{"id":{"repo_id":"dundee","oai_identifier":"oai:discovery.dundee.ac.uk:studenttheses/fbf46527-8ef7-4f80-8131-5e4c9a731151"},"canonical_url":"https://search.dev.ndltd.org/etd/dundee/oai:discovery.dundee.ac.uk:studenttheses/fbf46527-8ef7-4f80-8131-5e4c9a731151","repository":{"repo_id":"dundee","name":"University of Dundee","base_url":"https://discovery.dundee.ac.uk/ws/oai"},"display":{"title":"Identification and molecular characterisation of elicitor-priming for resistance in tomato against <i>Botrytis cinerea</i>","abstract":"Conventional crop protectants (fungicides) can lose their efficacy due to selection pressure for pathogen resistance caused by their widespread use<sup>1</sup>. To date, there is a lack of genetic resistance in commercial crop varieties against necrotrophic fungal pathogens<sup>2</sup>, such as <i>Botrytis cinerea</i>. The aggressive fungal pathogen <i>Botrytis cinerea</i> infects almost all vegetable and fruit crops<sup>3</sup>(&gt;1400 plant species), killing the host by inducing necrosis with degradation enzymes (virulence factors) and manipulating its host defences. Non-host inducing agents, such as elicitor molecules, are able to stimulate pathogen-induced defence mechanisms in the plant<sup>4 </sup>and induce plant defences for increased and more efficient resistance (priming) against pathogens such as <i>B. cinerea</i>. Priming is based on a fine-tuned and enhanced resistance to biotic/abiotic stress that results in a faster and stronger expression of resistance upon pathogen attack<sup>5</sup>. This study aimed to identify candidate elicitors, determine their mode of action in the plant-<i>B.cinerea</i> interacion, characterise their molecular function and investigate a candidate elicitor role in priming tomato against <i>B.cinerea</i>. Resistance phenotypic assays have revealed that chitosan, a MAMP, was able to induced resistance in solanaceous crops <i>Solanum melongena</i>, <i>Nicotiana benthamiana</i>, <i>Solanum lycopersicum </i>and brassicaceous plant <i>Arabidopsis thaliana</i> by significantly decreasing necrotic lesion sizes and priming for callose deposition in a concentration-dependent manner. Furthermore, large-scale double (host/pathogen) transcriptomic analysis has unveiled that chitosan was able to prime 1,745 tomato transcripts during early and asymptomatic stages of <i>B. cinerea</i> infection. Transcriptome-based geneontology (GO) enrichment and HPLC/MS analyses revealed that chitosan-priming targets five main clusters, incuding 1) a higher cell sensitization throughout a faster and stronger transmembrane receptor/receptor-like kinase, CaBP and signal transducer activity; 2) a cell-wall reinforcement through R protein activation, cellulose synthesis and PGs, PMEs and xyloglucan repression; 3) a fine-tuned potentiation of JA/JA-Ile synthesis and JA/ET/SA/ABA transcriptional regulation; 4) an induction of the lipid/fatty acid metabolism and phenylpropanoid pathway; and 5) a strong repression of <i>B. cinerea </i>PGs, <i>BcSOD</i>, hexokinase and novel virulence factor uracil phosphoribosyltransferase (<i>BcUPRT</i>).Transcriptome analysis helped to the identification of two tomato novel and co-expressed genes,<i>SlACRE75 </i>and <i>SlACRE180</i>. Both transcripts and their <i>N. benthamiana</i> homologs were primed by chitosan early during infection and encode small proteins without a signal peptide and with unknown functions. Subcellular localization indicates that the four proteins are involved in intracellular/cytoplasmatic signalling. Finally, transient and constitutive overexpression of <i>SlACRE75</i>, <i>SlACRE180 </i>and their <i>N. benthamiana </i>homologs revealed that they are positive regulators of plant resistance against <i>B. cinerea</i>. Identification of specific