PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
April 1, 2026Russian Journal of Plant Physiology0 citations

How Leaf Trait Trade-Offs Mediated Proteomic Reconfiguration in Drought-Primed Olive Plants in Response to Terminal Drought?

MAM. Ben AbdallahDTD. TrupianoCDC. D’Ambrosio

Key Points

  • The research aims to understand how drought priming affects leaf traits and proteomic changes in olive plants during terminal drought conditions.
  • Olive plants were drought-primed for three weeks and then subjected to water recovery for two months before further drought exposure.
  • Physiological measurements included photosynthesis, water status, and leaf area.
  • Proteomic analysis was conducted to identify key protein changes in response to drought conditions.
  • Non-primed plants showed significant decreases in photosynthesis, water status, and growth due to reduced leaf area.
  • Drought-primed plants maintained improved physiological performance despite severe drought.
  • Proteomic changes indicated enhanced CO2 assimilation and better nitrogen metabolism, resulting in efficient water use.

Abstract

Drought priming has been recognized as a strategy to enhance drought stress resilience in various plants; however its mechanistic basis remains scarce, particularly for woody species like olive. Here, olive plants (Olea europaea L.) were firstly exposed to drought for three weeks followed by water recovery time (two months) and then subjected to subsequent severe drought (one month). Results showed that non-primed plants (NPP) exhibited a dramatic decrease of photosynthesis, water status and growth due to a severe reduction in the leaf area, leading to inhibition of light energy capture and carbon fixation, together with an alteration of key proteins implicated in photosynthesis and nitrogen metabolism. Conversely, physiological performances of drought primed plants (PP) were improved under terminal drought. This state was achieved through a coordinated morpho-physiological regulation, which involved a controlled stomata conductance coupled to a moderate leaf area reduction towards optimizing water conservation and carbon fixation. Regulation in total leaf lipid content, fatty acid unsaturation and the enhanced lignin content seem crucial for membrane function, water retention and tissue stability. Ultimately, such adjustments were reflected harmonically in the corresponding proteomic profile. Indeed, key proteins involved in CO2 assimilation, those governing PSII efficiency, electron transport and nitrogen metabolism proved the pivotal role of priming in protecting the metabolism of PP. Overall, priming induced complex modulation of leaf traits coupled with fine molecular regulation, enabling olive to better tolerate stress and to convert it into “beneficial stress imprint” improving their water use efficiency.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Abdallah et al. (2026) studied this question.

synapsesocial.com/papers/69cd79e15652765b073a6ba6https://doi.org/10.1134/s1021443725603490
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Primed acclimation of two Greek olive cultivars to water deficit2026
  2. 2Comparative metabolomics of leaves and stems of three Italian olive cultivars under drought stress2024 · 5 citations
  3. 3Drought priming improves tolerance of Alhagi sparsifolia to subsequent drought: A coordinated interplay of phytohormones, osmolytes, and antioxidant potential2024 · 10 citations
  4. 4Photosynthetic CO2 responses (A/Ci curves) Reveal Differential Environmental Acclimation to Drought in 14 Olive Cultivars2026
  5. 5Olive Leaves Tissues’ and Cells’ Structure under Simulated Drought Conditions2025