Cargando…

Transcriptomic Profiling during the Post-Harvest of Heat-Treated Dixiland Prunus persica Fruits: Common and Distinct Response to Heat and Cold

Cold storage is extensively used to slow the rapid deterioration of peach (Prunus persica L. Batsch) fruit after harvest. However, peach fruit subjected to long periods of cold storage develop chilling injury (CI) symptoms. Post-harvest heat treatment (HT) of peach fruit prior to cold storage is eff...

Descripción completa

Detalles Bibliográficos
Autores principales: Lauxmann, Martin A., Brun, Bianca, Borsani, Julia, Bustamante, Claudia A., Budde, Claudio O., Lara, María V., Drincovich, María F.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2012
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3516522/
https://www.ncbi.nlm.nih.gov/pubmed/23236430
http://dx.doi.org/10.1371/journal.pone.0051052
_version_ 1782252317233381376
author Lauxmann, Martin A.
Brun, Bianca
Borsani, Julia
Bustamante, Claudia A.
Budde, Claudio O.
Lara, María V.
Drincovich, María F.
author_facet Lauxmann, Martin A.
Brun, Bianca
Borsani, Julia
Bustamante, Claudia A.
Budde, Claudio O.
Lara, María V.
Drincovich, María F.
author_sort Lauxmann, Martin A.
collection PubMed
description Cold storage is extensively used to slow the rapid deterioration of peach (Prunus persica L. Batsch) fruit after harvest. However, peach fruit subjected to long periods of cold storage develop chilling injury (CI) symptoms. Post-harvest heat treatment (HT) of peach fruit prior to cold storage is effective in reducing some CI symptoms, maintaining fruit quality, preventing softening and controlling post-harvest diseases. To identify the molecular changes induced by HT, which may be associated to CI protection, the differential transcriptome of peach fruit subjected to HT was characterized by the differential display technique. A total of 127 differentially expressed unigenes (DEUs), with a presence-absence pattern, were identified comparing peach fruit ripening at 20°C with those exposed to a 39°C-HT for 3 days. The 127 DEUs were divided into four expression profile clusters, among which the heat-induced (47%) and heat-repressed (36%) groups resulted the most represented, including genes with unknown function, or involved in protein modification, transcription or RNA metabolism. Considering the CI-protection induced by HT, 23-heat-responsive genes were selected and analyzed during and after short-term cold storage of peach fruit. More than 90% of the genes selected resulted modified by cold, from which nearly 60% followed the same and nearly 40% opposite response to heat and cold. Moreover, by using available Arabidopsis microarray data, it was found that nearly 70% of the peach-heat responsive genes also respond to cold in Arabidopsis, either following the same trend or showing an opposite response. Overall, the high number of common responsive genes to heat and cold identified in the present work indicates that HT of peach fruit after harvest induces a cold response involving complex cellular processes; identifying genes that are involved in the better preparation of peach fruit for cold-storage and unraveling the basis for the CI protection induced by HT.
format Online
Article
Text
id pubmed-3516522
institution National Center for Biotechnology Information
language English
publishDate 2012
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-35165222012-12-12 Transcriptomic Profiling during the Post-Harvest of Heat-Treated Dixiland Prunus persica Fruits: Common and Distinct Response to Heat and Cold Lauxmann, Martin A. Brun, Bianca Borsani, Julia Bustamante, Claudia A. Budde, Claudio O. Lara, María V. Drincovich, María F. PLoS One Research Article Cold storage is extensively used to slow the rapid deterioration of peach (Prunus persica L. Batsch) fruit after harvest. However, peach fruit subjected to long periods of cold storage develop chilling injury (CI) symptoms. Post-harvest heat treatment (HT) of peach fruit prior to cold storage is effective in reducing some CI symptoms, maintaining fruit quality, preventing softening and controlling post-harvest