chitosan-primed tomato pathways and genes such as <i>ACRE75 </i>and <i>ACRE180</i>; and <i>BcUPRT</i>, will provide a valuable resource for developing novel fungicide use strategies and engineering non-host resistance against necrotrophs in dicots.","abstract_html":"Conventional crop protectants (fungicides) can lose their efficacy due to selection pressure for pathogen resistance caused by their widespread use&lt;sup&gt;1&lt;/sup&gt;. To date, there is a lack of genetic resistance in commercial crop varieties against necrotrophic fungal pathogens&lt;sup&gt;2&lt;/sup&gt;, such as &lt;i&gt;Botrytis cinerea&lt;/i&gt;. The aggressive fungal pathogen &lt;i&gt;Botrytis cinerea&lt;/i&gt; infects almost all vegetable and fruit crops&lt;sup&gt;3&lt;/sup&gt;(&amp;gt;1400 plant species), killing the host by inducing necrosis with degradation enzymes (virulence factors) and manipulating its host defences. Non-host inducing agents, such as elicitor molecules, are able to stimulate pathogen-induced defence mechanisms in the plant&lt;sup&gt;4 &lt;/sup&gt;and induce plant defences for increased and more efficient resistance (priming) against pathogens such as &lt;i&gt;B. cinerea&lt;/i&gt;. Priming is based on a fine-tuned and enhanced resistance to biotic/abiotic stress that results in a faster and stronger expression of resistance upon pathogen attack&lt;sup&gt;5&lt;/sup&gt;. This study aimed to identify candidate elicitors, determine their mode of action in the plant-&lt;i&gt;B.cinerea&lt;/i&gt; interacion, characterise their molecular function and investigate a candidate elicitor role in priming tomato against &lt;i&gt;B.cinerea&lt;/i&gt;. Resistance phenotypic assays have revealed that chitosan, a MAMP, was able to induced resistance in solanaceous crops &lt;i&gt;Solanum melongena&lt;/i&gt;, &lt;i&gt;Nicotiana benthamiana&lt;/i&gt;, &lt;i&gt;Solanum lycopersicum &lt;/i&gt;and brassicaceous plant &lt;i&gt;Arabidopsis thaliana&lt;/i&gt; by significantly decreasing necrotic lesion sizes and priming for callose deposition in a concentration-dependent manner. Furthermore, large-scale double (host/pathogen) transcriptomic analysis has unveiled that chitosan was able to prime 1,745 tomato transcripts during early and asymptomatic stages of &lt;i&gt;B. cinerea&lt;/i&gt; infection. Transcriptome-based geneontology (GO) enrichment and HPLC/MS analyses revealed that chitosan-priming targets five main clusters, incuding 1) a higher cell sensitization throughout a faster and stronger transmembrane receptor/receptor-like kinase, CaBP and signal transducer activity; 2) a cell-wall reinforcement through R protein activation, cellulose synthesis and PGs, PMEs and xyloglucan repression; 3) a fine-tuned potentiation of JA/JA-Ile synthesis and JA/ET/SA/ABA transcriptional regulation; 4) an induction of the lipid/fatty acid metabolism and phenylpropanoid pathway; and 5) a strong repression of &lt;i&gt;B. cinerea &lt;/i&gt;PGs, &lt;i&gt;BcSOD&lt;/i&gt;, hexokinase and novel virulence factor uracil phosphoribosyltransferase (&lt;i&gt;BcUPRT&lt;/i&gt;).Transcriptome analysis helped to the identification of two tomato novel and co-expressed genes,&lt;i&gt;SlACRE75 &lt;/i&gt;and &lt;i&gt;SlACRE180&lt;/i&gt;. Both transcripts and their &lt;i&gt;N. benthamiana&lt;/i&gt; homologs were primed by chitosan early during infection and encode small proteins without a signal peptide and with unknown functions. Subcellular localization indicates that the four proteins are involved in intracellular/cytoplasmatic signalling. Finally, transient and constitutive overexpression of &lt;i&gt;SlACRE75&lt;/i&gt;, &lt;i&gt;SlACRE180 &lt;/i&gt;and their &lt;i&gt;N. benthamiana &lt;/i&gt;homologs revealed that they are positive regulators of plant resistance against &lt;i&gt;B. cinerea&lt;/i&gt;. Identification of specific chitosan-primed tomato pathways and genes such as &lt;i&gt;ACRE75 &lt;/i&gt;and &lt;i&gt;ACRE180&lt;/i&gt;; and &lt;i&gt;BcUPRT&lt;/i&gt;, will provide a valuable resource for developing novel fungicide use strategies and engineering non-host resistance against necrotrophs in dicots.","abstract_has_math":false,"creators":["De Vega Perez, Daniel"],"institution":"University of Dundee","degree_name":"Doctor of Philosophy","degree_level":"Doctoral Thesis","degree_discipline":null,"degree_department":null,"school":null,"contributors":[],"advisors":["Stanley-Wall, Nicola"],"committee_chairs":[],"committee_members":[],"year":2018,"date_issued":"2018","date_published":"2018","updated_at":"2026-07-24T02:08:32Z","subjects":[],"languages":["eng"],"rights":[],"rights_urls":[],"identifier_entries":[{"key":"dc:identifier","label":"Identifier","values":["oai:discovery.dundee.ac.uk:studenttheses/fbf46527-8ef7-4f80-8131-5e4c9a731151"],"render_values":[{"text":"oai:discovery.dundee.ac.uk:studenttheses/fbf46527-8ef7-4f80-8131-5e4c9a731151","href":null,"code":true}]}]},"links":{"outbound_url":"https://discovery.dundee.ac.uk/en/studentTheses/fbf46527-8ef7-4f80-8131-5e4c9a731151","outbound_label":"Repository record","outbound_source":"dc:identifier"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor.advisor","label":"Advisor","values":["Stanley-Wall, Nicola"]},{"key":"dc:creator","label":"Author","values":["De Vega Perez, Daniel"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date","label":"Dc Date","values":["2018"]},{"key":"dc:date.issued","label":"Date","values":["2018"]},{"key":"dc:publisher.institution","label":"Dc Publisher Institution","values":["University of Dundee"]},{"key":"dc:relation.isreferencedby","label":"Dc Relation Isreferencedby","values":["https://discovery.dundee.ac.uk/en/studentTheses/fbf46527-8ef7-4f80-8131-5e4c9a731151"]},{"key":"dc:type","label":"Dc Type","values":["Thesis"]},{"key":"dc:type.qualificationlevel","label":"Dc Type Qualificationlevel","values":["Doctoral Thesis"]},{"key":"dc:type.qualificationname","label":"Dc Type Qualificationname","values":["Doctor of Philosophy"]}]},{"id":"language_rights","label":"Language and Rights","entries":[{"key":"dc:language","label":"Dc Language","values":["eng"]},{"key":"dc:rights.embargodate","label":"Dc Rights Embargodate","values":["2020-06-30"]},{"key":"dc:rights.embargoreason","label":"Dc Rights Embargoreason","values":["/dk/atira/pure/core/document/studentthesisembargoreason/commercialexploitation"]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier","label":"Identifier","values":["oai:discovery.dundee.ac.uk:studenttheses/fbf46527-8ef7-4f80-8131-5e4c9a731151","https://discovery.dundee.ac.uk/en/studentTheses/fbf46527-8ef7-4f80-8131-5e4c9a731151"]},{"key":"dc:identifier.uri","label":"Identifier URI","values":["https://discovery.dundee.ac.uk/files/20017321/Ph.D_Thesis_Corrected_Daniel_de_Vega_Perez.pdf"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description.abstract","label":"Abstract","values":["Conventional crop protectants (fungicides) can lose their efficacy due to selection pressure for pathogen resistance caused by their widespread use<sup>1</sup>. To date, there is a lack of genetic resistance in commercial crop varieties against necrotrophic fungal pathogens<sup>2</sup>, such as <i>Botrytis cinerea</i>. The aggressive fungal pathogen <i>Botrytis cinerea</i> infects almost all vegetable and fruit crops<sup>3</sup>(&gt;1400 plant species), killing the host by inducing necrosis with degradation enzymes (virulence factors) and manipulating its host defences. Non-host inducing agents, such as elicitor molecules, are able to stimulate pathogen-induced defence mechanisms in the plant<sup>4 </sup>and induce plant