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1.
Sci Rep ; 14(1): 23361, 2024 10 07.
Article in English | MEDLINE | ID: mdl-39375519

ABSTRACT

Pedicel length is a crucial agronomic trait of cucumbers. Fruit deformation can occur When the pedicel is too long or too short. Moreover, an appropriate pedicel length is advantageous for mechanized harvesting. Therefore, it is essential to investigate the molecular regulatory mechanisms underlying cucumber pedicel length. In the current study, we obtained a short pedicel mutant through EMS mutagenesis and discovered that the reduced cell number was the primary cause of the shortened pedicel. Upon analyzing the hormone content, we found that the level of trans zeatin in the long-pedicel material was significantly higher than that in the short-pedicel material. Further transcriptome sequencing analysis revealed that differentially expressed genes were enriched in cytokinin synthesis-related pathways. Based on these results, the present study concluded that cucumber pedicel length is regulated by genes related to the cytokinin synthesis pathway and that differences in length result from differences in zeatin content and cell number.


Subject(s)
Cucumis sativus , Cytokinins , Fruit , Gene Expression Regulation, Plant , Cucumis sativus/genetics , Cucumis sativus/metabolism , Cucumis sativus/growth & development , Cytokinins/metabolism , Fruit/genetics , Fruit/metabolism , Gene Expression Profiling , Plant Proteins/genetics , Plant Proteins/metabolism , Genes, Plant , Mutation , Transcriptome , Zeatin/metabolism , Plant Growth Regulators/metabolism
2.
Physiol Plant ; 176(5): e14526, 2024.
Article in English | MEDLINE | ID: mdl-39318034

ABSTRACT

Here, we elucidate the interaction between IAA and melatonin (MT) in response to chilling in cucumber. The results showed that chilling stress induced the increase of endogenous MT and IAA, and the application of MT promoted the synthesis of IAA, while IAA could not affect endogenous MT content under chilling stress. Moreover, MT and IAA application both remarkably increased the chilling tolerance of cucumber seedlings in terms of lower contents of MDA and ROS, higher mRNA abundance of cold response genes, net photosynthetic rate (Pn), maximum regeneration rate of ribulose-1,5-diphosphate (Jmax), Rubisco maximum carboxylation efficiency (Vcmax), the activities and gene expression of RCA and Rubisco, as well as the content of active P700 (I/I0) and photosynthetic electron transport, compared with the plants in H2O treatment. Further analysis revealed that the inhibition of IAA transportation significantly reduced the chilling tolerance induced by MT, whereas the inhibition of endogenous MT did not affect the chilling tolerance induced by IAA. Meanwhile, we found that overexpression of the MT biosynthesis gene CsASMT increased the chilling tolerance, which was blocked by inhibition of endogenous IAA, and the silence of IAA biosynthesis gene CsYUCCA10 decreased the chilling tolerance of cucumber, which could not be alleviated by MT. These data implied IAA acted as a downstream signal to participate in the MT-induced chilling tolerance of cucumber seedlings. The study has implications for the production of greenhouse cucumber in winter seasons.


Subject(s)
Cold Temperature , Cucumis sativus , Gene Expression Regulation, Plant , Indoleacetic Acids , Melatonin , Cucumis sativus/genetics , Cucumis sativus/physiology , Cucumis sativus/metabolism , Melatonin/metabolism , Indoleacetic Acids/metabolism , Seedlings/physiology , Seedlings/genetics , Signal Transduction , Photosynthesis/physiology , Plant Proteins/metabolism , Plant Proteins/genetics
3.
BMC Plant Biol ; 24(1): 903, 2024 Sep 30.
Article in English | MEDLINE | ID: mdl-39350005

ABSTRACT

BACKGROUND: During the cold season, low temperature (LT) and high relative humidity (HRH) are significant environmental factors in greenhouses and plastic tunnels, often hindering plant growth and development. The chlorophyll (Chl) biosynthesis inhibitory mechanisms under LT and HRH stress are still widely unclear. To understand how cucumbers seedlings respond to LT and HRH stress, we investigated the impact of these stressors on Chl biosynthesis. RESULTS: Our results revealed that individual LT, HRH and combined LT + HRH stress conditions affected chlorophyll a, b, total chlorophyll and carotenoid content, reducing the levels of these pigments. The levels of Chlorophyll precursors were also markedly reduced under LT and HRH stresses, with the greatest reduction observed in cucumber seedlings exposed to LT + HRH conditions (9/5℃, 95%HRH). The activities of glutamate-1-semialdehyde transaminase (GSA-AT), ALA dehydratase (ALAD), Mg-chelatase, and protochlorophyllide oxidoreductase (POR) were increased under individual LT, HRH, conditions but decreased by combination of LT + HRH stress condition. In addition, Chl biosynthesis related genes (except PBG) were upregulated by the HRH stress but were significantly downregulated under the LT + HRH stress condition in cucumber seedlings. Furthermore, the content of phenols, flavonoids and phenolic acids (cinnamic acid and caffeic acid) were significantly surged under LT + HRH treatment over the control. Histochemical observation showed higher O2- and H2O2 content in cucumber leaves during the LT and HRH stress. CONCLUSION: The results indicate that LT + HRH stress significantly impairs chlorophyll biosynthesis in cucumber seedlings by drastically reducing pigment accumulation, altering enzyme activity and gene expression. Additionally, LT + HRH stress induces oxidative damage, which further exacerbates the decline in chlorophyll content and affects overall cucumber metabolism.


