Notulae Botanicae Horti Agrobotanici Cluj-Napoca
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    2546 research outputs found

    Salinity stress amelioration and morpho-physiological growth stimulation by silicon priming and biochar supplementation in Chenopodium quinoa

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    The effect of silicon (Si) priming and soil amendment with biochar (BC) was analysed in Chenopodium quinoa under normal and salinity stressed conditions. Reduced growth parameters, chlorophyll content, and photosynthesis under salinity stress were significantly ameliorated by Si priming and soil amendment with BC. Applied Si and BC treatment also enhanced the chlorophyll content, stomatal conductance, transpiration rate, net photosynthesis, and maximal photochemical efficiency. In addition to this, Si and/or BC amendments alleviated the oxidative damage by reducing the generation of toxic reactive oxygen species including hydrogen peroxide and superoxide. Moreover, the activities of antioxidant enzymes and the content of ascorbate and glutathione increased significantly in Si and BC treated plants reflecting efficient alleviation of oxidative damage. Besides, the content of compatible osmolytes was increased in Si and/or BC treated seedlings, thereby contributing to improved growth and salinity tolerance by maintaining higher leaf water potential and water use efficiency. Si and BC treatment increased the uptake of key mineral elements. Moreover, salinity induced decline in the nutritional components of seeds of C. quinoa were considerably increased under Si and BC treatments

    Differential effect of water salinity levels on gas exchange, chlorophyll fluorescence and antioxidant compounds in ex vitro date palm plants

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    In this study, the response to salt stress was evaluated in ex vitro acclimated date palm plants, regenerated from in vitro culture multiplication. The plants, eighteen-month-old, were irrigated with 0 (control), 150, 300 or 450 mM NaCl solutions (high to very high-water salinity). Photosynthesis parameters and antioxidant compounds were determined at the end of the experiment in leaves. At 150 mM NaCl, net CO2 assimilation rate and internal CO2 concentration were not impaired; while transpiration and stomatal conductance decreased by 60 and 70%, respectively. By increasing salt concentrations, all gas exchanges parameters were decreased. Measurement of chlorophyll fluorescence and P700 redox state showed that PSII and PSI machineries were significantly enhanced under 150 mM NaCl, conditions. With the 300 mM NaCl, the PSI parameters remained unchanged compared to control, while some of the PSII parameters, such as NPQ and Y (NPQ), were increased. At 450 mM NaCl, photosystems functionality was light intensity (PAR) dependent. Only at low PAR, a significant increase of some PSI and PSII parameters was observed. At the contrary, with high PAR, most of the energy conversion functions were significantly reduced, especially those related to PSI, indicating that PSI was more susceptible for damage by salinity than PSII. To overcome high salinity stress, ex vitro date palm plants mobilized a cascade of physio-biochemical pathways including the antioxidant activity and proline biosynthesis. Overall, the salinity of irrigation water, and up to 150 mM, improves the physiological performance of ex vitro date palm plants, which manage to tolerate very high levels of this stress

    A cotton leaf nitrogen monitoring model based on spectral-fluorescence data fusion

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    In the present study, hyperspectral imaging and remote sensing of fluorescence were integrated to monitor the nitrogen content in leaves of drip-irrigated cotton at different growth periods in northern Xinjiang, China. Based on the spectrum and chlorophyll fluorescence parameters of nitrogen content in cotton leaves of different growth periods obtained through the shuffled frog-leaping algorithm (SFLA), the successive projection algorithm (SPA), grey relational analysis (GRA), and competitive adaptive reweighted sampling (CARS), a monitoring model of nitrogen content in cotton leaves was established via on hyperspectral imaging, chlorophyll fluorescence parameters, and spectral-fluorescence data fusion. The results showed that: (1) there were significant positive correlations between the chlorophyll fluorescence parameters Fv'/Fm', Fv/Fm, Yield, Fm, NPQ, and the nitrogen content at each growth period. (2) The effectiveness of chlorophyll fluorescence parameters in inversion of nitrogen content was the highest at the budding period and the blooming period, and the coefficients of determination (R2) of the validation sets were 0.745 and 0.709, respectively. (3) In the monitoring model for cotton leaf nitrogen in the blooming period that was established based on the decision-level algorithm and spectral-fluorescence data fusion, the R2 value of the training set reached 0.961, and that of the validation set was 0.828. In conclusion, the findings of this study suggest that the feature-level fusion and decision-level fusion algorithms of spectral-fluorescence data can effectively improve the accuracy and reliability of cotton leaf nitrogen monitoring