defences for increased and more efficient resistance (priming) against pathogens such as <i>B. cinerea</i>. Priming is based on a fine-tuned and enhanced resistance to biotic/abiotic stress that results in a faster and stronger expression of resistance upon pathogen attack<sup>5</sup>. This study aimed to identify candidate elicitors, determine their mode of action in the plant-<i>B.cinerea</i> interacion, characterise their molecular function and investigate a candidate elicitor role in priming tomato against <i>B.cinerea</i>. Resistance phenotypic assays have revealed that chitosan, a MAMP, was able to induced resistance in solanaceous crops <i>Solanum melongena</i>, <i>Nicotiana benthamiana</i>, <i>Solanum lycopersicum </i>and brassicaceous plant <i>Arabidopsis thaliana</i> by significantly decreasing necrotic lesion sizes and priming for callose deposition in a concentration-dependent manner. Furthermore, large-scale double (host/pathogen) transcriptomic analysis has unveiled that chitosan was able to prime 1,745 tomato transcripts during early and asymptomatic stages of <i>B. cinerea</i> infection. Transcriptome-based geneontology (GO) enrichment and HPLC/MS analyses revealed that chitosan-priming targets five main clusters, incuding 1) a higher cell sensitization throughout a faster and stronger transmembrane receptor/receptor-like kinase, CaBP and signal transducer activity; 2) a cell-wall reinforcement through R protein activation, cellulose synthesis and PGs, PMEs and xyloglucan repression; 3) a fine-tuned potentiation of JA/JA-Ile synthesis and JA/ET/SA/ABA transcriptional regulation; 4) an induction of the lipid/fatty acid metabolism and phenylpropanoid pathway; and 5) a strong repression of <i>B. cinerea </i>PGs, <i>BcSOD</i>, hexokinase and novel virulence factor uracil phosphoribosyltransferase (<i>BcUPRT</i>).Transcriptome analysis helped to the identification of two tomato novel and co-expressed genes,<i>SlACRE75 </i>and <i>SlACRE180</i>. Both transcripts and their <i>N. benthamiana</i> homologs were primed by chitosan early during infection and encode small proteins without a signal peptide and with unknown functions. Subcellular localization indicates that the four proteins are involved in intracellular/cytoplasmatic signalling. Finally, transient and constitutive overexpression of <i>SlACRE75</i>, <i>SlACRE180 </i>and their <i>N. benthamiana </i>homologs revealed that they are positive regulators of plant resistance against <i>B. cinerea</i>. Identification of specific chitosan-primed tomato pathways and genes such as <i>ACRE75 </i>and <i>ACRE180</i>; and <i>BcUPRT</i>, will provide a valuable resource for developing novel fungicide use strategies and engineering non-host resistance against necrotrophs in dicots."]},{"key":"dc:title","label":"Title","values":["Identification and molecular characterisation of elicitor-priming for resistance in tomato against <i>Botrytis cinerea</i>"]}]}],"canonical_facts":{"dc:contributor.advisor":["Stanley-Wall, Nicola"],"dc:creator":["De Vega Perez, Daniel"],"dc:date":["2018"],"dc:date.issued":["2018"],"dc:description.abstract":["Conventional crop protectants (fungicides) can lose their efficacy due to selection pressure for pathogen resistance caused by their widespread use<sup>1</sup>. To date, there is a lack of genetic resistance in commercial crop varieties against necrotrophic fungal pathogens<sup>2</sup>, such as <i>Botrytis cinerea</i>. The aggressive fungal pathogen <i>Botrytis cinerea</i> infects almost all vegetable and fruit crops<sup>3</sup>(&gt;1400 plant species), killing the host by inducing necrosis with degradation enzymes (virulence factors) and manipulating its host defences. Non-host inducing agents, such as elicitor molecules, are able to stimulate