Subject(s)
Chlorophyll , Cold Temperature , Cucumis sativus , Humidity , Cucumis sativus/metabolism , Cucumis sativus/genetics , Chlorophyll/metabolism , Seedlings/metabolism , Seedlings/genetics , Secondary Metabolism , Gene Expression Regulation, Plant
4.
J Appl Microbiol ; 135(9)2024 Sep 02.
Article in English | MEDLINE | ID: mdl-39299920

ABSTRACT

AIMS: This study aimed to assess the effects of phenolic acid-degrading bacteria strains on phenolic acid content, plant growth, and soil bacterial community in phenolic acid-treated soils. METHODS AND RESULTS: The strain of interest coded as B55 was isolated from cucumber root litter, and its degradation rates of ferulic acid and p-coumaric acid were 81.92% and 72.41% in Luria-Bertani solution, respectively, and B55 was identified as Bacillus subtilis. B55 had plant growth-promoting attributes, including solubilization of inorganic phosphate and production of siderophore and indole acetic acid. Both ferulic acid and p-coumaric acid significantly restrained an increase in cucumber seedling dry biomass, while the B55 inoculation not only completely counteracted the damage of phenolic acids to cucumber seedlings and decreased the content of ferulic acid and p-coumaric acid in soil, but also promoted cucumber seedlings growth. Amplicon sequencing found that B55 inoculation changed the cucumber rhizosphere bacterial community structure and promoted the enrichment of certain bacteria, such as Pseudomonas, Arthrobacter, Bacillus, Flavobacterium, Streptomyces, and Comamonas. CONCLUSIONS: B55 not only promoted cucumber seedling growth, and decreased the content of ferulic acid and p-coumaric acid in soil, but it also increased the relative abundance of beneficial microorganisms in the cucumber rhizosphere.


Subject(s)
Bacillus subtilis , Coumaric Acids , Cucumis sativus , Propionates , Rhizosphere , Seedlings , Soil Microbiology , Coumaric Acids/metabolism , Cucumis sativus/microbiology , Cucumis sativus/metabolism , Cucumis sativus/growth & development , Bacillus subtilis/metabolism , Bacillus subtilis/growth & development , Seedlings/microbiology , Seedlings/growth & development , Seedlings/metabolism , Propionates/metabolism , Bacteria/metabolism , Bacteria/genetics , Bacteria/classification , Bacteria/isolation & purification , Plant Roots/microbiology , Plant Roots/metabolism , Microbiota , Hydroxybenzoates/metabolism , Soil/chemistry
5.
Int J Mol Sci ; 25(17)2024 Aug 28.
Article in English | MEDLINE | ID: mdl-39273254

ABSTRACT

The fruit surface is a critical first line of defense against environmental stress. Overlaying the fruit epidermis is the cuticle, comprising a matrix of cutin monomers and waxes that provides protection and mechanical support throughout development. The epidermal layer of the cucumber (Cucumis sativus L.) fruit also contains prominent lipid droplets, which have recently been recognized as dynamic organelles involved in lipid storage and metabolism, stress response, and the accumulation of specialized metabolites. Our objective was to genetically characterize natural variations for traits associated with the cuticle and lipid droplets in cucumber fruit. Phenotypic characterization and genome-wide association studies (GWAS) were performed using a resequenced cucumber core collection accounting for >96% of the allelic diversity present in the U.S. National Plant Germplasm System collection. The collection was grown in the field, and fruit were harvested at 16-20 days post-anthesis, an age when the cuticle thickness and the number and size of lipid droplets have stabilized. Fresh fruit tissue sections were prepared to measure cuticle thickness and lipid droplet size and number. The collection showed extensive variation for the measured traits. GWAS identified several QTLs corresponding with genes previously implicated in cuticle or lipid biosynthesis, including the transcription factor SHINE1/WIN1, as well as suggesting new candidate genes, including a potential lipid-transfer domain containing protein found in association with isolated lipid droplets.


Subject(s)
Cucumis sativus , Fruit , Genome-Wide Association Study , Lipid Droplets , Quantitative Trait Loci , Cucumis sativus/genetics , Cucumis sativus/metabolism , Cucumis sativus/growth & development , Fruit/genetics , Fruit/metabolism , Lipid Droplets/metabolism , Phenotype , Polymorphism, Single Nucleotide , Plant Proteins/genetics , Plant Proteins/metabolism , Plant Epidermis/genetics , Plant Epidermis/metabolism
6.
Plant Sci ; 348: 112229, 2024 Nov.
Article in English | MEDLINE | ID: mdl-39151803

ABSTRACT

Nickel phytotoxicity has been attributed, among others, to oxidative stress. However, little is known about Ni-induced phospholipid modifications, including the oxidative ones. Accumulation of reactive oxygen species (ROS), antioxidative enzyme activities, malondialdehyde and the early lipid oxidation products contents, membrane permeability, phospholipid profile as well as phospholipid unsaturation degree were studied in the 1st and the 2nd leaves of hydroponically grown cucumber seedlings subjected to Ni stress. Compared to the 2nd leaf the 1st one showed stronger visual Ni toxicity symptoms, higher Ni, O2.- and H2O2 accumulation as well as greater enhancement in membrane permeability. Enzyme activities were differently influenced by Ni stress, however most pronounced changes were generally found in the 1st leaf. Ni treatment resulted in oxidation of leaf lipids, which was evidenced by appearance of increased contents of MDA and the early produced oxylipins. Among the latter 9-hydroxyoctadecatrienoic acid (9-HOTrE) and 13-hydroxyoctadecatrienoic acid (13-HOTrE) contents showed the most pronounced increase in response to Ni treatment. Exposure to the metal led to the changes in the leaf phospholipid profile and increased degree of phospholipid unsaturation. The obtained results have been discussed in relation to the difference in Ni stress severity between the 1st and the 2nd leaves.


