Effects of Different Abiotic Stresses on Primary Metabolism

Author(s):  
Belen Colavolpe ◽  
Fabiana Espasandin ◽  
Juan Manuel Vilas ◽  
Santiago Maiale ◽  
Pedro Sansberro ◽  
...  
2021 ◽  
Vol 22 (5) ◽  
pp. 2352
Author(s):  
Evangelia Stavridou ◽  
Georgia Voulgari ◽  
Michail Michailidis ◽  
Stefanos Kostas ◽  
Evangelia G. Chronopoulou ◽  
...  

Drought and heat stresses are major factors limiting crop growth and productivity, and their effect is more devastating when occurring concurrently. Plant glutathione transferases (GSTs) are differentially expressed in response to different stimuli, conferring tolerance to a wide range of abiotic stresses. GSTs from drought-tolerant Phaseolus vulgaris var. “Plake Megalosperma Prespon” is expected to play an important role in the response mechanisms to combined and single heat and drought stresses. Herein, we examined wild-type N. tabacum plants (cv. Basmas Xanthi) and T1 transgenic lines overexpressing the stress-induced Pvgstu3–3 and Pvgstu2–2 genes. The overexpression of Pvgstu3–3 contributed to potential thermotolerance and greater plant performance under combined stress. Significant alterations in the primary metabolism were observed in the transgenic plants between combined stress and stress-free conditions. Stress-responsive differentially expressed genes (DEGs) and transcription factors (TFs) related to photosynthesis, signal transduction, starch and sucrose metabolism, osmotic adjustment and thermotolerance, were identified under combined stress. In contrast, induction of certain DEGs and TF families under stress-free conditions indicated that transgenic plants were in a primed state. The overexpression of the Pvgstu3–3 is playing a leading role in the production of signaling molecules, induction of specific metabolites and activation of the protective mechanisms for enhanced protection against combined abiotic stresses in tobacco.


2010 ◽  
Vol 32 (8) ◽  
pp. 839-847 ◽  
Author(s):  
Ying-Ping CAO ◽  
Jin-Lei SHI ◽  
Zhong LI ◽  
Feng MING

2013 ◽  
Vol 38 (2) ◽  
pp. 360-368
Author(s):  
Xia SUN ◽  
Jin-Yue LIU ◽  
Xiao-Hui YUAN ◽  
Xiang-Wen PAN ◽  
Wei-Guang DU ◽  
...  

Author(s):  
Mohammad Faizan ◽  
Fangyuan Yu ◽  
Chen Chen ◽  
Ahmad Faraz ◽  
Shamsul Hayat

: Abiotic stresses arising from atmosphere change belie plant growth and yield, leading to food reduction. The cultivation of a large number of crops in the contaminated environment is a main concern of environmentalists in the present time. To get food safety, a highly developed nanotechnology is a useful tool for promoting food production and assuring sustainability. Nanotechnology helps to better production in agriculture by promoting the efficiency of inputs and reducing relevant losses. This review examines the research performed in the past to show how zinc oxide nanoparticles (ZnO-NPs) are influencing the negative effects of abiotic stresses. Application of ZnO-NPs is one of the most effectual options for considerable enhancement of agricultural yield globally under stressful conditions. ZnO-NPs can transform the agricultural and food industry with the help of several innovative tools in reversing oxidative stress symptoms induced by abiotic stresses. In addition, the effect of ZnO-NPs on physiological, biochemical, and antioxidative activities in various plants have also been examined properly. This review summarizes the current understanding and the future possibilities of plant-ZnO-NPs research.


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