pathogenic Bacteria and Trigger Plant Defense Responses
title_fullStr Peptide Conjugates Derived from flg15, Pep13, and PIP1 That Are Active against Plant-Pathogenic Bacteria and Trigger Plant Defense Responses
title_full_unstemmed Peptide Conjugates Derived from flg15, Pep13, and PIP1 That Are Active against Plant-Pathogenic Bacteria and Trigger Plant Defense Responses
title_short Peptide Conjugates Derived from flg15, Pep13, and PIP1 That Are Active against Plant-Pathogenic Bacteria and Trigger Plant Defense Responses
title_sort peptide conjugates derived from flg15, pep13, and pip1 that are active against plant-pathogenic bacteria and trigger plant defense responses
topic Plant Microbiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9238401/
https://www.ncbi.nlm.nih.gov/pubmed/35638842
http://dx.doi.org/10.1128/aem.00574-22
work_keys_str_mv AT oliverasangel peptideconjugatesderivedfromflg15pep13andpip1thatareactiveagainstplantpathogenicbacteriaandtriggerplantdefenseresponses
AT camocristina peptideconjugatesderivedfromflg15pep13andpip1thatareactiveagainstplantpathogenicbacteriaandtriggerplantdefenseresponses
AT caravacafuentespau peptideconjugatesderivedfromflg15pep13andpip1thatareactiveagainstplantpathogenicbacteriaandtriggerplantdefenseresponses
AT mollluis peptideconjugatesderivedfromflg15pep13andpip1thatareactiveagainstplantpathogenicbacteriaandtriggerplantdefenseresponses
AT riescollachgerard peptideconjugatesderivedfromflg15pep13andpip1thatareactiveagainstplantpathogenicbacteriaandtriggerplantdefenseresponses
AT gilcaballerosergio peptideconjugatesderivedfromflg15pep13andpip1thatareactiveagainstplantpathogenicbacteriaandtriggerplantdefenseresponses
AT badosaesther peptideconjugatesderivedfromflg15pep13andpip1thatareactiveagainstplantpathogenicbacteriaandtriggerplantdefenseresponses
AT bonaterraanna peptideconjugatesderivedfromflg15pep13andpip1thatareactiveagainstplantpathogenicbacteriaandtriggerplantdefenseresponses
AT montesinosemilio peptideconjugatesderivedfromflg15pep13andpip1thatareactiveagainstplantpathogenicbacteriaandtriggerplantdefenseresponses
AT feliulidia peptideconjugatesderivedfromflg15pep13andpip1thatareactiveagainstplantpathogenicbacteriaandtriggerplantdefenseresponses
AT planasmarta peptideconjugatesderivedfromflg15pep13andpip1thatareactiveagainstplantpathogenicbacteriaandtriggerplantdefenseresponses