High salinity impacts germination of the halophyte Cakile maritima but primes seeds for rapid germination upon stress release

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Autoren

  • Ahmed Debez
  • Ikram Belghith
  • Andreas Pich
  • Wael Taamalli
  • Chedly Abdelly
  • Hans Peter Braun

Organisationseinheiten

Externe Organisationen

  • Centre de Biotechnologie de Borj Cédria (CBBC)
  • Medizinische Hochschule Hannover (MHH)
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Details

OriginalspracheEnglisch
Seiten (von - bis)134-144
Seitenumfang11
FachzeitschriftPhysiologia plantarum
Jahrgang164
Ausgabenummer2
Frühes Online-Datum8 Dez. 2017
PublikationsstatusVeröffentlicht - 17 Sept. 2018

Abstract

Seed germination recovery aptitude is an adaptive trait of overriding significance for the successful establishment and dispersal of extremophile plants in their native ecosystems. Cakile maritima is an annual halophyte frequent on Mediterranean coasts, which produces transiently dormant seeds under high salinity, that germinate fast when soil salinity is lowered by rainfall. Here, we report ecophysiological and proteomic data about (1) the effect of high salt (200 mM NaCl) on the early developmental stages (germination and seedling) and (2) the seed germination recovery capacity of this species. Upon salt exposure, seed germination was severely inhibited and delayed and seedling length was restricted. Interestingly, non-germinated seeds remained viable, showing high germination percentage and faster germination than the control seeds after their transfer onto distilled water. The plant phenotypic plasticity during germination was better highlighted by the proteomic data. Salt exposure triggered (1) a marked slower degradation of seed storage reserves and (2) a significant lower abundance of proteins involved in several biological processes (primary metabolism, energy, stress-response, folding and stability). Yet, these proteins showed strong increased abundance early after stress release, thereby sustaining the faster seed storage proteins mobilization under recovery conditions compared to the control. Overall, as part of the plant survival strategy, C. maritima seems to avoid germination and establishment under high salinity. However, this harsh condition may have a priming-like effect, boosting seed germination and vigor under post-stress conditions, sustained by active metabolic machinery.

ASJC Scopus Sachgebiete

  • Biochemie, Genetik und Molekularbiologie (insg.)
  • Physiologie
  • Biochemie, Genetik und Molekularbiologie (insg.)
  • Genetik
  • Agrar- und Biowissenschaften (insg.)
  • Pflanzenkunde
  • Biochemie, Genetik und Molekularbiologie (insg.)
  • Zellbiologie

Ziele für nachhaltige Entwicklung

Zitieren

High salinity impacts germination of the halophyte Cakile maritima but primes seeds for rapid germination upon stress release. / Debez, Ahmed; Belghith, Ikram; Pich, Andreas et al.
in: Physiologia plantarum, Jahrgang 164, Nr. 2, 17.09.2018, S. 134-144.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Debez A, Belghith I, Pich A, Taamalli W, Abdelly C, Braun HP. High salinity impacts germination of the halophyte Cakile maritima but primes seeds for rapid germination upon stress release. Physiologia plantarum. 2018 Sep 17;164(2):134-144. Epub 2017 Dez 8. doi: 10.1111/ppl.12679
Debez, Ahmed ; Belghith, Ikram ; Pich, Andreas et al. / High salinity impacts germination of the halophyte Cakile maritima but primes seeds for rapid germination upon stress release. in: Physiologia plantarum. 2018 ; Jahrgang 164, Nr. 2. S. 134-144.
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AU - Taamalli, Wael

AU - Abdelly, Chedly

AU - Braun, Hans Peter

N1 - Funding information: – The financial support of the Alexander von Humboldt Foundation for A.D. is gratefully acknowledged. I.B. was supported by The German Academic Exchange Service (DAAD) in the framework of the German-Tunisian research project ‘Proteomics and Halophyte Stress Tolerance’ (ID 57247769)

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