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result(s) for
"free proline"
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Chitosan nanoparticle and pyridoxine seed priming improves tolerance to salinity in milk thistle seedling Silybum marianum (L.) gaertn.
by
SEGHATOLESLAMI, Mohammadjavad
,
MOSAVI, Seyed Gholamreza
,
BARADARAN, Reza
in
Abiotic stress
,
antioxidant enzymes
,
Antioxidants
2020
Application of growth regulators plays important role under salt conditions. Perspectives to overcome these limitations by chitosan nanoparticle (CSNP: 0, 0.25, 0.5, and 1%) and pyridoxine (PN: 0, 0.03, 0.06, and 0.09%) seed priming was studied in both experiments with milk thistle seeds exposed to NaCl as salt stress (0, 50, 100, and 150 mM). Salinity threshold and EC50 (the salinity level that 50% of germination reduction) achieved 74.85 and 213.5 mM, respectively. A significant reduction in germination percentage (49.12%), seedling length (50.07%), and seedling vigor index (67.39%) while, a significant increase in superoxide dismutase activity (54.63%) were achieved at 150 mM NaCl in compared to the control treatment. The highest germination rate was resulted by 100 mM NaCl and 0.25% CSNP and the least (2.86 seed/day) by 150 mM NaCl and without CSNP. The salt stress significantly decreased photosynthetic pigments; however, the largest value of chlorophyll a, b, and total was related to without NaCl and 1% CSNP and the least value of traits (6.1, 1.67, and 7.77 µg/g FW) to non-application of CSNP under 150 mM NaCl. PN application was caused decrease in free proline content compared to the non-application treatment. The most pronounced effects of CSNP and PN were recorded in 0.25 and 0.09% concentrations, respectively. The finding of this study leads to the conclusion that seed priming with CSNP and PN by improving physiological mechanisms such as photosynthetic pigment synthesis, antioxidant enzyme activities, and free proline content increased salt tolerance in milk thistle seedling.
Journal Article
The ubiquitin‐binding protein MdRAD23D1 mediates drought response by regulating degradation of the proline‐rich protein MdPRP6 in apple (Malus domestica)
by
Huang, Jing‐Wen
,
Cheng, Si‐Yuan
,
Lei, Zhao‐Long
in
Accumulation
,
Agricultural production
,
apple
2023
Summary RAD23 (RADIATION SENSITIVE23) proteins are a group of UBL‐UBA (ubiquitin‐like‐ubiquitin‐associated) proteins that shuttle ubiquitylated proteins to the 26S proteasome for breakdown. Drought stress is a major environmental constraint that limits plant growth and production, but whether RAD23 proteins are involved in this process is unclear. Here, we demonstrated that a shuttle protein, MdRAD23D1, mediated drought response in apple plants (Malus domestica). MdRAD23D1 levels increased under drought stress, and its suppression resulted in decreased stress tolerance in apple plants. Through in vitro and in vivo assays, we demonstrated that MdRAD23D1 interacted with a proline‐rich protein MdPRP6, resulting in the degradation of MdPRP6 by the 26S proteasome. And MdRAD23D1 accelerated the degradation of MdPRP6 under drought stress. Suppression of MdPRP6 resulted in enhanced drought tolerance in apple plants, mainly because the free proline accumulation is changed. And the free proline is also involved in MdRAD23D1‐mediated drought response. Taken together, these findings demonstrated that MdRAD23D1 and MdPRP6 oppositely regulated drought response. MdRAD23D1 levels increased under drought, accelerating the degradation of MdPRP6. MdPRP6 negatively regulated drought response, probably by regulating proline accumulation. Thus, “MdRAD23D1‐MdPRP6” conferred drought stress tolerance in apple plants.
