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PMID: 12698367 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Photo- and antioxidative protection, and a role for salicylic acid during drought and recovery in field-grown Phillyrea angustifolia plants.

Planta ·Vol. 217 ·No. 5 ·2003-09-00 ·Pages 758-66

Munné-Bosch S, Peñuelas J

Abstract

Mechanisms of photo- and antioxidative protection, the extent of oxidative stress, and salicylic acid accumulation in leaves of Phillyrea angustifolia L. (Oleaceae) plants exposed to drought and recovery in Mediterranean field conditions were studied. The amounts of alpha-tocopherol increased up to 4-fold and those of zeaxanthin increased up to 3-fold at relative leaf water contents (RWCs) of ca. 60%, which caused up to 70% increases in the de-epoxidation state of the xanthophyll cycle (DPS). While alpha-tocopherol increased further in severe drought, zeaxanthin levels and DPS remained constant, beta-carotene decreased and malondialdehyde (MDA) levels increased at RWCs below 50%. Though this was associated with significant decreases in the maximum efficiency of photosystem II photochemistry (F(v)/ F(m)), the same leaves that suffered from drought recovered after rainfalls, and similar MDA levels and F(v)/ F(m) ratios to those observed before drought were attained. During recovery (i) the F(v)/ F(m) ratio and beta-carotene levels increased slowly, (ii) alpha-tocopherol levels decreased sharply, to increase again, and (iii) MDA levels in leaves increased to values 35% higher than those observed at maximum drought, and decreased later. Salicylic acid (SA) levels showed a strong negative correlation (r(2)=0.857) with the RWC, and increased progressively up to 5-fold, during drought. During recovery, SA levels decreased, but remained slightly higher than those observed before drought. SA levels were positively correlated with those of alpha-tocopherol during drought (r(2)=0.718), but not during recovery (r(2)=0.221). We conclude that (i) P. angustifolia plants activate several mechanisms of photo- and antioxidative protection to withstand drought stress during a Mediterranean summer, (ii) endogenous SA levels increase in leaves of drought-stressed plants, thus suggesting a role for SA in plant responses to drought, and (iii) plants suffer oxidative stress during recovery, and this stress is more severe as the previous drought is more intense.

MeSH Terms
Disasters Malondialdehyde/metabolism Oleaceae/growth & development,metabolism Oxidative Stress/physiology Photosynthetic Reaction Center Complex Proteins/metabolism Plant Leaves/growth & development,metabolism Salicylic Acid/metabolism Water/physiology Xanthophylls/metabolism Zeaxanthins alpha-Tocopherol/metabolism beta Carotene/analogs & derivatives,metabolism
Chemicals
Photosynthetic Reaction Center Complex Proteins Xanthophylls Zeaxanthins beta Carotene Water Malondialdehyde alpha-Tocopherol Salicylic Acid
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Munné-Bosch Sergi
Unitat d'Ecofisiologia CSIC-CEAB-CREAF, Facultat de Ciències, Universitat Autònoma de Barcelona, 08193 Bellaterra, Spain. [email protected]
Peñuelas Josep
References (19)
19 references, click to expand
  1. THE WATER-WATER CYCLE IN CHLOROPLASTS: Scavenging of Active Oxygens and Dissipation of Excess Photons.
    Annu Rev Plant Physiol Plant Mol Biol. 1999 Jun;50:601-639 PMID: 15012221
  2. Local and Systemic Responses of Antioxidants to Tobacco Mosaic Virus Infection and to Salicylic Acid in Tobacco (Role in Systemic Acquired Resistance).
    Plant Physiol. 1997 Aug;114(4):1443-1451 PMID: 12223782
  3. Changes in carotenoids, tocopherols and diterpenes during drought and recovery, and the biological significance of chlorophyll loss in Rosmarinus officinalis plants.
    Planta. 2000 May;210(6):925-31 PMID: 10872224
  4. Evidence for a role of salicylic acid in the oxidative damage generated by NaCl and osmotic stress in Arabidopsis seedlings.
    Plant Physiol. 2001 Jul;126(3):1024-30 PMID: 11457953
  5. Differential Accumulation of Salicylic Acid and Salicylic Acid-Sensitive Catalase in Different Rice Tissues.
    Plant Physiol. 1997 May;114(1):193-201 PMID: 12223699
  6. Protection against heat stress-induced oxidative damage in Arabidopsis involves calcium, abscisic acid, ethylene, and salicylic acid.
    Plant Physiol. 2002 Feb;128(2):682-95 PMID: 11842171
  7. Influence of salicylic acid on H2O2 production, oxidative stress, and H2O2-metabolizing enzymes. Salicylic acid-mediated oxidative damage requires H2O2.
    Plant Physiol. 1997 Sep;115(1):137-49 PMID: 9306697
  8. Biosynthesis and metabolism of salicylic acid.
    Proc Natl Acad Sci U S A. 1995 May 9;92(10):4076-9 PMID: 11607533
  9. Ozone-induced responses in Arabidopsis thaliana: the role of salicylic acid in the accumulation of defense-related transcripts and induced resistance.
    Proc Natl Acad Sci U S A. 1996 May 14;93(10):5099-104 PMID: 8643534
  10. Ozone-induced cell death occurs via two distinct mechanisms in Arabidopsis: the role of salicylic acid.
    Plant J. 1999 Mar;17(6):603-14 PMID: 10230060
  11. Parallel changes in H2O2 and catalase during thermotolerance induced by salicylic acid or heat acclimation in mustard seedlings
    Plant Physiol. 1998 Apr;116(4):1351-7 PMID: 9536052
  12. Jasmonate is involved in the induction of tyrosine aminotransferase and tocopherol biosynthesis in Arabidopsis thaliana.
    Planta. 2002 Nov;216(1):173-9 PMID: 12430028
  13. Changes in salicylic acid and antioxidants during induced thermotolerance in mustard seedlings
    Plant Physiol. 1998 Dec;118(4):1455-61 PMID: 9847121
  14. The genomics parade of defense responses: to infinity and beyond.
    Curr Opin Plant Biol. 2002 Aug;5(4):291-4 PMID: 12179961
  15. Cell signaling during cold, drought, and salt stress.
    Plant Cell. 2002;14 Suppl:S165-83 PMID: 12045276
  16. Enhanced photo- and antioxidative protection, and hydrogen peroxide accumulation in drought-stressed Cistus clusii and Cistus albidus plants.
    Tree Physiol. 2003 Jan;23(1):1-12 PMID: 12511299
  17. How plants cope with water stress in the field. Photosynthesis and growth.
    Ann Bot. 2002 Jun;89 Spec No:907-16 PMID: 12102516
  18. Leaves in the dark see the light.
    Science. 1999 Apr 23;284(5414):599-601 PMID: 10328743
  19. Common components, networks, and pathways of cross-tolerance to stress. The central role of "redox" and abscisic acid-mediated controls.
    Plant Physiol. 2002 Jun;129(2):460-8 PMID: 12068093
Article Info
Journal
Planta
Abbr.
Planta
ISSN
0032-0935
Published
2003-09-00
Epub
2003-00-16
Pages
758-66
Language
English
Region
Germany
NLM ID
1250576
Subset
IM
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