<HashMap><database>biostudies-literature</database><scores/><additional><omics_type>Unknown</omics_type><volume>13</volume><submitter>Agati G</submitter><pubmed_abstract>In this study, we developed and applied a new spectroscopic fluorescence method for the &lt;i>in vivo&lt;/i> detection of the early events in the interaction between tobacco (&lt;i>Nicotiana tabacum&lt;/i> L.) plants and pathogenic bacteria. The leaf disks were infiltrated with a bacterial suspension in sterile physiological solution (SPS), or with SPS alone as control. The virulent &lt;i>Pseudomonas syringae&lt;/i> pv. &lt;i>tabaci&lt;/i> strain ATCC 11528, its non-pathogenic &lt;i>ΔhrpA&lt;/i> mutant, and the avirulent &lt;i>P. syringae&lt;/i> pv. &lt;i>tomato&lt;/i> strain DC3000 were used. At different post-infiltration time-points, the &lt;i>in vivo&lt;/i> fluorescence spectra on leaf disks were acquired by a fiber bundle-spectrofluorimeter. The excitation spectra of the leaf blue emission at 460 nm, which is mainly due to the accumulation of coumarins following a bacterial infiltration, were processed by using a two-bands Gaussian fitting that enabled us to isolate the scopoletin (SCT) contribution. The pH-dependent fluorescence of SCT and scopolin (SCL), as determined by &lt;i>in vitro&lt;/i> data and their intracellular localization, as determined by confocal microscopy, suggested the use of the longer wavelength excitation band at 385 nm of 460 nm emission (F&lt;sub>385_460&lt;/sub>) to follow the metabolic evolution of SCT during the plant-bacteria interaction. It was found to be directly correlated (&lt;i>R&lt;/i> &lt;sup>2&lt;/sup> = 0.84) to the leaf SCT content, but not to that of SCL, determined by HPLC analysis. The technique applied to the time-course monitoring of the bacteria-plant interaction clearly showed that the amount and the timing of SCT accumulation, estimated by F&lt;sub>385_460&lt;/sub>, was correlated with the resistance to the pathogen. As expected, this host defense response was delayed after &lt;i>P. syringae&lt;/i> pv. &lt;i>tabaci&lt;/i> ATCC 11528 infiltration, in comparison to &lt;i>P. syringae&lt;/i> pv. &lt;i>tomato&lt;/i> DC3000. Furthermore, no significant increase of F&lt;sub>385_460&lt;/sub> (SCT) was observed when using the non-pathogenic &lt;i>ΔhrpA&lt;/i> mutant of &lt;i>P. syringae&lt;/i> pv. &lt;i>tabaci&lt;/i> ATCC 11528, which lacks a functional Type Three Secretion System (TTSS). Our study showed the reliability of the developed fluorimetric method for a rapid and non-invasive monitoring of bacteria-induced first events related to the metabolite-based defense response in tobacco leaves. This technique could allow a fast selection of pathogen-resistant cultivars, as well as the on-site early diagnosis of tobacco plant diseases by using suitable fluorescence sensors.</pubmed_abstract><journal>Frontiers in microbiology</journal><pagination>889878</pagination><full_dataset_link>https://www.ebi.ac.uk/biostudies/studies/S-EPMC9100583</full_dataset_link><repository>biostudies-literature</repository><pubmed_title>Retrieving the &lt;i>in vivo&lt;/i> Scopoletin Fluorescence Excitation Band Allows the Non-invasive Investigation of the Plant-Pathogen Early Events in Tobacco Leaves.</pubmed_title><pmcid>PMC9100583</pmcid><pubmed_authors>Brunetti C</pubmed_authors><pubmed_authors>Agati G</pubmed_authors><pubmed_authors>Tuccio L</pubmed_authors><pubmed_authors>Tegli S</pubmed_authors><pubmed_authors>Degano I</pubmed_authors></additional><is_claimable>false</is_claimable><name>Retrieving the &lt;i>in vivo&lt;/i> Scopoletin Fluorescence Excitation Band Allows the Non-invasive Investigation of the Plant-Pathogen Early Events in Tobacco Leaves.</name><description>In this study, we developed and applied a new spectroscopic fluorescence method for the &lt;i>in vivo&lt;/i> detection of the early events in the interaction between tobacco (&lt;i>Nicotiana tabacum&lt;/i> L.) plants and pathogenic bacteria. The leaf disks were infiltrated with a bacterial suspension in sterile physiological solution (SPS), or with SPS alone as control. The virulent &lt;i>Pseudomonas syringae&lt;/i> pv. &lt;i>tabaci&lt;/i> strain ATCC 11528, its non-pathogenic &lt;i>ΔhrpA&lt;/i> mutant, and the avirulent &lt;i>P. syringae&lt;/i> pv. &lt;i>tomato&lt;/i> strain DC3000 were used. At different post-infiltration time-points, the &lt;i>in vivo&lt;/i> fluorescence spectra on leaf disks were acquired by a fiber bundle-spectrofluorimeter. The excitation spectra of the leaf blue emission at 460 nm, which is mainly due to the accumulation of coumarins following a bacterial infiltration, were processed by using a two-bands Gaussian fitting that enabled us to isolate the scopoletin (SCT) contribution. The pH-dependent fluorescence of SCT and scopolin (SCL), as determined by &lt;i>in vitro&lt;/i> data and their intracellular localization, as determined by confocal microscopy, suggested the use of the longer wavelength excitation band at 385 nm of 460 nm emission (F&lt;sub>385_460&lt;/sub>) to follow the metabolic evolution of SCT during the plant-bacteria interaction. It was found to be directly correlated (&lt;i>R&lt;/i> &lt;sup>2&lt;/sup> = 0.84) to the leaf SCT content, but not to that of SCL, determined by HPLC analysis. The technique applied to the time-course monitoring of the bacteria-plant interaction clearly showed that the amount and the timing of SCT accumulation, estimated by F&lt;sub>385_460&lt;/sub>, was correlated with the resistance to the pathogen. As expected, this host defense response was delayed after &lt;i>P. syringae&lt;/i> pv. &lt;i>tabaci&lt;/i> ATCC 11528 infiltration, in comparison to &lt;i>P. syringae&lt;/i> pv. &lt;i>tomato&lt;/i> DC3000. Furthermore, no significant increase of F&lt;sub>385_460&lt;/sub> (SCT) was observed when using the non-pathogenic &lt;i>ΔhrpA&lt;/i> mutant of &lt;i>P. syringae&lt;/i> pv. &lt;i>tabaci&lt;/i> ATCC 11528, which lacks a functional Type Three Secretion System (TTSS). Our study showed the reliability of the developed fluorimetric method for a rapid and non-invasive monitoring of bacteria-induced first events related to the metabolite-based defense response in tobacco leaves. This technique could allow a fast selection of pathogen-resistant cultivars, as well as the on-site early diagnosis of tobacco plant diseases by using suitable fluorescence sensors.</description><dates><release>2022-01-01T00:00:00Z</release><publication>2022</publication><modification>2025-04-18T21:53:05.503Z</modification><creation>2025-04-07T09:45:13.44Z</creation></dates><accession>S-EPMC9100583</accession><cross_references><pubmed>35572685</pubmed><doi>10.3389/fmicb.2022.889878</doi></cross_references></HashMap>