Cargando…

Decoding Gene Networks Modules That Explain the Recovery of Hymenoglossum cruentum Cav. After Extreme Desiccation

Hymenoglossum cruentum (Hymenophyllaceae) is a poikilohydric, homoiochlorophyllous desiccation-tolerant (DT) epiphyte fern. It can undergo fast and frequent dehydration-rehydration cycles. This fern is highly abundant at high-humidity/low-light microenvironments within the canopy, although rapid cha...

Descripción completa

Detalles Bibliográficos
Autores principales: Ostria-Gallardo, Enrique, Larama, Giovanni, Berríos, Graciela, Fallard, Ana, Gutiérrez-Moraga, Ana, Ensminger, Ingo, Manque, Patricio, Bascuñán-Godoy, Luisa, Bravo, León A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7243127/
https://www.ncbi.nlm.nih.gov/pubmed/32499805
http://dx.doi.org/10.3389/fpls.2020.00574
_version_ 1783537372408840192
author Ostria-Gallardo, Enrique
Larama, Giovanni
Berríos, Graciela
Fallard, Ana
Gutiérrez-Moraga, Ana
Ensminger, Ingo
Manque, Patricio
Bascuñán-Godoy, Luisa
Bravo, León A.
author_facet Ostria-Gallardo, Enrique
Larama, Giovanni
Berríos, Graciela
Fallard, Ana
Gutiérrez-Moraga, Ana
Ensminger, Ingo
Manque, Patricio
Bascuñán-Godoy, Luisa
Bravo, León A.
author_sort Ostria-Gallardo, Enrique
collection PubMed
description Hymenoglossum cruentum (Hymenophyllaceae) is a poikilohydric, homoiochlorophyllous desiccation-tolerant (DT) epiphyte fern. It can undergo fast and frequent dehydration-rehydration cycles. This fern is highly abundant at high-humidity/low-light microenvironments within the canopy, although rapid changes in humidity and light intensity are frequent. The objective of this research is to identify genes associated to desiccation-rehydration cycle in the transcriptome of H. cruentum to better understand the genetic dynamics behind its desiccation tolerance mechanism. H. cruentum plants were subjected to a 7 days long desiccation-rehydration process and then used to identify key expressed genes associated to its capacity to dehydrate and rehydrate. The relative water content (RWC) and maximum quantum efficiency (F(v)/F(m)) of H. cruentum fronds decayed to 6% and 0.04, respectively, at the end of the desiccation stage. After re-watering, the fern showed a rapid recovery of RWC and F(v)/F(m) (ca. 73% and 0.8, respectively). Based on clustering and network analysis, our results reveal key genes, such as UBA/TS-N, DYNLL, and LHC, orchestrating intracellular motility and photosynthetic metabolism; strong balance between avoiding cell death and defense (CAT3, AP2/ERF) when dehydrated, and detoxifying pathways and stabilization of photosystems (GST, CAB2, and ELIP9) during rehydration. Here we provide novel insights into the genetic dynamics behind the desiccation tolerance mechanism of H. cruentum.
format Online
Article
Text
id pubmed-7243127
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-72431272020-06-03 Decoding Gene Networks Modules That Explain the Recovery of Hymenoglossum cruentum Cav. After Extreme Desiccation Ostria-Gallardo, Enrique Larama, Giovanni Berríos, Graciela Fallard, Ana Gutiérrez-Moraga, Ana Ensminger, Ingo Manque, Patricio Bascuñán-Godoy, Luisa Bravo, León A. Front Plant Sci Plant Science Hymenoglossum cruentum (Hymenophyllaceae) is a poikilohydric, homoiochlorophyllous desiccation-tolerant (DT) epiphyte fern. It can undergo fast and frequent dehydration-rehydration cycles. This fern is highly abundant at high-humidity/low-light microenvironments within the canopy, although rapid changes in humidity and light intensity are frequent. The objective of this research is to identify genes associated to desiccation-rehydration