    Phenological, morpho-physiological, and biochemical attributes of barberry (Berberis integerrima L.) in different habitats of Iran

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    Berberis integerrima L. belongs to the Berberidaceae family and is one of the small fruits with many medicinal properties, which is considered among the horticultural products with high plant diversity and favorable genetic reserves. This research aimed to study barberry's phenological, morpho-physiological, and biochemical attributes in five different habitats in Kerman province, Iran (Bam, Jiroft, Anbarabad, Raber, and Baft) during 2019-2020. The results of the phenological traits showed that the Jiroft and Anbarabad habitats have the maximum number of days until the end of vegetative growth, the number of days from activation of buds to the beginning of fruit formation, the number of days until the physiological maturity of the fruit, the number of days from activation of buds to fruit coloring, and the lowest number of days until flowering. The mean comparison showed that in terms of yield, the investigated habitats from the highest production to the lowest included Anbarabad> Baft> Bam> Rabar> Jiroft. The highest average traits of panicle length (43.38 cm), number of fruits per panicle (26.6), 1000-fruit weight (141.9 g), 1000-seedless fruit weight (128.4 g), seed length (1.16 mm), seed diameter (0.97 mm), fruit length and diameter (19.03 and 5.41 mm), yield (16.69 kg per stem), and the number of thorns 10 cm (13.5 pieces) was observed in Anbarabad habitat. The yield was negatively and significantly correlated with fruit length, titratable acidity, anthocyanin, DPPH, and phenol. Interestingly, soil nitrogen, phosphorus, and potassium had a positive effect on increasing the barberry yield. On the other hand, increasing the longitude, latitude, and altitude decreases yield. Anbarabad and Jiroft habitats had the highest and lowest averages of pH, titratable acidity, total soluble solids, chlorophyll, and carotenoid content, respectively. Generally, the results of this study indicate a high genetic diversity in phenological, morphological, chemical, and physiological aspects in different habitats. Moreover, the results showed that Anbarabad was significantly superior in phenological, morphological, yield, and phytochemical traits compared to other ecotypes

    The gall midge Obolodiplosis robiniae Haldemann (Diptera Cecidomyiidae) new invasive alien species in Europa – Review

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    The most important pests of acacia black locust (Robinia pseudoacacia L.) (Fabaceae) are: Appendiseta robiniae Gillette, Phyllonorycter robiniella Clemens, Parectopa robiniella Clemens, Nematus tibialis Newman and Obolodiplosis robiniae Haldemann, species from North America, where it also originates the acacia, which is the host plant. In Europe these species were introduced accidentally, being considered invasive species. In Europe, O. robiniae Haldemann was first reported in July 2003 in northeastern Italy, in Paese near Padua, from where it spread to almost the entire European continent, especially through trade in infested biological material from nurseries. The attack occurs in the species R. pseudoacacia L., R. viscosa L. and R. hispida L., mainly in urban areas, where it mainly affects their aesthetic value. The larvae develop characteristic leaf margin roll galls on the infested leaves. There are up to 6 galels on a leaflet, and on average there are up to 5-6 larvae. In Europe it develops two, three and, in optimal conditions, even four generations a year. Zoophagous entomofauna can cause population decline, especially parasitoid species. For Platygaster robiniae Buhl & Duso (Hymenoptera: Platygastridae) the percentage of parasites reported was up to 40%. A low percentage of parasitism can be produced by other species, such as: Aprostocetus sp., Chrysocharis sp. (Hymenoptera: Eulophidae), Eupelmus urozonus Dalman (Hymenoptera: Eupelmidae), Eurytoma verticillata F. (Hymenoptera: Eurytomidae), Mesopolobus mediterraneus Mayr. (Hymenoptera: Pteromalidae) and Torymus sp (Hymenoptera: Torymidae)