Subject(s)
Cucumis sativus , Nickel , Oxidative Stress , Phospholipids , Plant Leaves , Plant Leaves/metabolism , Plant Leaves/drug effects , Nickel/toxicity , Nickel/metabolism , Phospholipids/metabolism , Oxidative Stress/drug effects , Cucumis sativus/metabolism , Cucumis sativus/drug effects , Cucumis sativus/growth & development , Cucumis sativus/physiology , Reactive Oxygen Species/metabolism , Malondialdehyde/metabolism , Hydrogen Peroxide/metabolism , Lipid Peroxidation/drug effects , Seedlings/drug effects , Seedlings/metabolism , Seedlings/growth & development , Antioxidants/metabolism
7.
BMC Plant Biol ; 24(1): 812, 2024 Aug 29.
Article in English | MEDLINE | ID: mdl-39198785

ABSTRACT

BACKGROUND: The yield of major crops is generally limited by sink capacity and source strength. Cucumber is a typical raffinose family oligosaccharides (RFOs)-transporting crop. Non-coding RNAs and alternative polyadenylation (APA) play important roles in the regulation of growth process in plants. However, their roles on the sink‒source regulation have not been demonstrated in RFOs-translocating species. RESULTS: Here, whole-transcriptome sequencing was applied to compare the leaves of cucumber under different sink strength, that is, no fruit-carrying leaves (NFNLs) and fruit-carrying leaves (FNLs) at 12th node from the bottom. The results show that 1101 differentially expressed (DE) mRNAs, 79 DE long non-coding RNAs (lncRNAs) and 23 DE miRNAs were identified, which were enriched in photosynthesis, energy production and conversion, plant hormone signal transduction, starch and carbohydrate metabolism and protein synthesis pathways. Potential co-expression networks like, DE lncRNAs-DE mRNAs/ DE miRNAs-DE mRNAs, and competing endogenous RNA (ceRNA) regulation models (DE lncRNAs-DE miRNAs-DE mRNAs) associated with sink‒source allocation, were constructed. Furthermore, 37 and 48 DE genes, which enriched in MAPK signaling and plant hormone signal transduction pathway, exist differentially APA, and SPS (CsaV3_2G033300), GBSS1 (CsaV3_5G001560), ERS1 (CsaV3_7G029600), PNO1 (CsaV3_3G003950) and Myb (CsaV3_3G022290) may be regulated by both ncRNAs and APA between FNLs and NFNLs, speculating that ncRNAs and APA are involved in the regulation of gene expression of cucumber sink‒source carbon partitioning. CONCLUSIONS: These results reveal a comprehensive network among mRNAs, ncRNAs, and APA in cucumber sink-source relationships. Our findings also provide valuable information for further research on the molecular mechanism of ncRNA and APA to enhance cucumber yield.


Subject(s)
Cucumis sativus , Gene Expression Regulation, Plant , Plant Leaves , Polyadenylation , Cucumis sativus/genetics , Cucumis sativus/metabolism , Cucumis sativus/growth & development , Plant Leaves/genetics , Plant Leaves/metabolism , RNA, Long Noncoding/genetics , RNA, Long Noncoding/metabolism , RNA, Plant/genetics , RNA, Plant/metabolism , RNA, Messenger/genetics , RNA, Messenger/metabolism , MicroRNAs/genetics , MicroRNAs/metabolism , Gene Expression Profiling , Transcriptome
8.
ACS Nano ; 18(34): 23154-23167, 2024 Aug 27.
Article in English | MEDLINE | ID: mdl-39140713

ABSTRACT

Efficient delivery of nanoparticles (NPs) to plants is important for agricultural application. However, to date, we still lack knowledge about how NPs' charge matters for its translocation pathway, i.e., symplastic and apoplastic pathways, in plants. In this study, we synthesized and used negatively charged citrate sourced carbon dots (C-CDs, -37.97 ± 1.89 mV), Cy5 coated C-CDs (Cy5-C-CDs, -41.90 ± 2.55 mV), positively charged PEI coated carbon dots (P-CDs, +43.03 ± 1.71 mV), and Cy5 coated P-CDs (Cy5-P-CDs, +48.80 ± 1.21 mV) to investigate the role of surface charges and coatings on the employed translocation pathways (symplastic and apoplastic pathways) of charged NPs in plants. Our results showed that, different from the higher fluorescence intensity of P-CDs and Cy5-P-CDs in extracellular than intracellular space, the fluorescence intensity of C-CDs and Cy5-C-CDs was similar between intracellular and extracellular space in cucumber and cotton roots. It suggests that the negatively charged CDs were translocated via both symplastic and apoplastic pathways, but the positively charged CDs were mainly translocated via the apoplastic pathway. Furthermore, our results showed that root applied negatively charged C-CDs demonstrated higher leaf fluorescence than did positively charged P-CDs in both cucumber (8.09 ± 0.99 vs 3.75 ± 0.23) and cotton (7.27 ± 1.06 vs 3.23 ± 0.22), indicating that negatively charged CDs have a higher translocation efficiency from root to leaf than do positively charged CDs. It should be noted that CDs do not affect root cell activities, ROS level, and photosynthetic performance in cucumber and cotton, showing its good biocompatibility. Overall, this study not only figured out that root applied negatively charged CDs employed both symplastic and apoplastic pathways to do the transportation in roots compared with mainly the employment of apoplastic pathway for positively charge CDs, but also found that negatively charge CDs could be more efficiently translocated from root to leaf than positively charged CDs, indicating that imparting negative charge to NPs, at least CDs, matters for its efficient delivery in crops.