Journal Article
High-Throughput Screening of Free Proline Content in Rice Leaf under Cadmium Stress Using Hyperspectral Imaging with Chemometrics
2020
Tracking of free proline (FP)—an indicative substance of heavy metal stress in rice leaf—is conducive to improve plant phenotype detection, which has important guiding significance for precise management of rice production. Hyperspectral imaging was used for high-throughput screening FP in rice leaves under cadmium (Cd) stress with five concentrations and four periods. The average spectral of rice leaves were used to show differences in optical properties. Partial least squares (PLS), least-squares support vector machine (LS-SVM) and extreme learning machine (ELM) models based on full spectra and effective wavelengths were established to detect FP content. Genetic algorithm (GA), competitive adaptive weighted sampling (CARS) and PLS weighting regression coefficient (Bw) were compared to screen the most effective wavelengths. Distribution map of the FP content in rice leaves were obtained to display the changes in the FP of leaves visually. The results illustrated that spectral differences increased with Cd stress time and FP content increased with Cd stress concentration. The best result for FP detection is the ELM model based on 27 wavelengths selected by CARS and Rp is 0.9426. Undoubtedly, hyperspectral imaging combined with chemometrics was a rapid, cost effective and non-destructive technique to excavate changes of FP in rice leaves under Cd stress.
Journal Article
Assessment of changes in growth traits, oxidative stress parameters, and enzymatic and non-enzymatic antioxidant defense mechanisms in Lepidium draba plant under osmotic stress induced by polyethylene glycol
by
Moosavi, Sayyed Saeed
,
Jamshidi, Goharrizi Kiarash
,
Nazari Maryam
in
Aldehydes
,
Antioxidants
,
Ascorbic acid
2020
Lepidium draba is a weed with the medicinal properties which few researches have been done on it. In this study, some traits, related to the osmotic stress, in 14-day-old L. draba sprouts that were grown 9 days in the presence of various doses of polyethylene glycol 6000 (PEG 6000) including 0, 3, 6, 9, and 12%, with different osmotic potentials (− 0.04, − 0.12, − 0.23, − 0.34, and − 0.48 MPa, respectively) were investigated. Based on our results, germination percentage besides stem and root lengths decreased with increasing the concentrations of PEG. The contents of electrolyte leakage, malondialdehyde, other aldehydes, total protein, free amino acids, total soluble carbohydrate as well as free proline increased with increasing the concentrations of PEG. Also, for the first time, our results have proven that under osmotic stress, there is an adverse relationship between hydrogen peroxide content and the activity of catalase, peroxidase, ascorbate peroxidase, and guaiacol peroxidase enzymes, such that hydrogen peroxide content decreased with induction of PEG up to 6% and after that increased, while the activity of catalase, peroxidase, ascorbate peroxidase, and guaiacol peroxidase enzymes increased up to 6% PEG and after that decreased. The expression levels of catalase, peroxidase, ascorbate peroxidase, and guaiacol peroxidase genes showed the same pattern as was seen for these enzyme activities. According to the results of this study, it can be deduced that decreasing H2O2 content cannot be the main reason for other oxidative stress parameters to decrease. In this study, P5CS and P5CR gene expression levels increased with increasing levels of PEG up to 12% which was completely similar to free proline content. Based on our results, L. draba can be considered as a semi-tolerant plant to osmotic stress.
Journal Article
PEG-induced physiological drought for screening winter wheat genotypes sensitivity – integrated biochemical and chlorophyll a fluorescence analysis
by
Antunović Dunić, Jasenka
,
Peršić, Vesna
,
Drezner, Georg
in
Acclimation
,
Acclimatization
,
Agricultural production
2022
This study aimed to screen different winter wheat genotypes at the onset of metabolic changes induced by water deficit to comprehend possible adaptive features of photosynthetic apparatus function and structure to physiological drought. The drought treatment was the most influential variable affecting plant growth and relative water content, and genotype variability determined with what intensity varieties of winter wheat seedlings responded to water deficit. PEG-induced drought, as expected, changed phenomenological energy fluxes and the efficiency with which an electron is transferred to final PSI acceptors. Based on the effect size, fluorescence parameters were grouped to represent photochemical parameters, that is, the donor and acceptor side of PSII (PC1); the thermal phase of the photosynthetic process, or the electron flow around PSI, and the chain of electrons between PSII and PSI (PC2); and phenomenological energy fluxes per cross-section (PC3). Furthermore, four distinct clusters of genotypes were discerned based on their response to imposed physiological drought, and integrated analysis enabled an explanation of their reactions’ specificity. The most reliable JIP-test parameters for detecting and comparing the drought impact among tested genotypes were the variable fluorescence at K, L, I step, and PI TOT . To conclude, developing and improving screening methods for identifying and evaluating functional relationships of relevant characteristics that are useful for acclimation, acclimatization, and adaptation to different types of drought stress can contribute to the progress in breeding research of winter wheat drought-tolerant lines.
