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Sugar beet (Beta vulgaris) guard cells responses to salinity stress: a proteomic analysis

Zitieren Sie bitte immer diese URN: urn:nbn:de:bvb:20-opus-285765
  • Soil salinity is a major environmental constraint affecting crop growth and threatening global food security. Plants adapt to salinity by optimizing the performance of stomata. Stomata are formed by two guard cells (GCs) that are morphologically and functionally distinct from the other leaf cells. These microscopic sphincters inserted into the wax-covered epidermis of the shoot balance CO\(_2\) intake for photosynthetic carbon gain and concomitant water loss. In order to better understand the molecular mechanisms underlying stomatal functionSoil salinity is a major environmental constraint affecting crop growth and threatening global food security. Plants adapt to salinity by optimizing the performance of stomata. Stomata are formed by two guard cells (GCs) that are morphologically and functionally distinct from the other leaf cells. These microscopic sphincters inserted into the wax-covered epidermis of the shoot balance CO\(_2\) intake for photosynthetic carbon gain and concomitant water loss. In order to better understand the molecular mechanisms underlying stomatal function under saline conditions, we used proteomics approach to study isolated GCs from the salt-tolerant sugar beet species. Of the 2088 proteins identified in sugar beet GCs, 82 were differentially regulated by salt treatment. According to bioinformatics analysis (GO enrichment analysis and protein classification), these proteins were involved in lipid metabolism, cell wall modification, ATP biosynthesis, and signaling. Among the significant differentially abundant proteins, several proteins classified as “stress proteins” were upregulated, including non-specific lipid transfer protein, chaperone proteins, heat shock proteins, inorganic pyrophosphatase 2, responsible for energized vacuole membrane for ion transportation. Moreover, several antioxidant enzymes (peroxide, superoxidase dismutase) were highly upregulated. Furthermore, cell wall proteins detected in GCs provided some evidence that GC walls were more flexible in response to salt stress. Proteins such as L-ascorbate oxidase that were constitutively high under both control and high salinity conditions may contribute to the ability of sugar beet GCs to adapt to salinity by mitigating salinity-induced oxidative stress.zeige mehrzeige weniger

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Autor(en): Fatemeh Rasouli, Ali Kiani-Pouya, Leiting Li, Heng Zhang, Zhonghua Chen, Rainer Hedrich, Richard Wilson, Sergey Shabala
URN:urn:nbn:de:bvb:20-opus-285765
Dokumentart:Artikel / Aufsatz in einer Zeitschrift
Institute der Universität:Fakultät für Biologie / Julius-von-Sachs-Institut für Biowissenschaften
Sprache der Veröffentlichung:Englisch
Titel des übergeordneten Werkes / der Zeitschrift (Englisch):International Journal of Molecular Sciences
ISSN:1422-0067
Erscheinungsjahr:2020
Band / Jahrgang:21
Heft / Ausgabe:7
Aufsatznummer:2331
Originalveröffentlichung / Quelle:International Journal of Molecular Sciences (2020) 21:7, 2331. https://doi.org/10.3390/ijms21072331
DOI:https://doi.org/10.3390/ijms21072331
Allgemeine fachliche Zuordnung (DDC-Klassifikation):5 Naturwissenschaften und Mathematik / 58 Pflanzen (Botanik) / 580 Pflanzen (Botanik)
Freie Schlagwort(e):guard cells; proteomic; salt stress; stomata; sugar beet
Datum der Freischaltung:13.06.2023
Datum der Erstveröffentlichung:27.03.2020
Lizenz (Deutsch):License LogoCC BY: Creative-Commons-Lizenz: Namensnennung 4.0 International