| Literature DB >> 34149764 |
Shumei Fang1, Xue Hou1, Xilong Liang2,3.
Abstract
As two coexisting abiotic stresses, salt stress and alkali stress have severely restricted the development of global agriculture. Clarifying the plant resistance mechanism and determining how to improve plant tolerance to salt stress and alkali stress have been popular research topics. At present, most related studies have focused mainly on salt stress, and salt-alkali mixed stress studies are relatively scarce. However, in nature, high concentrations of salt and high pH often occur simultaneously, and their synergistic effects can be more harmful to plant growth and development than the effects of either stress alone. Therefore, it is of great practical importance for the sustainable development of agriculture to study plant resistance mechanisms under saline-alkali mixed stress, screen new saline-alkali stress tolerance genes, and explore new plant salt-alkali tolerance strategies. Herein, we summarized how plants actively respond to saline-alkali stress through morphological adaptation, physiological adaptation and molecular regulation.Entities:
Keywords: endogenous hormone response; epigenetic regulation; morphological adaptation; osmotic regulation; saline-alkali stress; signal transduction
Year: 2021 PMID: 34149764 PMCID: PMC8213028 DOI: 10.3389/fpls.2021.667458
Source DB: PubMed Journal: Front Plant Sci ISSN: 1664-462X Impact factor: 5.753
FIGURE 1Maintaining Na+-K+ ion balance via channel proteins and transporters.
List of genes associated with salinity and alkalinity adversity response in plants.
| Gene name | Source of species | Regulatory functions | Types of saline-alkali stress | Tolerance | Transgenic species | References |
| Adzuki bean | Promote proline accumulation; decrease MDA and ROS contents; promote the expression of stress responsive genes | NaHCO3 | + | Overexpression in Arabidopsis | ||
| Alfalfa ( | Maintain the chlorophyll content; improve antioxidant enzyme activity and soluble sugar levels; reduce ion leakage, ROS accumulation and MDA content | Na2CO3 + NaHCO3 | + | Overexpression in tobacco | ||
| Alfalfa ( | Increase the plants’ salinity tolerance in an ABA-dependent manner | NaCl | + | Overexpression in Arabidopsis | ||
| Alfalfa | Increase the contents of chlorophyll, proline, soluble sugar, SOD and CAT; reduce the relative electrical conductivity, the contents of MDA and ROS; Increase pods per plant, seeds per plant and 100-seed weight | NaCl or Na2CO3 + NaHCO3 | + | Overexpression in soybean | ||
| Alfalfa ( | Increase the GSH content | NaHCO3 | + | Overexpression in alfalfa | ||
| Apple ( | Reduce root damage; maintained ion homeostasis; detoxify ROS | NaCl | + | Overexpression and RNAi in apple | ||
| Apple ( | Increase chlorophyll content, reduce H2O2 and MDA levels | NaCl | + | Overexpression in Apple | ||
| Apple ( | Directly activate the expression of | NaCl | + | Overexpression in apple and Arabidopsis | ||
| Arabidopsis | Reduce Na+ toxicity | NaCl | + | Gene knockout and complementation in Arabidopsis | ||
| Regulate Na+ and H2O2 homeostasis | NaCl | + | RNAi mutation in Arabidopsis | |||
| Arabidopsis | Modulate the cuticle formation and antioxidant defense | NaCl | + | Gene knockout and overexpression in Arabidopsis | ||
| Promote stomatal closure, ion homeostasis, ROS scavenging, osmolyte biosynthesis, and regulation of stress-related genes | NaCl | + | Overexpression in tobacco | |||
| Active stress response gene such as | NaHCO3 | + | Overexpression in Arabidopsis | |||
| Cucumber | Regulate PA metabolism and Na+/K+ balance | NaCl | + | Overexpression in tobacco | ||
| Decrease ion leakage and MDA content, increase chlorophyll content and root activity | NaHCO3 | + | Overexpression in | |||
| Activate the expression of stress-related genes through binding to the GCC-box | NaCl | + | Overexpression in Arabidopsis | |||
| Higher content of chloroplast pigments; the activity of SOD and POD was also enhanced | NaCl | + | Overexpression in Arabidopsis | |||
| Maize ( | Regulate Na+ and K+ homeostasis and stabilizing photosystem II | NaCl | + | Overexpression in Arabidopsis | ||