cycle in the transcriptome of H. cruentum to better understand the genetic dynamics behind its desiccation tolerance mechanism. H. cruentum plants were subjected to a 7 days long desiccation-rehydration process and then used to identify key expressed genes associated to its capacity to dehydrate and rehydrate. The relative water content (RWC) and maximum quantum efficiency (F(v)/F(m)) of H. cruentum fronds decayed to 6% and 0.04, respectively, at the end of the desiccation stage. After re-watering, the fern showed a rapid recovery of RWC and F(v)/F(m) (ca. 73% and 0.8, respectively). Based on clustering and network analysis, our results reveal key genes, such as UBA/TS-N, DYNLL, and LHC, orchestrating intracellular motility and photosynthetic metabolism; strong balance between avoiding cell death and defense (CAT3, AP2/ERF) when dehydrated, and detoxifying pathways and stabilization of photosystems (GST, CAB2, and ELIP9) during rehydration. Here we provide novel insights into the genetic dynamics behind the desiccation tolerance mechanism of H. cruentum. Frontiers Media S.A. 2020-05-15 /pmc/articles/PMC7243127/ /pubmed/32499805 http://dx.doi.org/10.3389/fpls.2020.00574 Text en Copyright © 2020 Ostria-Gallardo, Larama, Berríos, Fallard, Gutiérrez-Moraga, Ensminger, Manque, Bascuñán-Godoy and Bravo. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Plant Science
Ostria-Gallardo, Enrique
Larama, Giovanni
Berríos, Graciela
Fallard, Ana
Gutiérrez-Moraga, Ana
Ensminger, Ingo
Manque, Patricio
Bascuñán-Godoy, Luisa
Bravo, León A.
Decoding Gene Networks Modules That Explain the Recovery of Hymenoglossum cruentum Cav. After Extreme Desiccation
title Decoding Gene Networks Modules That Explain the Recovery of Hymenoglossum cruentum Cav. After Extreme Desiccation
title_full Decoding Gene Networks Modules That Explain the Recovery of Hymenoglossum cruentum Cav. After Extreme Desiccation
title_fullStr Decoding Gene Networks Modules That Explain the Recovery of Hymenoglossum cruentum Cav. After Extreme Desiccation
title_full_unstemmed Decoding Gene Networks Modules That Explain the Recovery of Hymenoglossum cruentum Cav. After Extreme Desiccation
title_short Decoding Gene Networks Modules That Explain the Recovery of Hymenoglossum cruentum Cav. After Extreme Desiccation
title_sort decoding gene networks modules that explain the recovery of hymenoglossum cruentum cav. after extreme desiccation
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7243127/
https://www.ncbi.nlm.nih.gov/pubmed/32499805
http://dx.doi.org/10.3389/fpls.2020.00574
work_keys_str_mv AT ostriagallardoenrique decodinggenenetworksmodulesthatexplaintherecoveryofhymenoglossumcruentumcavafterextremedesiccation
AT laramagiovanni decodinggenenetworksmodulesthatexplaintherecoveryofhymenoglossumcruentumcavafterextremedesiccation
AT berriosgraciela decodinggenenetworksmodulesthatexplaintherecoveryofhymenoglossumcruentumcavafterextremedesiccation
AT fallardana decodinggenenetworksmodulesthatexplaintherecoveryofhymenoglossumcruentumcavafterextremedesiccation
AT gutierrezmoragaana decodinggenenetworksmodulesthatexplaintherecoveryofhymenoglossumcruentumcavafterextremedesiccation
AT ensmingeringo decodinggenenetworksmodulesthatexplaintherecoveryofhymenoglossumcruentumcavafterextremedesiccation
AT manquepatricio decodinggenenetworksmodulesthatexplaintherecoveryofhymenoglossumcruentumcavafterextremedesiccation
AT bascunangodoyluisa decodinggenenetworksmodulesthatexplaintherecoveryofhymenoglossumcruentumcavafterextremedesiccation
AT bravoleona decodinggenenetworksmodulesthatexplaintherecoveryofhymenoglossumcruentumcavafterextremedesiccation