Subject(s)
Carbon , Plant Roots , Quantum Dots , Carbon/chemistry , Carbon/metabolism , Quantum Dots/chemistry , Quantum Dots/metabolism , Plant Roots/metabolism , Plant Roots/chemistry , Cucumis sativus/metabolism , Carbocyanines/chemistry
9.
Plant Physiol Biochem ; 215: 109055, 2024 Oct.
Article in English | MEDLINE | ID: mdl-39182426

ABSTRACT

Low temperature (LT) is an important environmental factor affecting the growth and yield of plants. Melatonin (MT) can effectively enhance the LT tolerance of cucumber. This study found that LT stress induced the expression of Comt1 (caffeic acid O-methyltransferase 1), with the highest expression being about 2-times that of the control. Meanwhile, the content of MT was found to be roughly 63.16% of that in the control samples. Compared with LT treatment alone, exogenous MT pretreatment upregulated the expression levels of TOR (Target of rapamycin), PIN1 (Pin-formed 1), and YUC4 (YUCCA 4), with maximum upregulations reaching approximately 66.67%, 79.32%, and 42.86%, respectively. These results suggest that MT may modulate the tolerance of cucumber seedlings to LT stress by regulating the expression of TOR, PIN1, and YUC4. In addition, co-treatment with AZD-8055 (a TOR inhibitor) or NPA (N-1-naphthylphthalamic acid, an auxin polar transport inhibitor) and MT attenuated MT-induced resistance to LT stress, leading to higher levels of reactive oxygen species (ROS), reduced antioxidant defense capacity, and increased damage to the membrane system in cucumber seedlings. Concurrently, the content of osmoregulatory substances and the photosynthesis decreased. These results demonstrate that both TOR and auxin were required for MT to alleviate LT-induced damage in cucumber. In summary, the present study demonstrates that TOR and auxin signaling synergistically contribute to alleviating LT damage in cucumber seedlings by exogenous MT. These findings help us understand the function of MT and provide insights into the regulatory network of MT that regulates the LT tolerance of plants.


Subject(s)
Cucumis sativus , Indoleacetic Acids , Melatonin , Seedlings , Cucumis sativus/drug effects , Cucumis sativus/metabolism , Cucumis sativus/growth & development , Melatonin/pharmacology , Melatonin/metabolism , Seedlings/drug effects , Seedlings/metabolism , Indoleacetic Acids/metabolism , Cold Temperature , Plant Proteins/metabolism , Plant Proteins/genetics , TOR Serine-Threonine Kinases/metabolism , Gene Expression Regulation, Plant/drug effects , Reactive Oxygen Species/metabolism
10.
Physiol Plant ; 176(4): e14422, 2024.
Article in English | MEDLINE | ID: mdl-38962815

ABSTRACT

Low temperatures pose a common challenge in the production of cucumbers and tomatoes, hindering plant growth and, in severe cases, leading to plant death. In our investigation, we observed a substantial improvement in the growth of cucumber and tomato seedlings through the application of corn steep liquor (CSL), myo-inositol (MI), and their combinations. When subjected to low-temperature stress, these treatments resulted in heightened levels of photosynthetic pigments, thereby fostering enhanced photosynthesis in both tomato and cucumber plants. Furthermore, it contributed to a decrease in malondialdehyde (MDA) levels and electrolyte leakage (REP). The effectiveness of the treatment was further validated through the analysis of key gene expressions (CBF1, COR, MIOX4, and MIPS1) in cucumber. Particularly, noteworthy positive outcomes were noted in the treatment involving 0.6 mL L-1 CSL combined with 72 mg L-1 MI. This study provides valuable technical insights into leveraging the synergistic effects of inositol and maize leachate to promote early crop growth and bolster resistance to low temperatures.


Subject(s)
Cold Temperature , Cucumis sativus , Inositol , Seedlings , Solanum lycopersicum , Zea mays , Inositol/metabolism , Zea mays/growth & development , Zea mays/metabolism , Zea mays/genetics , Zea mays/physiology , Seedlings/growth & development , Seedlings/genetics , Solanum lycopersicum/growth & development , Solanum lycopersicum/genetics , Solanum lycopersicum/metabolism , Solanum lycopersicum/physiology , Cucumis sativus/growth & development , Cucumis sativus/metabolism , Cucumis sativus/genetics , Cucumis sativus/physiology , Photosynthesis/drug effects , Malondialdehyde/metabolism , Gene Expression Regulation, Plant/drug effects
11.
J Agric Food Chem ; 72(28): 15586-15600, 2024 Jul 17.
Article in English | MEDLINE | ID: mdl-38949485

ABSTRACT

Multiprotein bridging factor 1 (MBF1) is a very important transcription factor (TF) in plants, whose members influence numerous defense responses. Our study found that MBF1c in Cucurbitaceae was highly conserved. CsMBF1c expression was induced by temperature, salt stress, and abscisic acid (ABA) in cucumber. Overexpressed CsMBF1c enhanced the heat resistance of a cucumber, and the Csmbf1c mutant showed decreased resistance to high temperatures (HTs). CsMBF1c played an important role in stabilizing the photosynthetic system of cucumber under HT, and its expression was significantly associated with heat-related TFs and genes related to protein processing in the endoplasmic reticulum (ER). Protein interaction showed that CsMBF1c interacted with dehydration-responsive element binding protein 2 (CsDREB2) and nuclear factor Y A1 (CsNFYA1). Overexpression of CsNFYA1 in Arabidopsis improved the heat resistance. Transcriptional activation of CsNFYA1 was elevated by CsMBF1c. Therefore, CsMBF1c plays an important regulatory role in cucumber's resistance to high temperatures.