| Maize ( | Interaction with ZmCBL1, ZmCBL4, and ZmMPI | NaCl | + | Overexpression in maize and Arabidopsis | ||
| Maize ( | Regulate stress- and ABA-related gene expression | NaCl | − | Overexpression in rice | ||
| Higher activities of SOD, POD, and CAT, higher contents of proline and chlorophyll, while MDA content was lower | NaCl | + | Overexpression in Arabidopsis | |||
| Promote the expression of genes controlling ion homeostasis | NaCl | + | Overexpression in Arabidopsis | |||
| Oat | Modulate the expression of stress-inducible genes including dehydrins, cell signaling components, transcription factors, antioxidative enzymes, and proline biosynthesis | NaCl | + | Overexpression in tobacco | ||
| Regulate ionic homeostasis, H2O2 accumulation, photosynthetic activity | NaCl | + | Gene knockout in | |||
| Poplar ( | Increase survival rates and metabolic regulatory genes expression | NaCl | + | Overexpression in Arabidopsis | ||
| Upregulate the expression of | NaCl | + | Overexpression in Arabidopsis | |||
| Downregulate the expression of | NaCl | − | Overexpression in Arabidopsis | |||
| Decrease net photosynthesis rate, stomatal conductance and transpiration rate | NaCl | − | Overexpression in poplar | |||
| Increase expression of some TFs and stress-defense-related genes in ABA pathway | NaCl | + | Overexpression in tobacco | |||
| Potato | Promote ROS scavenging, chlorophyll stability and salt-tolerant gene induction | NaCl | + | Overexpression in potato | ||
| Rice | Mediate Na+ exclusion in the phloem to prevent Na+ transfer to young leaf blades | NaCl | + | T-DNA insertion mutation in rice | ||
| Rice | Decrease the Na+/K+ ratio, increasing the activities of antioxidant enzymes | NaCl | + | Overexpression in rice | ||
| Improve plant growth | NaCl | + | Overexpression in Arabidopsis | |||
| Regulating enzyme genes associated with ROS scavenging pathway | NaHCO3 | + | Overexpression in | |||
| Regulate ion homeostasis and protecting the plasma membrane against oxidative damage | NaCl | + | Overexpression in Arabidopsis | |||
| Soybean ( | Improve plant growth | NaCl | + | Overexpression in soybean | ||
| Soybean ( | Regulate transcription of the stress- and ABA-responsive genes with ABA and proline accumulation, and MDA decrease. | NaCl | + | Overexpression in Arabidopsis | ||
| Soybean ( | Enhance the scavenging of ROS, osmolyte synthesis, and the transcriptional regulation of stress-related genes | NaCl + NaHCO3 | + | Overexpression in soybean and Arabidopsis | ||
| Soybean ( | Adjust osmotic and photosynthetic processes; increased grain number and 100-grain weight | NaCl or Na2CO3 | + | Overexpression and RNAi in soybean | ||
| Soybean ( | Free Pro content decrease; photosynthesis rate decrease; reduced the transcription of stress related genes | NaCl or Na2CO3 | − | Overexpression in soybean | ||
| Soybean ( | Altering the expression of ABA signaling-related and ABA-induced genes | NaHCO3 | + | Overexpression in Arabidopsis | ||
| Soybean ( | ABA and ET signaling pathways | NaHCO3 | + | Overexpression in Arabidopsis | ||
| Soybean ( | Upregulate H+-ATPase expression and by modifying auxin accumulation | NaHCO3 | + | Overexpression in Arabidopsis | ||
| Soybean ( | Regulate expression of stress-responsive genes, decreases plant ABA sensitivity, recognize | NaHCO3 | + | Overexpression in Arabidopsis | ||
| Directly bind ion and trigger other genes’ function, or indirectly improve ROS scavenging | NaCl or NaHCO3 | + | Overexpression in Arabidopsis | |||
| SbWRKY50 | Sweet sorghum | Directly binding to the upstream promoter of | NaCl | − | Overexpression in Arabidopsis and sweet sorghum | |
| Enhance the ROS-scavenging capability and adjusting osmotic potential | NaCl | + | Overexpression and RNAi in | |||
| Wheat | Regulate ion homeostasis, maintain osmotic balance and decrease ROS levels | NaCl | + | Overexpression in wheat | ||
| Wheat | Up-regulate stress responsive genes in ABA pathway, including | NaCl | + | Overexpression in Arabidopsis |
FIGURE 2The response mechanism of plants to saline-alkali adversity.