Spermidine application enhances tomato seedling tolerance to salinity-alkalinity stress by modifying chloroplast antioxidant systems
- Authors: Zhang Z.1,2,3, Chang X.X.1,2,3, Zhang L.1,2,3, Li J.M.1,2,3, Hu X.H.1,2,3
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Affiliations:
- College of Horticulture
- Key Laboratory of Protected Horticultural Engineering in Northwest
- The Protected Agriculture Engineering Center in Shaanxi Province
- Issue: Vol 63, No 4 (2016)
- Pages: 461-468
- Section: Research Papers
- URL: https://journal-vniispk.ru/1021-4437/article/view/179171
- DOI: https://doi.org/10.1134/S102144371604018X
- ID: 179171
Cite item
Abstract
The purpose of this study was to elucidate whether exogenous spermidine (Spd) protection of tomato (Solanum lycopersicum L.) seedlings under salinity-alkalinity stress is associated with antioxidant enzymes in the chloroplast. The effects of exogenous Spd on antioxidant enzyme activity and antioxidant content in the chloroplast were evaluated in seedlings of salt-sensitive ecotype (Zhongza 9) grown in a 75 mM salinity-alkalinity solution, with or without 0.25 mM Spd foliar spraying. Results showed that salinity-alkalinity stress increased MDA content, superoxide anion O2•- generation rate, superoxide dismutase (SOD), ascorbate peroxidase (APX), monodehydroascorbate reductase (MDHAR) activities and ratio of AsA/DHA and reduced contents of ascorbate (AsA), dehydroascorbate (DHA), AsA+DHA, glutathione (GSH), oxidized glutathione (GSSG), GSH+GSSG, dehydroascorbate reductase (DHAR) activity and ratio of GSH/GSSG in chloroplasts. The exogenous Spd application combined with salinity-alkalinity stress decreased the O2•- generation rate and MDA content compared to salinity-alkalinity stress alone. The exogenous Spd also increased AsA-GSH cycle components and increased all antioxidant enzyme activities in most cases. Therefore, exogenous Spd alleviates salinity-alkalinity stress damage using antioxidant enzymes and non-enzymatic systems in chloroplasts.
About the authors
Z. Zhang
College of Horticulture; Key Laboratory of Protected Horticultural Engineering in Northwest; The Protected Agriculture Engineering Center in Shaanxi Province
Email: hxh1977@163.com
China, Shaanxi Yangling; Shaanxi Yangling; Shaanxi Yangling
X. X. Chang
College of Horticulture; Key Laboratory of Protected Horticultural Engineering in Northwest; The Protected Agriculture Engineering Center in Shaanxi Province
Email: hxh1977@163.com
China, Shaanxi Yangling; Shaanxi Yangling; Shaanxi Yangling
L. Zhang
College of Horticulture; Key Laboratory of Protected Horticultural Engineering in Northwest; The Protected Agriculture Engineering Center in Shaanxi Province
Email: hxh1977@163.com
China, Shaanxi Yangling; Shaanxi Yangling; Shaanxi Yangling
J. M. Li
College of Horticulture; Key Laboratory of Protected Horticultural Engineering in Northwest; The Protected Agriculture Engineering Center in Shaanxi Province
Email: hxh1977@163.com
China, Shaanxi Yangling; Shaanxi Yangling; Shaanxi Yangling
X. H. Hu
College of Horticulture; Key Laboratory of Protected Horticultural Engineering in Northwest; The Protected Agriculture Engineering Center in Shaanxi Province
Author for correspondence.
Email: hxh1977@163.com
China, Shaanxi Yangling; Shaanxi Yangling; Shaanxi Yangling
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