diseases. To identify the molecular changes induced by HT, which may be associated to CI protection, the differential transcriptome of peach fruit subjected to HT was characterized by the differential display technique. A total of 127 differentially expressed unigenes (DEUs), with a presence-absence pattern, were identified comparing peach fruit ripening at 20°C with those exposed to a 39°C-HT for 3 days. The 127 DEUs were divided into four expression profile clusters, among which the heat-induced (47%) and heat-repressed (36%) groups resulted the most represented, including genes with unknown function, or involved in protein modification, transcription or RNA metabolism. Considering the CI-protection induced by HT, 23-heat-responsive genes were selected and analyzed during and after short-term cold storage of peach fruit. More than 90% of the genes selected resulted modified by cold, from which nearly 60% followed the same and nearly 40% opposite response to heat and cold. Moreover, by using available Arabidopsis microarray data, it was found that nearly 70% of the peach-heat responsive genes also respond to cold in Arabidopsis, either following the same trend or showing an opposite response. Overall, the high number of common responsive genes to heat and cold identified in the present work indicates that HT of peach fruit after harvest induces a cold response involving complex cellular processes; identifying genes that are involved in the better preparation of peach fruit for cold-storage and unraveling the basis for the CI protection induced by HT. Public Library of Science 2012-12-06 /pmc/articles/PMC3516522/ /pubmed/23236430 http://dx.doi.org/10.1371/journal.pone.0051052 Text en © 2012 Lauxmann et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Lauxmann, Martin A.
Brun, Bianca
Borsani, Julia
Bustamante, Claudia A.
Budde, Claudio O.
Lara, María V.
Drincovich, María F.
Transcriptomic Profiling during the Post-Harvest of Heat-Treated Dixiland Prunus persica Fruits: Common and Distinct Response to Heat and Cold
title Transcriptomic Profiling during the Post-Harvest of Heat-Treated Dixiland Prunus persica Fruits: Common and Distinct Response to Heat and Cold
title_full Transcriptomic Profiling during the Post-Harvest of Heat-Treated Dixiland Prunus persica Fruits: Common and Distinct Response to Heat and Cold
title_fullStr Transcriptomic Profiling during the Post-Harvest of Heat-Treated Dixiland Prunus persica Fruits: Common and Distinct Response to Heat and Cold
title_full_unstemmed Transcriptomic Profiling during the Post-Harvest of Heat-Treated Dixiland Prunus persica Fruits: Common and Distinct Response to Heat and Cold
title_short Transcriptomic Profiling during the Post-Harvest of Heat-Treated Dixiland Prunus persica Fruits: Common and Distinct Response to Heat and Cold
title_sort transcriptomic profiling during the post-harvest of heat-treated dixiland prunus persica fruits: common and distinct response to heat and cold
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3516522/
https://www.ncbi.nlm.nih.gov/pubmed/23236430
http://dx.doi.org/10.1371/journal.pone.0051052
work_keys_str_mv AT lauxmannmartina transcriptomicprofilingduringthepostharvestofheattreateddixilandprunuspersicafruitscommonanddistinctresponsetoheatandcold
AT brunbianca transcriptomicprofilingduringthepostharvestofheattreateddixilandprunuspersicafruitscommonanddistinctresponsetoheatandcold
AT borsanijulia transcriptomicprofilingduringthepostharvestofheattreateddixilandprunuspersicafruitscommonanddistinctresponsetoheatandcold
AT bustamanteclaudiaa transcriptomicprofilingduringthepostharvestofheattreateddixilandprunuspersicafruitscommonanddistinctresponsetoheatandcold
AT buddeclaudioo transcriptomicprofilingduringthepostharvestofheattreateddixilandprunuspersicafruitscommonanddistinctresponsetoheatandcold
AT laramariav transcriptomicprofilingduringthepostharvestofheattreateddixilandprunuspersicafruitscommonanddistinctresponsetoheatandcold
AT drincovichmariaf transcriptomicprofilingduringthepostharvestofheattreateddixilandprunuspersicafruitscommonanddistinctresponsetoheatandcold