Cargando…

Arabidopsis HEAT SHOCK TRANSCRIPTION FACTORA1b overexpression enhances water productivity, resistance to drought, and infection

Heat-stressed crops suffer dehydration, depressed growth, and a consequent decline in water productivity, which is the yield of harvestable product as a function of lifetime water consumption and is a trait associated with plant growth and development. Heat shock transcription factor (HSF) genes hav...

Descripción completa

Detalles Bibliográficos
Autores principales: Bechtold, Ulrike, Albihlal, Waleed S., Lawson, Tracy, Fryer, Michael J., Sparrow, Penelope A.C., Richard, François, Persad, Ramona, Bowden, Laura, Hickman, Richard, Martin, Cathie, Beynon, Jim L., Buchanan-Wollaston, Vicky, Baker, Neil R., Morison, James I.L., Schöffl, Friedrich, Ott, Sascha, Mullineaux, Philip M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3733161/
https://www.ncbi.nlm.nih.gov/pubmed/23828547
http://dx.doi.org/10.1093/jxb/ert185
_version_ 1782279336860057600
author Bechtold, Ulrike
Albihlal, Waleed S.
Lawson, Tracy
Fryer, Michael J.
Sparrow, Penelope A.C.
Richard, François
Persad, Ramona
Bowden, Laura
Hickman, Richard
Martin, Cathie
Beynon, Jim L.
Buchanan-Wollaston, Vicky
Baker, Neil R.
Morison, James I.L.
Schöffl, Friedrich
Ott, Sascha
Mullineaux, Philip M.
author_facet Bechtold, Ulrike
Albihlal, Waleed S.
Lawson, Tracy
Fryer, Michael J.
Sparrow, Penelope A.C.
Richard, François
Persad, Ramona
Bowden, Laura
Hickman, Richard
Martin, Cathie
Beynon, Jim L.
Buchanan-Wollaston, Vicky
Baker, Neil R.
Morison, James I.L.
Schöffl, Friedrich
Ott, Sascha
Mullineaux, Philip M.
author_sort Bechtold, Ulrike
collection PubMed
description Heat-stressed crops suffer dehydration, depressed growth, and a consequent decline in water productivity, which is the yield of harvestable product as a function of lifetime water consumption and is a trait associated with plant growth and development. Heat shock transcription factor (HSF) genes have been implicated not only in thermotolerance but also in plant growth and development, and therefore could influence water productivity. Here it is demonstrated that Arabidopsis thaliana plants with increased HSFA1b expression showed increased water productivity and harvest index under water-replete and water-limiting conditions. In non-stressed HSFA1b-overexpressing (HSFA1bOx) plants, 509 genes showed altered expression, and these genes were not over-represented for development-associated genes but were for response to biotic stress. This confirmed an additional role for HSFA1b in maintaining basal disease resistance, which was stress hormone independent but involved H(2)O(2) signalling. Fifty-five of the 509 genes harbour a variant of the heat shock element (HSE) in their promoters, here named HSE1b. Chromatin immunoprecipitation-PCR confirmed binding of HSFA1b to HSE1b in vivo, including in seven transcription factor genes. One of these is MULTIPROTEIN BRIDGING FACTOR1c (MBF1c). Plants overexpressing MBF1c showed enhanced basal resistance but not water productivity, thus partially phenocopying HSFA1bOx plants. A comparison of genes responsive to HSFA1b and MBF1c overexpression revealed a common group, none of which harbours a HSE1b motif. From this example, it is suggested that HSFA1b directly regulates 55 HSE1b-containing genes, which control the remaining 454 genes, collectively accounting for the stress defence and developmental phenotypes of HSFA1bOx.
format Online
Article
Text
id pubmed-3733161
institution National Center for Biotechnology Information
language English
publishDate 2013
publisher Oxford University Press
record_format MEDLINE/PubMed
spelling pubmed-37331612013-08-05 Arabidopsis HEAT SHOCK TRANSCRIPTION FACTORA1b overexpression enhances water productivity, resistance to drought, and infection Bechtold, Ulrike Albihlal, Waleed S. Lawson, Tracy Fryer, Michael J. Sparrow, Penelope A.C. Richard, François Persad, Ramona Bowden, Laura Hickman, Richard Martin, Cathie Beynon, Jim L. Buchanan-Wollaston, Vicky Baker, Neil R. Morison, James I.L. Schöffl, Friedrich Ott, Sascha Mullineaux, Philip M. J Exp Bot Research Paper Heat-stressed crops suffer dehydration, depressed growth, and a consequent decline in water productivity, which is the yield of harvestable product as a function of lifetime water consumption and is a trait associated with plant growth and development. Heat shock transcription factor (HSF) genes have been implicated not only in thermotolerance but also in plant growth and development, and therefore could influence water productivity. Here it is demonstrated that Arabidopsis thaliana plants with increased HSFA1b expression showed increased water productivity and harvest index under water-replete and water-limiting conditions. In non-stressed HSFA1b-overexpressing (HSFA1bOx) plants, 509 genes showed altered expression, and these genes were not over-represented for development-associated genes but were for response to biotic stress. This confirmed an additional role for HSFA1b in maintaining basal disease resistance, which was stress hormone independent