Subject(s)
Cucumis sativus , Gene Expression Regulation, Plant , Plant Proteins , Thermotolerance , Transcription Factors , Cucumis sativus/genetics , Cucumis sativus/metabolism , Plant Proteins/genetics , Plant Proteins/metabolism , Thermotolerance/genetics , Transcription Factors/genetics , Transcription Factors/metabolism , Hot Temperature , Arabidopsis/genetics , Arabidopsis/metabolism , Plants, Genetically Modified/genetics , Plants, Genetically Modified/metabolism
12.
J Agric Food Chem ; 72(28): 15633-15642, 2024 Jul 17.
Article in English | MEDLINE | ID: mdl-38950134

ABSTRACT

The residues of acifluorfen present a serious threat to the agricultural environment and sensitive crops. DnrA, a nitroreductase, is an intracellular enzyme that restricts the application of wild-type Bacillus sp. Za in environmental remediation. In this study, two strategies were employed to successfully secrete DnrA in strains SCK6 and Za, and the secretion expression conditions were optimized to achieve rapid degradation of acifluorfen. Under the optimal conditions, the relative activities of the DnrA supernatant from strains SCK6-D and Za-W were 3.06-fold and 3.53-fold higher than that of strain Za, respectively. While all three strains exhibited similar tolerance to different concentrations of acifluorfen, strains SCK6-D and Za-W demonstrated significantly faster degradation efficiency compared to strain Za. Furthermore, the DnrA supernatant from strains SCK6-D and Za-W could effectively reduce the toxicity of acifluorfen on maize and cucumber seedlings. This study provides an effective technical approach for the rapid degradation of acifluorfen.


Subject(s)
Bacillus , Bacterial Proteins , Biodegradation, Environmental , Nitroreductases , Zea mays , Bacillus/enzymology , Bacillus/metabolism , Bacillus/genetics , Nitroreductases/metabolism , Bacterial Proteins/metabolism , Bacterial Proteins/genetics , Bacterial Proteins/chemistry , Zea mays/metabolism , Zea mays/microbiology , Cucumis sativus/microbiology , Cucumis sativus/metabolism , Soil Pollutants/metabolism , Soil Pollutants/chemistry
13.
Planta ; 260(2): 53, 2024 Jul 15.
Article in English | MEDLINE | ID: mdl-39009858

ABSTRACT

MAIN CONCLUSION: NH4+ is necessary for full functionality of reduction-based Fe deficiency response in plants. Nitrogen (N) is present in soil mainly as nitrate (NO3-) or ammonium (NH4+). Although the significance of a balanced supply of NO3- and NH4+ for optimal growth has been generally accepted, its importance for iron (Fe) acquisition has not been sufficiently investigated. In this work, hydroponically grown cucumber (Cucumis sativus L. cv. Maximus) plants were supplied with NO3- as the sole N source under -Fe conditions. Upon the appearance of chlorosis, plants were supplemented with 2 mM NH4Cl by roots or leaves. The NH4+ treatment increased leaf SPAD and the HCl-extractable Fe concentration while decreased root apoplastic Fe. A concomitant increase in the root concentration of nitric oxide and activity of FRO and its abolishment by an ethylene action inhibitor, indicated activation of the components of Strategy I in NH4+-treated plants. Ammonium-pretreated plants showed higher utilization capacity of sparingly soluble Fe(OH)3 and higher root release of H+, phenolics, and organic acids. The expression of the master regulator of Fe deficiency response (FIT) and its downstream genes (AHA1, FRO2, and IRT1) along with EIN3 and STOP1 was increased by NH4+ application. Temporal analyses and the employment of a split-root system enabled us to suggest that a permanent presence of NH4+ at concentrations lower than 2 mM is adequate to produce an unknown signal and causes a sustained upregulation of Fe deficiency-related genes, thus augmenting the Fe-acquisition machinery. The results indicate that NH4+ appears to be a widespread and previously underappreciated component of plant reduction-based Fe deficiency response.


Subject(s)
Ammonium Compounds , Cucumis sativus , Gene Expression Regulation, Plant , Iron , Plant Roots , Cucumis sativus/genetics , Cucumis sativus/metabolism , Cucumis sativus/physiology , Ammonium Compounds/metabolism , Plant Roots/genetics , Plant Roots/metabolism , Iron/metabolism , Gene Expression Regulation, Plant/drug effects , Signal Transduction , Iron Deficiencies , Plant Leaves/metabolism , Plant Leaves/genetics , Plant Leaves/drug effects , Nitrates/metabolism , Nitrates/pharmacology , Nitric Oxide/metabolism , Plant Proteins/genetics , Plant Proteins/metabolism , Nitrogen/metabolism
14.
Genes (Basel) ; 15(7)2024 Jun 21.
Article in English | MEDLINE | ID: mdl-39062604