pathogen-induced defence mechanisms in the plant<sup>4 </sup>and induce plant defences for increased and more efficient resistance (priming) against pathogens such as <i>B. cinerea</i>. Priming is based on a fine-tuned and enhanced resistance to biotic/abiotic stress that results in a faster and stronger expression of resistance upon pathogen attack<sup>5</sup>. This study aimed to identify candidate elicitors, determine their mode of action in the plant-<i>B.cinerea</i> interacion, characterise their molecular function and investigate a candidate elicitor role in priming tomato against <i>B.cinerea</i>. Resistance phenotypic assays have revealed that chitosan, a MAMP, was able to induced resistance in solanaceous crops <i>Solanum melongena</i>, <i>Nicotiana benthamiana</i>, <i>Solanum lycopersicum </i>and brassicaceous plant <i>Arabidopsis thaliana</i> by significantly decreasing necrotic lesion sizes and priming for callose deposition in a concentration-dependent manner. Furthermore, large-scale double (host/pathogen) transcriptomic analysis has unveiled that chitosan was able to prime 1,745 tomato transcripts during early and asymptomatic stages of <i>B. cinerea</i> infection. Transcriptome-based geneontology (GO) enrichment and HPLC/MS analyses revealed that chitosan-priming targets five main clusters, incuding 1) a higher cell sensitization throughout a faster and stronger transmembrane receptor/receptor-like kinase, CaBP and signal transducer activity; 2) a cell-wall reinforcement through R protein activation, cellulose synthesis and PGs, PMEs and xyloglucan repression; 3) a fine-tuned potentiation of JA/JA-Ile synthesis and JA/ET/SA/ABA transcriptional regulation; 4) an induction of the lipid/fatty acid metabolism and phenylpropanoid pathway; and 5) a strong repression of <i>B. cinerea </i>PGs, <i>BcSOD</i>, hexokinase and novel virulence factor uracil phosphoribosyltransferase (<i>BcUPRT</i>).Transcriptome analysis helped to the identification of two tomato novel and co-expressed genes,<i>SlACRE75 </i>and <i>SlACRE180</i>. Both transcripts and their <i>N. benthamiana</i> homologs were primed by chitosan early during infection and encode small proteins without a signal peptide and with unknown functions. Subcellular localization indicates that the four proteins are involved in intracellular/cytoplasmatic signalling. Finally, transient and constitutive overexpression of <i>SlACRE75</i>, <i>SlACRE180 </i>and their <i>N. benthamiana </i>homologs revealed that they are positive regulators of plant resistance against <i>B. cinerea</i>. Identification of specific chitosan-primed tomato pathways and genes such as <i>ACRE75 </i>and <i>ACRE180</i>; and <i>BcUPRT</i>, will provide a valuable resource for developing novel fungicide use strategies and engineering non-host resistance against necrotrophs in dicots."],"dc:identifier":["oai:discovery.dundee.ac.uk:studenttheses/fbf46527-8ef7-4f80-8131-5e4c9a731151","https://discovery.dundee.ac.uk/en/studentTheses/fbf46527-8ef7-4f80-8131-5e4c9a731151"],"dc:identifier.uri":["https://discovery.dundee.ac.uk/files/20017321/Ph.D_Thesis_Corrected_Daniel_de_Vega_Perez.pdf"],"dc:language":["eng"],"dc:publisher.institution":["University of Dundee"],"dc:relation.isreferencedby":["https://discovery.dundee.ac.uk/en/studentTheses/fbf46527-8ef7-4f80-8131-5e4c9a731151"],"dc:rights.embargodate":["2020-06-30"],"dc:rights.embargoreason":["/dk/atira/pure/core/document/studentthesisembargoreason/commercialexploitation"],"dc:title":["Identification and molecular characterisation of elicitor-priming for resistance in tomato against <i>Botrytis cinerea</i>"],"dc:type":["Thesis"],"dc:type.qualificationlevel":["Doctoral Thesis"],"dc:type.qualificationname":["Doctor of Philosophy"]},"updated_at":"2026-07-24T02:08:32Z"}