but involved H(2)O(2) signalling. Fifty-five of the 509 genes harbour a variant of the heat shock element (HSE) in their promoters, here named HSE1b. Chromatin immunoprecipitation-PCR confirmed binding of HSFA1b to HSE1b in vivo, including in seven transcription factor genes. One of these is MULTIPROTEIN BRIDGING FACTOR1c (MBF1c). Plants overexpressing MBF1c showed enhanced basal resistance but not water productivity, thus partially phenocopying HSFA1bOx plants. A comparison of genes responsive to HSFA1b and MBF1c overexpression revealed a common group, none of which harbours a HSE1b motif. From this example, it is suggested that HSFA1b directly regulates 55 HSE1b-containing genes, which control the remaining 454 genes, collectively accounting for the stress defence and developmental phenotypes of HSFA1bOx. Oxford University Press 2013-08 2013-07-04 /pmc/articles/PMC3733161/ /pubmed/23828547 http://dx.doi.org/10.1093/jxb/ert185 Text en © The Author [2013]. Published by Oxford University Press [on behalf of the Society for Experimental Biology]. http://creativecommons.org/licenses/by-nc/3.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution Non-Commercial License (http://creativecommons.org/licenses/by-nc/3.0/), which permits non-commercial re-use, distribution, and reproduction in any medium, provided the original work is properly cited. For commercial re-use, please contact journals.permissions@oup.com
spellingShingle Research Paper
Bechtold, Ulrike
Albihlal, Waleed S.
Lawson, Tracy
Fryer, Michael J.
Sparrow, Penelope A.C.
Richard, François
Persad, Ramona
Bowden, Laura
Hickman, Richard
Martin, Cathie
Beynon, Jim L.
Buchanan-Wollaston, Vicky
Baker, Neil R.
Morison, James I.L.
Schöffl, Friedrich
Ott, Sascha
Mullineaux, Philip M.
Arabidopsis HEAT SHOCK TRANSCRIPTION FACTORA1b overexpression enhances water productivity, resistance to drought, and infection
title Arabidopsis HEAT SHOCK TRANSCRIPTION FACTORA1b overexpression enhances water productivity, resistance to drought, and infection
title_full Arabidopsis HEAT SHOCK TRANSCRIPTION FACTORA1b overexpression enhances water productivity, resistance to drought, and infection
title_fullStr Arabidopsis HEAT SHOCK TRANSCRIPTION FACTORA1b overexpression enhances water productivity, resistance to drought, and infection
title_full_unstemmed Arabidopsis HEAT SHOCK TRANSCRIPTION FACTORA1b overexpression enhances water productivity, resistance to drought, and infection
title_short Arabidopsis HEAT SHOCK TRANSCRIPTION FACTORA1b overexpression enhances water productivity, resistance to drought, and infection
title_sort arabidopsis heat shock transcription factora1b overexpression enhances water productivity, resistance to drought, and infection
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3733161/
https://www.ncbi.nlm.nih.gov/pubmed/23828547
http://dx.doi.org/10.1093/jxb/ert185
work_keys_str_mv AT bechtoldulrike arabidopsisheatshocktranscriptionfactora1boverexpressionenhanceswaterproductivityresistancetodroughtandinfection
AT albihlalwaleeds arabidopsisheatshocktranscriptionfactora1boverexpressionenhanceswaterproductivityresistancetodroughtandinfection
AT lawsontracy arabidopsisheatshocktranscriptionfactora1boverexpressionenhanceswaterproductivityresistancetodroughtandinfection
AT fryermichaelj arabidopsisheatshocktranscriptionfactora1boverexpressionenhanceswaterproductivityresistancetodroughtandinfection
AT sparrowpenelopeac arabidopsisheatshocktranscriptionfactora1boverexpressionenhanceswaterproductivityresistancetodroughtandinfection
AT richardfrancois arabidopsisheatshocktranscriptionfactora1boverexpressionenhanceswaterproductivityresistancetodroughtandinfection
AT persadramona arabidopsisheatshocktranscriptionfactora1boverexpressionenhanceswaterproductivityresistancetodroughtandinfection
AT bowdenlaura arabidopsisheatshocktranscriptionfactora1boverexpressionenhanceswaterproductivityresistancetodroughtandinfection
AT hickmanrichard arabidopsisheatshocktranscriptionfactora1boverexpressionenhanceswaterproductivityresistancetodroughtandinfection
AT martincathie arabidopsisheatshocktranscriptionfactora1boverexpressionenhanceswaterproductivityresistancetodroughtandinfection
AT beynonjiml arabidopsisheatshocktranscriptionfactora1boverexpressionenhanceswaterproductivityresistancetodroughtandinfection
AT buchananwollastonvicky arabidopsisheatshocktranscriptionfactora1boverexpressionenhanceswaterproductivityresistancetodroughtandinfection
AT bakerneilr arabidopsisheatshocktranscriptionfactora1boverexpressionenhanceswaterproductivityresistancetodroughtandinfection
AT morisonjamesil arabidopsisheatshocktranscriptionfactora1boverexpressionenhanceswaterproductivityresistancetodroughtandinfection
AT schofflfriedrich arabidopsisheatshocktranscriptionfactora1boverexpressionenhanceswaterproductivityresistancetodroughtandinfection
AT ottsascha arabidopsisheatshocktranscriptionfactora1boverexpressionenhanceswaterproductivityresistancetodroughtandinfection
AT mullineauxphilipm arabidopsisheatshocktranscriptionfactora1boverexpressionenhanceswaterproductivityresistancetodroughtandinfection