ABSTRACT

Yellowing leaves are ideal materials for studying the metabolic pathways of photosynthetic pigment chloroplast development, and the mechanism of photosynthetic systems. Here, we obtained a triploid material HCC (2n = 3x = 26), which was derived from hybridization between the artificial tetraploid Cucumis × hytivus (2n = 4x = 38, HHCC) and the cultivated cucumber Cucumis sativus (2n = 2x = 14, CC), and this triploid HCC showed obvious leaf yellowing characteristics. Phenotypic observation results showed that chloroplast development was impaired, the chlorophyll content decreased, and photosynthesis decreased in yellowing HCC leaves. The transcriptome results indicated that HCC-GLK is significantly downregulated in HCC and participates in the regulation of leaf yellowing. GO enrichment analysis revealed that differential genes were enriched in the heme binding and tetrapyrrole binding pathways related to leaf color. KEGG enrichment analysis revealed that differential genes were predominantly enriched in photosynthesis-related pathways. The experimental results of VIGS and yeast hybridization showed that silencing the GLK gene can induce leaf yellowing in cucumber plants, and the GLK protein can affect plant chloroplast development by interacting with the CAB3C protein (light-harvesting chlorophyll a/b binding) in the plant chlorophyll synthesis pathway. The current findings have not only enhanced our understanding of the regulatory mechanism of the GLK transcription factor in cucumber but also introduced novel insights and directions for investigating the molecular mechanism underlying polyploid leaf yellowing.


Subject(s)
Cucumis sativus , Gene Expression Regulation, Plant , Plant Leaves , Plant Proteins , Transcriptome , Cucumis sativus/genetics , Cucumis sativus/metabolism , Plant Leaves/genetics , Plant Leaves/metabolism , Transcriptome/genetics , Plant Proteins/genetics , Plant Proteins/metabolism , Chloroplasts/genetics , Chloroplasts/metabolism , Photosynthesis/genetics , Chlorophyll/metabolism , Chlorophyll/genetics , Gene Expression Profiling/methods
15.
Article in English | MEDLINE | ID: mdl-39038065

ABSTRACT

The present study was undertaken to understand the dissipation behaviour/kinetics of fluoxapiprolin and its metabolites in cucumber and tomato under field conditions. A QuEChERS based extraction method followed by liquid chromatography coupled to mass spectrometry (LC-MS/MS) analysis showed that all method validation parameters were within the acceptable range as per international standards with a limit of quantitation (LOQ) of 0.01 mg kg-1 for all analytes. As significant matrix effects were observed with a few metabolites, matrix matched standards were used for the whole study. Residues of fluoxapiprolin in cucumber at standard dose were steady from 0 to 3 day after application and were below LOQ on the 5th day after application. In cucumber fruit at double dose and in tomato at both the doses the residues followed second-order kinetics and were respectively ≤ LOQ from days 7 and 14 onwards. Pre-harvest intervals (PHI) of 5 days and 14 days are proposed for cucumber and tomato fruits respectively. All the metabolites were ≤ LOQ from day 0 in all the matrices. The consumer risk, assessed as Hazard Quotient (HQ), showed that HQ was ≤1 in all the cases. The results of the present study and earlier studies on other similar fungicides suggest that the use of fluoxapiprolin in cucumber and tomato fruits may not pose health or environmental hazards provided that good agricultural practices are followed and the proposed waiting period is observed. The data from the present study can be used by regulatory bodies in establishing maximum residue limits.


Subject(s)
Cucumis sativus , Food Contamination , Pesticide Residues , Solanum lycopersicum , Tandem Mass Spectrometry , Cucumis sativus/chemistry , Cucumis sativus/metabolism , Solanum lycopersicum/chemistry , Pesticide Residues/analysis , Risk Assessment , Food Contamination/analysis , Chromatography, Liquid , Humans , Fruit/chemistry , Fungicides, Industrial/analysis , Benzamides , Pyridines
16.
Biochim Biophys Acta Bioenerg ; 1865(4): 149490, 2024 11 01.
Article in English | MEDLINE | ID: mdl-38960078

ABSTRACT

Photosystem I (PSI) is an essential protein complex for oxygenic photosynthesis and is also known to be an important source of reactive oxygen species (ROS) in the light. When ROS are generated within PSI, the photosystem can be damaged. The so-called PSI photoinhibition is a lethal event for oxygenic phototrophs, and it is prevented by keeping the reaction center chlorophyll (P700) oxidized in excess light conditions. Whereas regulatory mechanisms for controlling P700 oxidation have been discovered already, the molecular mechanism of PSI photoinhibition is still unclear. Here, we characterized the damage mechanism of PSI photoinhibition by in vitro transient absorption and electron paramagnetic resonance (EPR) spectroscopy in isolated PSI from cucumber leaves that had been subjected to photoinhibition treatment. Photodamage to PSI was induced by two different light treatments: 1. continuous illumination with high light at low (chilling) temperature (C/LT) and 2. repetitive flashes at room temperature (F/RT). These samples were compared to samples that had been illuminated with high light at room temperature (C/RT). The [FeS] clusters FX and (FA FB) were destructed in C/LT but not in F/RT. Transient absorption spectroscopy indicated that half of the charge separation was impaired in F/RT, however, low-temperature EPR revealed the light-induced FX signal at a similar size as in the case of C/RT. This indicates that the two branches of electron transfer in PSI were affected differently. Electron transfer at the A-branch was inhibited in F/RT and also partially in C/LT, while the B-branch remained active.