    The correlation of in vitro antioxidant potentials with the various biochemical responses of salinized basil leaves

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    One of the environmental sustainability issues is salinity. Basil seedlings (Ocimum basilicum L.) were treated using NaCl solutions of three different concentrations prepared using irrigation (40, 80, and 130 mM), and various biochemical analyses were performed on basil leaves. The number of leaves, leaf area, moisture, weights, and MDA content of basil decreased significantly as salinity levels increased from 40 to 130 mM; however, dry matter increased. As well, the current study investigated a significant increase in osmolytes (including total soluble sugars and proline) and Na+ contents. The highest activities of CAT and SOD in the leaf tissues of basil were recorded after treatment with 130 mM NaCl, whereas the polyphenol and total flavonoid contents were negatively influenced.  On the other hand, the highest ABTS scavenging activity was observed in the 40 mM-treated leaves at a concentration of 1000 µg/mL; however, the DPPH scavenging potential increased significantly in the 80 mM-treated leaves at 3000 µg/mL. Furthermore, the correlation between in vitro antioxidant potentials and biochemical responses was described. A strong correlation was identified between the in vitro antioxidant capacities of salinized O. basilicum leaves and SOD activity, total flavonoids, and the presence of phenolic acids, particularly p-hydroxybenzoic and o-coumaric acids at various concentrations. As a result, this is the first study to explain how basil may resist salinity by producing specific antioxidant compounds; therefore, our research recommends use of salinity issue to obtain a better plant material for producing dietary supplements or herbal drugs

    Effect of root imbibition with selenium and iodine on antioxidant compounds in tomato (Solanum lycopersicum L.) crop

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    The use of trace elements such as iodine and selenium in agriculture is gaining great importance due to the benefits in plants before different types of biotic or abiotic stress. This research aimed to evaluate the seedling root priming with Na2SeO3 (0, 0,5, 1, 2, 3 mg L-1) and KIO3 (0, 100, 150, 200, 250 mg L-1) on the antioxidant compounds of tomato (Solanum lycopersicum L.) fruits and leaves. The crop was established under greenhouse conditions in 10-L polyethylene containers containing peat moss and perlite 1:1 (v/v), in a randomized complete block experimental design with a 52 factorial arrangement. In the fruits, the Na2SeO3 influenced the GHS, flavonoids, lycopene and β-carotene contents, while the KIO3 influenced the GHS, vitamin C and lycopene contents. The KIO3-Na2SeO3 interactions affected the GSH, phenols, flavonoids, lycopene and β-carotene contents in fruits. In the leaves the GHS content increased with the Na2SeO3, while the GSH, flavonoids, and chlorophyll contents increased with the KIO3 factor and KIO3-Na2SeO3 interactions. The evaluated enzymes in fruits and leaves decreased with the both the KIO3 and Na2SeO3 concentrations. The Na2SeO3 influenced the hydrophilic compounds by ABTS and DPPH, while the KIO3 influenced the hydrophilic compounds by ABTS. In the leaves, the KIO3 influenced the lipophilic compounds by ABTS. The KIO3-Na2SeO3 interactions influenced the hydrophilic compounds by ABTS in both the fruits and leaves. Seedling root imbibition in KIO3 and Na2SeO3 is a method that implemented in the tomato crop presents interesting aspects in the increase of the antioxidant capacity and the non-enzymatic compounds, such as vitamin C, phenols, flavonoids and GSH contents. However, this method presented an inhibition in the antioxidant enzymes

