| Literature DB >> 31159270 |
Prashant Kaushik1, Dinesh Kumar Saini2.
Abstract
Vegetables require an optimum supply of mineral elements like silicon (Si). Si is second to oxygen in its abundance in the earth crust, and its role is quite significant in tackling biotic and abiotic stresses of vegetables. Si application also improves several agronomic and quality traits of vegetables. Hence, Si application is recommended as a strategy for the improvement of vegetable crops production. Although the research about the role of Si in vegetable dicots still lags far behind than cereals. Recently, omics-based approaches were used to provide a deeper understanding of the role of Si in vegetable protection. Here, we have compiled the studies focusing on the role of Si for vegetables, thus, enabling all of the important information regarding the effect Si application to vegetables at one place.Entities:
Keywords: abiotic; biotic; silicon; stress; vegetable
Year: 2019 PMID: 31159270 PMCID: PMC6631416 DOI: 10.3390/plants8060148
Source DB: PubMed Journal: Plants (Basel) ISSN: 2223-7747
Summary of the effects of Si application against biotic stresses.
| Vegetable Crop | Form of Silicon Applied | Observed Effect of Silicon | Reference |
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| Silicate fertilizer | Promoted the growth and yield and also reduced the damage caused by wilt disease | [ |
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| Soluble silicates | Reduced the size of fungal colonies ( | [ |
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| Soluble silicon | Decreased the receptivity of plants to mildew infection caused by | [ |
| Potassium silicate | Reduced the infection caused by | [ | |
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| Potassium silicate added to hydroponic nutrient solutions | Suppressed powdery mildew (PM) caused by | [ |
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| Soluble silicon | Significantly decreased the powdery mildew disease (caused by | [ |
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| Potassium metasilicate | Significantly suppressed powdery mildew ( | [ |
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| Sodium silicate and nanosized silicon | Significantly decreased the severity of mildew powder | [ |
| Silicic acid | Symplastic Si was associated with the reduction of the spread of the fungus ( | [ | |
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| Significantly reduced the incidence of damping-off ( | [ | |
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| Sodium silicate | Reduced the postharvest rot ( | [ |
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| Significantly decreased the disease index ( | [ | |
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| Potassium silicate | Reduced the severity and incidence of powdery mildew ( | [ |
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| Potassium silicate | Enhanced the tolerance to salinity and resistance to powdery mildew ( | [ |
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| Sodium silicate | Reduced downy mildew ( | [ |
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| Calcium silicate | Potentially reduce the severity of Phytophthora blight | [ |
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| Sodium silicate | Enhanced crop resistance to oxidative stress induced by | [ |
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| Sodium metasilicate nonahydrate | Reduced the disease severity of Fusarium crown and root rot ( | [ |
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| Wollastonite | Controlled the soybean rust ( | [ |
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| Potassium silicate | Controlled the powdery mildew ( | [ |
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| Carbon Silpower solution | Inhibited powdery mildew ( | [ |
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| Potassium silicate | Protected plants against soybean rust ( | [ |
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| Sodium silicate | Suppressed anthracnose disease ( | [ |
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| Potassium silicate | Reduced the severity and incidence of Fusarium wilt ( | [ |
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| Potassium silicate | Reduced Fusarium wilt ( | [ |
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| Potassium silicate | Enhanced resistance to anthracnose ( | [ |
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| Sodium silicate | Controlled anthracanose disaese ( | [ |
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| Potassium silicate | Strengthened resistance in plants against powdery mildew ( | [ |
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| Calcium silicate, CaMg silicate slag, wollastonite and MontanaGrowTM | Suppressed Powdery mildew ( | [ |
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| Silicon rich rice hull | Enhanced anthracnose resistance ( | [ |
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| Sodium silicate | Enhanced resistance to Fusarium wilt ( | [ |
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| Monosilicic acid | Acted as an inducer of resistance against | [ |
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| Significantly reduced the incidence of bacterial wilt ( | [ | |
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| Soluble silicon | Reduced wilt incidence ( | [ |
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| Monosilicic acid and aerosol powder | Induced basal resistance against | [ |
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| Reduced severity and incidence of bacterial wilt ( | [ | |
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| Monosilicic acid | Induced resistance against | [ |
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| Monosilicilic acid | Induced resistance against bacterial wilt ( | [ |
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| Supa Sílica and calcium silicate | Reduced the symptoms of bacterial speck ( | [ |
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| Potassium silicate | Controlled | [ |
| Calcium silicate | Induced resistance against bacterial fruit blotch | [ | |
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| Monosilicic acid | Induced systemic resistance against bacterial wilt ( | [ |
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| Suppressed bacterial wilt ( | [ | |
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| Potassium silicate | Induced resistance against bacterial wilt ( | [ |
| Calcium silicate | Enhanced resistance to bacterial fruit blotch ( | [ | |
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| Calcium silicate | Acted as resistance Inducers against the Whitefly ( | [ |
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| Silicic acid | significantly decreased the Silverleaf whitefly populations | [ |
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| AgrosilícioTM | Controlled leafminer ( | [ |
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| Potassium silicate | Acted as an anti-herbivore defense | [ |
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| sodium metasilicate | Significantly reduced the activity of root-knot nematode ( | [ |
Summary of the effects of Si application against abiotic stresses.