Journal Article
Mitigation of Water-Deficit Stress, Physio-morphological Adaptation, and Elevation of Andrographolide in Andrographis paniculata using Foliar Glycine Betaine
by
Chungloo, Daonapa
,
Tisarum, Rujira
,
Takabe, Teruhiro
in
Adaptation
,
Agriculture
,
Andrographis paniculata
2023
Glycine betaine (GlyBet) is a low-molecular-weight organic metabolite, which plays a crucial role in ameliorating the adverse effects of various abiotic stresses including drought stress. The aim of this investigation was to evaluate the physio-biochemical adaptations and the production of bioactive andrographolide compounds upon exogenous foliar application of GlyBet (50 and 100 mM) in
Andrographis paniculata
(Green Chiretta, king of bitters; Acanthaceae) grown under water-deficit (WD) conditions. Soluble sugars in GlyBet-treated plants under WD conditions were better in controlling leaf osmotic potential (
r
= −0.65) than free proline (
r
= −0.50). Leaf temperature (T
leaf
; + 2.14 °C) and crop water stress index (CWSI; > 0.8) were significantly increased in plants under WD without GlyBet application, leading to reduced stomatal conductance (g
s
), transpiration rate (E), and net photosynthetic rate (P
n
). In contrast, these parameters were unchanged upon the treatment of exogenous GlyBet even when subjected to WD. A positive relation between P
n
and leaf dry weight was demonstrated (r = 0.40). The highest amount of andrographolide (51.71 mg g
−1
DW), neoandrographolide (3.95 mg g
−1
DW), total andrographolide (68.01 mg g
−1
DW), and andrographolide (360.66 mg plant
−1
) yield per plant were observed in 100 mM GlyBet-treated plants under WD. The key results of this investigation imply the use of GlyBet to alleviate drought stress and regulate the production of andrographolide.
Journal Article
Biochemical, Physiological, and Nutrient Acquisition Response of Wheat Cultivars to Nickel and Vanadium Toxicity
by
Alamer, Khalid H.
,
Khaliq, Abdul
,
Tehseen, Maria
in
Agriculture
,
Anthropogenic factors
,
antioxidant enzymes
2024
Anthropogenic activities increased heavy metals in agricultural systems, increasing nickel (Ni) and vanadium (V) concentrations. Wheat, being an assurance of food security worldwide, can be severely affected by the presence of Ni and V in the soil system. Wheat cultivars possess varied responses to Ni and V. Hence, it seems logical to explore the innate potential of different cultivars to fight against these heavy metals. In the present study, five wheat cultivars were exposed to different Ni and V concentrations. To evaluate the innate tolerance of wheat cultivars to Ni and V toxicity, germination profile, starch metabolism, antioxidant enzyme activities, metabolites, membrane stability index, and ions uptake by wheat seedlings were recorded. Results depicted that wheat cultivars showed differential responses to Ni and V toxicity. The cultivar AARI-2011 performed better than other cultivars in terms of studied parameters. Hence, it can be concluded that the above-mentioned parameters can be employed to explore wheat cultivars’ tolerance to Ni and V.
Journal Article
Postharvest Treatments Improve Quality of Cut Peony Flowers
by
Rabiza-Świder, Julita
,
Jędrzejuk, Agata
,
Skutnik, Ewa
in
8-Hydroxyquinoline
,
8-hydroxyquinoline citrate
,
Amino acids
2020
Peony is one of the most important ornamental plants in the international flower market, but has a relatively short vase life in water. This study tested the effects of 8-hydroxyquinoline citrate (8-HQC) and nanosilver (NS) in combination with sucrose, as well as two commercial preservatives, on the longevity and some physiological and biochemical aspects of senescence of cut flowers of 14 cultivars. Responses varied both by cultivar and treatment. The preservatives extended the vase life in only five cultivars; however, in nine cultivars, preservatives increased the flower diameter and improved the general flower appearance. Blockages in xylem vessels started to appear soon after harvest. Both NS and 8-HQC with sucrose prevented tylose formation, while bacterial blockages were reduced only by the NS solution. Reduction in stem blockages did not translate into better water balance or flower longevity. The highest carbohydrate accumulation in petals was observed in the NS solution. Preservatives mitigated the rise in free amino acids, including free proline. They did not prevent an increase in H2O2 content but flowers in preservatives generally had higher catalase activity than in the control. As solutions with NS produced comparable or even better results than 8-HQC, we recommend the latter as a component of a preservative for cut peony flowers. However, cultivar-specific responses indicate that postharvest treatments must be individually tailored to each cultivar.