Subject(s)
Cucumis sativus , Light , Oxidation-Reduction , Photosystem I Protein Complex , Plant Leaves , Photosystem I Protein Complex/metabolism , Cucumis sativus/metabolism , Cucumis sativus/radiation effects , Plant Leaves/metabolism , Plant Leaves/radiation effects , Cold Temperature , Electron Spin Resonance Spectroscopy , Oxidative Stress/radiation effects , Reactive Oxygen Species/metabolism , Chlorophyll/metabolism
17.
Plant Physiol Biochem ; 214: 108962, 2024 Sep.
Article in English | MEDLINE | ID: mdl-39067105

ABSTRACT

Melatonin (Mel) is recognized as a prominent plant growth regulator. This study investigated the alleviating effect of Mel pretreatment on growth inhibition caused by low-temperature (LT) stress (10 °C/6 °C) in cucumber seedlings and explored the role of the Ca2+/Calcium-dependent protein kinases (CPKs) signaling pathway in Mel-regulated LT tolerance. The main results are as follows: compared to LT treatment alone, 100 µM Mel increased both the content of Ca2+ (highest about 42.01%) and the expression levels of Ca2+ transporter and cyclic nucleotide-gated channel (CNGC) genes under LT. Similarly, Mel enhanced the content of CPKs (highest about 27.49%) and the expression levels of CPKs family genes in cucumber leaves under LT. Additionally, pretreatment with 100 µM Mel for three days strengthened the antioxidant defense and photosynthesis of seedlings under LT. Genes in the ICE-CBF-COR pathway and the MAPK cascade were upregulated by Mel, with maximum upregulations reaching approximately 2.5-fold and 1.9-fold, respectively, thus conferring LT tolerance to cucumber seedlings. However, the above beneficial effects of Mel were weakened by co-treatment with calcium signaling blockers (LaCl3 or EGTA) or CPKs inhibitors (TFP or W-7), suggesting that the Ca2+/CPKs pathway is involved in the Mel-mediated regulation of LT tolerance. In conclusion, this study revealed that Mel can alleviate growth inhibition in cucumber seedlings under LT stress and demonstrated that the Ca2+/CPKs signaling pathway is crucial for the Mel-mediated enhancement of LT tolerance. The findings hold promise for providing theoretical insights into the application of Mel in agricultural production and for investigating its underlying mechanisms of action.


Subject(s)
Cold Temperature , Cucumis sativus , Melatonin , Plant Proteins , Seedlings , Signal Transduction , Cucumis sativus/drug effects , Cucumis sativus/genetics , Cucumis sativus/metabolism , Cucumis sativus/growth & development , Melatonin/pharmacology , Seedlings/drug effects , Seedlings/growth & development , Seedlings/metabolism , Signal Transduction/drug effects , Plant Proteins/metabolism , Plant Proteins/genetics , Calcium/metabolism , Gene Expression Regulation, Plant/drug effects , Protein Kinases/metabolism , Protein Kinases/genetics , Photosynthesis/drug effects
18.
Sci Rep ; 14(1): 15883, 2024 07 10.
Article in English | MEDLINE | ID: mdl-38987579

ABSTRACT

Salinity stress poses a significant treat to crop yields and product quality worldwide. Application of a humic acid bio stimulant and grafting onto tolerant rootstocks can both be considered sustainable agronomic practices that can effectively ameliorate the negative effects of salinity stress. This study aimed to assess the above mentioned ameliorative effects of both practices on cucumber plants subjected to saline environments. To attain this goal a factorial experiment was carried out in the form of a completely randomized design with three replications. The three factors considered were (a) three different salinity levels (0, 5, and 10 dS m-1 of NaCl), (b) foliar application of humic acid at three levels (0, 100, and 200 mg L-1), and (c) both grafted and ungrafted plants. Vegetative traits including plant height, fresh and dry weight and number of leaf exhibited a significant decrease under increasing salinity stress. However, the application of humic acid at both levels mitigated these effects compared to control plants. The reduction in relative water content (RWC) of the leaf caused by salinity, was compensated by the application of humic acid and grafting. Thus, the highest RWC (86.65%) was observed in grafting plants with 0 dS m-1 of NaCl and 20 mg L-1 of humic acid. Electrolyte leakage (EL) increased under salinity stress, but the application of humic acid and grafting improved this trait and the lowest amount of EL (26.95%) was in grafting plants with 0 dS m-1 of NaCl and 20 mg L-1 of humic acid. The highest amount of catalase (0.53 mmol H2O2 g-1 fw min-1) and peroxidase (12.290 mmol H2O2 g-1 fw min-1) enzymes were observed in the treatment of 10 dS m-1 of NaCl and 200 mg L-1 humic acid. The highest amount of total phenol (1.99 mg g-1 FW), total flavonoid (0.486 mg g-1 FW), total soluble carbohydrate (30.80 mg g-1 FW), soluble protein (34.56 mg g-1 FW), proline (3.86 µg g-1 FW) was in grafting plants with 0 dS m-1 of NaCl and 200 mg L-1 of humic acid. Phenolic acids and phenylalanine ammonia lyase (PAL) and polyphenol oxidase (PPO) enzymes increased with increasing salinity and humic acid levels. Contrary to humic acid, salt stress increased the sodium (Na+) and chlorine (Cl-) and decreased the amount of potassium (K+) and calcium (Ca2+) in the root and leaf of ungrafted cucumber. However, the application 200 mg L-1 humic acid appeared to mitigate these effects, thereby suggesting a potential role in moderating physiological processes and improving growth of cucumber plants subjected to salinity stress. According to the obtained results, spraying of humic acid (200 mg L-1) and the use of salt resistant rootstocks are recommended to increase tolerance to salt stress in cucumber. These results, for the first time, clearly demonstrated that fig leaf gourd a new highly salt-tolerant rootstock, enhances salt tolerance and improves yield and quality of grafted cucumber plants by reducing sodium transport to the shoot and increasing the amount of compatible osmolytes.