    Assessment of genetic divergence in wheat lines (Triticum aestivum L.) involving biochemical and protein markers in rainfed conditions

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    Wheat (Triticum aestivum L.) is the important and strategic cereal crop for the majority of world’s populations. It is significant staple food of about two billion people. In next few years, world demand for wheat is expected to be 40 percent higher than that of its level today. Keeping in view the importance of the crop research work was conducted in the laboratory of Plant Breeding and Molecular Genetics, University of Poonch Rawalakot, AJK, Pakistan. The aim of the research was to find out the genetic diversity of different wheat lines. In the experiment, 50 different lines of wheat species (Triticum aestivum L.) was used to detect genetic diversity by utilizing Sodium Dodecyl Sulfate Polyacrylamide Gel Electrophoresis and biochemical analysis. On the basis of biochemical analysis lines 3111 and 3123 was diverse among 50 lines for antioxidant activity by using DPPH radical and 3135 and 3139 for phenolic contents and for flavonoid 3148 and 3107 was found more promising. Molecular characterization by SDS PAGE showed diversity in three wheat lines 3136, 3138 and 3110. These wheat lines could be our potential lines for future wheat improvement program as they were also promising regarding to the high yields

    Proteomic alterations in various plant tissues of maize under induced chromium stress

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    Heavy metal contamination is becoming a major cause of pollution in the environment, impacting humans, animals, and plants directly. Because of its widespread use in the tanning industry, chromium (Cr) regarded as a highly dangerous environmental toxin. The goal of this study was to investigate growth and proteins changes in different plant tissues (leaves, shoots, and seeds) of two maize cultivars (NMH-360 and DKC 61-42) under the stress of Cr (0, 50, and 150 ppm Cr). Sodium dodecyl polyacrylamide gel electrophoresis (SDS-PAGE) was used to observe plant proteome modification in response to Cr stress. Results revealed that at 150 ppm, both maize cultivars showed a decrease in plant growth attributes. Furthermore, it was noticed that the plant proteome changed in response to Cr stress in leaf and shoot tissues. A few proteins were up-regulated (70 kDa in C1 variety), while others were down-regulated (154, 140, 115, 80, 70 and 53 kDa in C1 cultivar shoots while 154, 65, 60, 17 kDa bands in shoots of C2 cultivar). Some protein bands were induced at 50 ppm, some at 150 ppm, and yet others at both concentrations. The findings of this study could aid in the selection of Cr-tolerant plant cultivars as well as the design of new protein biomarkers that can be utilized as a monitoring tool in heavy metal stress responses

    Green nanotechnology for plant bacterial diseases management in cereal crops: a review on metal-based nanoparticles

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    Cereals are an important source of nutrients for animals. Several diseases cause severe yield loss in cereal crops. Bacterial diseases result in varying yield losses across cereals: Wheat (5-40%), maize (15-98.9%), rice (20-70%), pearl millet (3-35%), and oats (15-49%). Diseases may be bacterial diseases, fungal or viral. Bacterial diseases are traditionally treated by pesticides. Chemically synthesized pesticides are toxic and hazardous to the environment. Nanotechnology is emerging and novel field for agriculture, especially in plant pathology as a strong antimicrobial agent. Nanoparticles have been synthesized in various ways i.e., biological, physical, and chemical methods. Chemical and physical methods of nanoparticles are costly and toxic to the environment. The biological method for the synthesis of nanoparticles is eco-friendly and economical. Microorganisms or plant extracts are used for metal nanoparticle synthesis. The application of nanoparticles in agriculture has a wide scope and it can bring nano-revolution. This review summarizes the antibacterial activity of biosynthesized metal nanoparticles and their role in bacterial disease management of cereals

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