Journal Article
Control of Postharvest Longevity of Cut Inflorescences of Matthiola incana (L.) W.T.Aiton ‘Mera’
by
Rabiza-Świder, Julita
,
Kowalicka, Patrycja
,
Skutnik, Ewa
in
8-Hydroxyquinoline
,
Aging
,
Biocides
2026
Cut flowers of Matthiola incana ‘Mera’ are widely used in floristics but because of wilting, premature leaf yellowing, and flower/inflorescence drying their ornamental value quickly drops. The postharvest performance of this valuable cut flower in terms of symptoms of wilting, relative water content (RWC), carbohydrate content, enzyme activity, and free proline content was studied in relation to the different preservative added to the vases with flowers. The tested preservatives were based on two biocides: 200 mg/L 8-hydroxyquinoline citrate (8-HQC) and nanosilver (NS) in two concentrations, 1 and 5 mg/L, with the addition of 2% sucrose (S). Control inflorescences were kept in distilled water alone. The above preservatives did not prolong vase life, but, on the contrary, decreased it, so flowers placed in distilled water lasted the longest. The contents of both total soluble and reducing sugars increased during flower senescence, reaching the highest level in flowers held in the solution of 5 mg/L NS plus 2% S. Similarly, the content of free proline increased, especially in flowers held in the 8-HQC with 2% S (standard preservative). The contents of hydrogen peroxide (H2O2) varied in flowers from different solutions; however, they kept increasing during senescence in flowers from all the treatments. The highest activity of the antioxidative enzymes was found in flowers placed in water.
Journal Article
Expression levels of vacuolar ion homeostasis-related genes, Na+ enrichment, and their physiological responses to salt stress in sugarcane genotypes
by
Cattarin, Theerawitaya
,
Tisarum Rujira
,
Cha-um Suriyan
in
Abiotic stress
,
Adaptation
,
Conductance
2020
Sugarcane is a sugar-producing crop widely grown in tropical regions in over 120 countries of the world. Salt-affected soil is one of the most significant abiotic constraints that inhibit growth and crop productivity, and, consequently, reduce sucrose concentration in the stalk. The present study investigated vacuolar ion homeostasis, Na+ accumulation, and physiological and morphological adaptations under salt stress in two different sugarcane genotypes (salt-tolerant K88-92 and salt-sensitive K92-80) under greenhouse conditions. Na+ was rapidly absorbed by the root tissues of both sugarcane genotypes within 3–7 days of 150 mM NaCl treatment, as confirmed by the results of CoroNa Green fluorescence staining. In addition, the rate of Na+ translocation from roots to shoots was evidently reduced, leading to lower amount of Na+ in the leaf tissues. At the cellular level, expression of ShNHX1 (vacuolar Na+/H+ antiporter), ShV-PPase (vacuolar H+-pyrophosphatase), and ShV-ATPase (vacuolar H+-ATPase) was upregulated in salt-stressed plants for the compartmentation of Na+ into the vacuoles of root cells. Interestingly, sucrose, glucose, and fructose in root tissues of salt-stressed sugarcane cv. K88-92 were increased by 10.61, 5.58, and 1.81 folds, respectively, over the control. Total soluble sugars in the roots and free proline in the leaves of sugarcane cv. K88-92 (salt-tolerant) were enriched by 3.08 and 1.99 folds, respectively, when plants were exposed to 150 mM NaCl, leading to maintain better photosynthetic abilities, net photosynthetic rate (Pn), stomatal conductance (gs), transpiration rate (E), and water use efficiency (WUE) in sugarcane cv. K88-92 than those in cv. K92-80. The study concludes that Na+ compartmentation in the root tissue acts as a major defense mechanism in sugarcane, especially in salt-tolerant genotype.
Journal Article