Subject(s)
Cucumis sativus , Humic Substances , Salt Stress , Cucumis sativus/growth & development , Cucumis sativus/drug effects , Cucumis sativus/metabolism , Plant Leaves/metabolism , Plant Leaves/drug effects , Plant Leaves/growth & development , Salinity , Agriculture/methods , Plant Roots/growth & development , Plant Roots/drug effects , Plant Roots/metabolism
19.
Plant Physiol Biochem ; 214: 108878, 2024 Sep.
Article in English | MEDLINE | ID: mdl-38968841

ABSTRACT

In this paper, we discussed the physiological mechanism of enhanced chilling tolerance with combined treatment of nitric oxide (NO) and reduced glutathione (GSH) in cucumber seedlings. With prolonged low temperature (10 °C/6 °C), oxidative stress improved, which was manifested as an increase the hydrogen peroxide (H2O2) and malondialdehyde (MDA), causing cell membrane damage, particularly after 48 h of chilling stress. Exogenous sodium nitroprusside (SNP, NO donor) enhanced the activity of nitric oxide synthase NOS-like, the contents of GSH and polyamines (PAs), and the cellular redox state, thus regulating the activities of mitochondrial oxidative phosphorylation components (CI, CII, CIV, CV). However, buthionine sulfoximine (BSO, a GSH synthase inhibitor) treatment drastically reversed or attenuated the effects of NO. Importantly, the combination of SNP and GSH treatment had the best effect in alleviating chilling-induced oxidative stress by upregulating the activities of antioxidant enzyme, including superoxidase dismutase (SOD), catalase (CAT), ascorbate peroxidase (APX) and peroxidase (POD) and improved the PAs content, thereby increased activities of CI, CII, CIII, CIV, and CV. This potentially contributes to the maintenance of oxidative phosphorylation originating from mitochondria. In addition, the high activity of S-nitrosoglutathione reductase (GSNOR) in the combined treatment of SNP and GSH possibly mediates the conversion of NO and GSH to S-nitrosoglutathione. Our study revealed that the combined treatment with NO and GSH to synergistically improve the cold tolerance of cucumber seedlings under prolonged low-temperature stress.


Subject(s)
Antioxidants , Cold Temperature , Cucumis sativus , Glutathione , Mitochondria , Nitric Oxide , Polyamines , Cucumis sativus/metabolism , Cucumis sativus/drug effects , Cucumis sativus/physiology , Nitric Oxide/metabolism , Mitochondria/metabolism , Mitochondria/drug effects , Polyamines/metabolism , Antioxidants/metabolism , Glutathione/metabolism , Oxidative Stress/drug effects , Hydrogen Peroxide/metabolism , Seedlings/drug effects , Seedlings/metabolism
20.
Plant Physiol Biochem ; 214: 108915, 2024 Sep.
Article in English | MEDLINE | ID: mdl-38972240

ABSTRACT

Copper (Cu) toxicity in crops is a result of excessive release of Cu into environment. Little is known about mitigation of Cu toxicity through the application of carbon-based nanomaterials including water-soluble fullerene C60 derivatives. Two derivatives of fullerene were examined: polyhydroxylated C60 (fullerenol) and arginine C60 derivative. In order to study the response of Cu-stressed plants (Cucumis sativus L.) to these nanomaterials, metabolomics analysis by gas chromatography-mass spectrometry (GC-MS) was performed. Excess Cu (15 µM) caused substantial increase in xylem sap Cu, retarded dry biomass and leaf chlorosis of hydroponically grown cucumber. In Cu-stressed leaves, metabolomes was disturbed towards suppression metabolism of nitrogen (N) compounds and activation metabolism of hexoses. Also, upregulation of some metabolites involving in antioxidant defense system, such as ascorbic acid, tocopherol and ferulic acid, was occurred in Cu-stressed leaves. Hydroponically added fullerene adducts decreased the xylem sap Cu and alleviated Cu toxicity with effectiveness has been most pronounced for arginine C60 derivative. Metabolic responses of plants subjected to high Cu with fullerene derivatives were opposite to that observed under Cu alone. Fatty acids up-regulation (linolenic acid) and antioxidant molecules (tocopherol) down-regulation might indicate that arginine C60 adduct can alleviate Cu induced oxidative stress. Although fullerenol slightly improved cucumber growth, its effect on metabolic state of Cu-stressed plants was not statistically significant. We suggest that tested fullerene C60 adducts have a potential to prevent Cu toxicity in plants through a mechanism associated with their capability to restrict xylem transport of Cu from roots to shoot, and to maintain antioxidative properties of plants.


Subject(s)
Copper , Cucumis sativus , Fullerenes , Fullerenes/pharmacology , Fullerenes/metabolism , Cucumis sativus/drug effects , Cucumis sativus/metabolism , Cucumis sativus/growth & development , Copper/toxicity , Copper/metabolism , Plant Leaves/metabolism , Plant Leaves/drug effects , Metabolome/drug effects , Oxidative Stress/drug effects , Antioxidants/metabolism
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