Abiotic Stress in Crop Production
TL;DR: In this article , the authors focus on current findings in plant resistance to four cardinal abiotic stressors (drought, heat, salinity, and low temperatures) and focus on the importance of primary and secondary metabolites, including carbohydrates, amino acids, phenolics, and phytohormones.
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Abstract: The vast majority of agricultural land undergoes abiotic stress that can significantly reduce agricultural yields. Understanding the mechanisms of plant defenses against stresses and putting this knowledge into practice is, therefore, an integral part of sustainable agriculture. In this review, we focus on current findings in plant resistance to four cardinal abiotic stressors—drought, heat, salinity, and low temperatures. Apart from the description of the newly discovered mechanisms of signaling and resistance to abiotic stress, this review also focuses on the importance of primary and secondary metabolites, including carbohydrates, amino acids, phenolics, and phytohormones. A meta-analysis of transcriptomic studies concerning the model plant Arabidopsis demonstrates the long-observed phenomenon that abiotic stressors induce different signals and effects at the level of gene expression, but genes whose regulation is similar under most stressors can still be traced. The analysis further reveals the transcriptional modulation of Golgi-targeted proteins in response to heat stress. Our analysis also highlights several genes that are similarly regulated under all stress conditions. These genes support the central role of phytohormones in the abiotic stress response, and the importance of some of these in plant resistance has not yet been studied. Finally, this review provides information about the response to abiotic stress in major European crop plants—wheat, sugar beet, maize, potatoes, barley, sunflowers, grapes, rapeseed, tomatoes, and apples.
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References
Brassinosteroids Act as a Positive Regulator of Photoprotection in Response to Chilling Stress.
Pingping Fang,Meng‐Yu Yan,Cheng Chi,Mengqi Wang,Yan-Hong Zhou,Jie Zhou,Kai Shi,Xiao-Jian Xia,Christine H. Foyer,Jing-Quan Yu +9 more
TL;DR: It is demonstrated that brassinosteroids act as a positive regulator of photoprotection in a redox-PGR5-dependent manner in response to chilling stress in tomato.
Developmental Regulation of Low-temperature Tolerance in Winter Wheat
TL;DR: Observations confirm the hypothesis that the point of transition to the reproductive stage is pivotal in the expression of LT tolerance genes, and the level and duration of LT acclimation are related to the stage of phenological development as regulated by vernalization and photoperiod requirements.
109
Feeling the Heat: Searching for Plant Thermosensors.
TL;DR: Comparisons with thermosensors in various other organisms are put in the context of thermosensing in plants, and a set of criteria to which a thermosensor must adhere is suggested.
109
The effects of cold stress on the phenolic compounds and antioxidant capacity of grapevine (Vitis vinifera L.) leaves.
TL;DR: The analyses have shown that the more-tolerant variety was characterized by a higher content of phenolic compounds, better radical-scavenging capacity and stronger reducing power, while the cold stress caused a decrease in the concentration of the phenolics and decreased the scavenging capacity in the leaves of both varieties.
109
Effects of genotype and temperature on accumulation of plant secondary metabolites in Canadian and Australian wheat grown under controlled environments.
TL;DR: Genotype and growing temperature significantly shifted the production of wheat secondary metabolites, which might be used as a guide for breeding wheat varieties with higher antioxidant properties.