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PMID: 17136344 Published · ppublish English Comparative Study Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, Non-P.H.S. Validation Study

Water and salinity stress in grapevines: early and late changes in transcript and metabolite profiles.

Functional & integrative genomics ·Vol. 7 ·No. 2 ·2007-04-00 ·Pages 111-34

Cramer GR, Ergül A, Grimplet J, Tillett RL, Tattersall EA, Bohlman MC, Vincent D, Sonderegger J, Evans J, Osborne C, Quilici D, Schlauch KA, Schooley DA, Cushman JC

Abstract

Grapes are grown in semiarid environments, where drought and salinity are common problems. Microarray transcript profiling, quantitative reverse transcription-PCR, and metabolite profiling were used to define genes and metabolic pathways in Vitis vinifera cv. Cabernet Sauvignon with shared and divergent responses to a gradually applied and long-term (16 days) water-deficit stress and equivalent salinity stress. In this first-of-a-kind study, distinct differences between water deficit and salinity were revealed. Water deficit caused more rapid and greater inhibition of shoot growth than did salinity at equivalent stem water potentials. One of the earliest responses to water deficit was an increase in the transcript abundance of RuBisCo activase (day 4), but this increase occurred much later in salt-stressed plants (day 12). As water deficit progressed, a greater number of affected transcripts were involved in metabolism, transport, and the biogenesis of cellular components than did salinity. Salinity affected a higher percentage of transcripts involved in transcription, protein synthesis, and protein fate than did water deficit. Metabolite profiling revealed that there were higher concentrations of glucose, malate, and proline in water-deficit-treated plants as compared to salinized plants. The metabolite differences were linked to differences in transcript abundance of many genes involved in energy metabolism and nitrogen assimilation, particularly photosynthesis, gluconeogenesis, and photorespiration. Water-deficit-treated plants appear to have a higher demand than salinized plants to adjust osmotically, detoxify free radicals (reactive oxygen species), and cope with photoinhibition.

MeSH Terms
Dehydration/metabolism Gene Expression Profiling Osmotic Pressure RNA, Plant/metabolism Transcription, Genetic Vitis/metabolism
Chemicals
RNA, Plant
Authors & Affiliations
14 authors, click to expand affiliations / ORCID
Cramer Grant R
Department of Biochemistry and Molecular Biology, MS200, University of Nevada, Reno, NV, 89557-0014, USA. [email protected]
Ergül Ali
Grimplet Jerome
Tillett Richard L
Tattersall Elizabeth A R
Bohlman Marlene C
Vincent Delphine
Sonderegger Justin
Evans Jason
Osborne Craig
Quilici David
Schlauch Karen A
Schooley David A
Cushman John C
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Article Info
Journal
Functional & integrative genomics
Abbr.
Funct Integr Genomics
ISSN
1438-793X
Published
2007-04-00
Epub
2006-00-29
Pages
111-34
Language
English
Region
Germany
NLM ID
100939343
Subset
IM
Grants
NCRR NIH HHS · P20 RR16464 · United States
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