| Vegetable Crop | Form of Silicon Applied | Observed Effect of Silicon | Reference |
|---|---|---|---|
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| Potassium silicate | Alleviated salt stress and increased antioxidant enzymes activity | [ |
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| Sodium silicate | Alleviated salt toxicity | [ |
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| Potassium silicate | Alleviated the deleterious salt effect | [ |
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| Potassium silicate | Alleviated the salinity stress | [ |
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| Sodium silicate | Increased stress tolerance | [ |
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| Enhanced salinity tolerance | [ | |
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| Potassium silicate | Alleviated salt stress and increases antioxidant enzymes activity | [ |
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| Sodium metasilicate | Alleviated the detrimental effect of salinity stress | [ |
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| Sodium silicate | Increased resistance against salinity | [ |
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| Sodium silicate | Increased the tolerance to salt stress | [ |
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| Alleviated the effect of salinity stress | [ | |
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| Silicon and nano silicon | Improved the salt tolerance | [ |
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| Sodium silicate | Alleviated salt-oxidative stress | [ |
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| nano-SiO2 | Improved the defense mechanisms of plants against salt stress toxicity | [ |
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| Silicic acid | Enhanced the salt tolerance | [ |
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| Potassium silicate | Alleviated the salinity-induced deleterious effects | [ |
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| Nano Silicon | Improved salinity tolerance | [ |
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| Sodium silicate | Alleviated salinity stress | [ |
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| Sodium silicate | Alleviated oxidative damage and improved plant growth and photosynthetic performance | [ |
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| Potassium silicate | Mitigated salinity stress | [ |
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| Nano-silicon | Regulated the expression of salt tolerance genes under salinity stress | [ |
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| Silicon dioxide nanoparticles | Improved the salinity tolerance | [ |
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| Potassium silicate | Manipulated ion Distribution of plants under salt stress | [ |
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| Silicic acid | Improved nutrient levels and yields under saline conditions | [ |
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| Silicon nanoparticles | Enhanced salinity tolerance and improved plant growth with exopolysaccharide-producing bacteria | [ |
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| Increased the tolerance to water deficit | [ | |
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| Sodium metasilicate | Alleviated negative effects of water deficiency | [ |
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| Sodium metasilicate | Alleviated seedling damage under drought and ultraviolet-B radiation | [ |
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| Silicic acid | Mitigated the adverse effects of salt and drought stress | [ |
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| Sodium metasilicate | Increased total chlorophylls under water-deficient conditions | [ |
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| Silicic acid | Improved seed germination and alleviated oxidative stress under water deficit stress | [ |
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| Sodium silicate | Restrained chlorophyll degradation and increased optimal photosynthetic efficiency under drought stress | [ |
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| Potassium silicate | Enhanced the water stress tolerance | [ |
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| Soluble silicon | Alleviated the symptoms of Al toxicity | [ |
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| Potassium silicate | Alleviated Mn toxicity | [ |
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| Potassium silicate | Alleviated the Mn toxicity | [ |
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| Silicic acid | Alleviated Mn toxicity and modulated the metabolism and utilization of phenolic compounds | [ |
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| Sodium silicate | Alleviated the adverse effects of excess Mn and cadmium (Cd) toxicity | [ |
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| Improved antioxidant capacity of plant under Cd toxicity | [ | |
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| Silicic acid | Ameliorated manganese toxicity by decreasing hydroxyl radical accumulation | [ |
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| Calcium silicate | Mitigated the inhibitory effects of arsenic | [ |
| Sodium metasilicate nonahydrate | Alleviated Cd stress | [ | |
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| Sodium silicate | Alleviated autotoxicity caused by 3-phenyl propionic acid during seed germination | [ |
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| Silicic acid | Enhanced leaf remobilization of iron under limited iron conditions | [ |
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| Potassium silicate | Mitigated the toxicity of ammonium | [ |
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| Monosilicic acid | Mitigated ammonium toxicity | [ |
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| Sodium silicate | Alleviated autotoxicity and Cd toxicity | [ |
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| Silicic acid | Mitigated the Al toxicity under acidic conditions | [ |
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| Orthosilicic acid | Alleviated Cd toxicity | [ |
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| Sodium silicate | Improved the defense ability against Al toxicity | [ |
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| Induced alleviation of growth reduction under osmotic stress | [ | |
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| Silicon spray | Enhanced the capacity of scavenging active oxygen species and improved photosynthesis | [ |
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| Sodium metasilicate | Contributed tolerance against osmotic stress | [ |
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| Monosilicic acid | Regulated osmotic stress tolerance by differential accumulation of relevant amino acids | [ |
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| Potassium silicate | Provided chilling tolerance | [ |
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| Sodium metasilicate | Enhanced nutrient acquisition under UV-B Radiation | [ |
Figure 1Schematic representation of various biotic and abiotic stresses overcome by Si application, along with the changes that take place after Si application.