Your browser doesn't support javascript.
loading
Show: 20 | 50 | 100
Results 1 - 20 de 11.544
Filter
1.
Sci Rep ; 14(1): 12854, 2024 06 04.
Article in English | MEDLINE | ID: mdl-38834735

ABSTRACT

Salinity stress significantly impacts crops, disrupting their water balance and nutrient uptake, reducing growth, yield, and overall plant health. High salinity in soil can adversely affect plants by disrupting their water balance. Excessive salt levels can lead to dehydration, hinder nutrient absorption, and damage plant cells, ultimately impairing growth and reducing crop yields. Gallic acid (GA) and zinc ferrite (ZnFNP) can effectively overcome this problem. GA can promote root growth, boost photosynthesis, and help plants absorb nutrients efficiently. However, their combined application as an amendment against drought still needs scientific justification. Zinc ferrite nanoparticles possess many beneficial properties for soil remediation and medical applications. That's why the current study used a combination of GA and ZnFNP as amendments to wheat. There were 4 treatments, i.e., 0, 10 µM GA, 15 µM GA, and 20 µM GA, without and with 5 µM ZnFNP applied in 4 replications following a completely randomized design. Results exhibited that 20 µM GA + 5 µM ZnFNP caused significant improvement in wheat shoot length (28.62%), shoot fresh weight (16.52%), shoot dry weight (11.38%), root length (3.64%), root fresh weight (14.72%), and root dry weight (9.71%) in contrast to the control. Significant enrichment in wheat chlorophyll a (19.76%), chlorophyll b (25.16%), total chlorophyll (21.35%), photosynthetic rate (12.72%), transpiration rate (10.09%), and stomatal conductance (15.25%) over the control validate the potential of 20 µM GA + 5 µM ZnFNP. Furthermore, improvement in N, P, and K concentration in grain and shoot verified the effective functioning of 20 µM GA + 5 µM ZnFNP compared to control. In conclusion, 20 µM GA + 5 µM ZnFNP can potentially improve the growth, chlorophyll contents and gas exchange attributes of wheat cultivated in salinity stress. More investigations are suggested to declare 20 µM GA + 5 µM ZnFNP as the best amendment for alleviating salinity stress in different cereal crops.


Subject(s)
Ferric Compounds , Gallic Acid , Salt Stress , Triticum , Triticum/growth & development , Triticum/drug effects , Triticum/metabolism , Gallic Acid/metabolism , Zinc/metabolism , Photosynthesis/drug effects , Nanoparticles/chemistry , Chlorophyll/metabolism , Plant Roots/growth & development , Plant Roots/drug effects , Plant Roots/metabolism , Salinity , Soil/chemistry
2.
Plant Cell Rep ; 43(6): 159, 2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38822842

ABSTRACT

KEY MESSAGE: AcEXPA1, an aluminum (Al)-inducible expansin gene, is demonstrated to be involved in carpetgrass (Axonopus compressus) root elongation under Al toxicity through analyzing composite carpetgrass plants overexpressing AcEXPA1. Aluminum (Al) toxicity is a major mineral toxicity that limits plant productivity in acidic soils by inhibiting root growth. Carpetgrass (Axonopus compressus), a dominant warm-season turfgrass widely grown in acidic tropical soils, exhibits superior adaptability to Al toxicity. However, the mechanisms underlying its Al tolerance are largely unclear, and knowledge of the functional genes involved in Al detoxification in this turfgrass is limited. In this study, phenotypic variation in Al tolerance, as indicated by relative root elongation, was observed among seventeen carpetgrass genotypes. Al-responsive genes related to cell wall modification were identified in the roots of the Al-tolerant genotype 'A58' via transcriptome analysis. Among them, a gene encoding α-expansin was cloned and designated AcEXPA1 for functional characterization. Observed Al dose effects and temporal responses revealed that Al induced AcEXPA1 expression in carpetgrass roots. Subsequently, an efficient and convenient Agrobacterium rhizogenes-mediated transformation method was established to generate composite carpetgrass plants with transgenic hairy roots for investigating AcEXPA1 involvement in carpetgrass root growth under Al toxicity. AcEXPA1 was successfully overexpressed in the transgenic hairy roots, and AcEXPA1 overexpression enhanced Al tolerance in composite carpetgrass plants through a decrease in Al-induced root growth inhibition. Taken together, these findings suggest that AcEXPA1 contributes to Al tolerance in carpetgrass via root growth regulation.


Subject(s)
Aluminum , Gene Expression Regulation, Plant , Plant Proteins , Plant Roots , Plants, Genetically Modified , Aluminum/toxicity , Plant Roots/genetics , Plant Roots/growth & development , Plant Roots/drug effects , Gene Expression Regulation, Plant/drug effects , Plant Proteins/genetics , Plant Proteins/metabolism , Adaptation, Physiological/genetics , Adaptation, Physiological/drug effects , Poaceae/genetics , Poaceae/drug effects
3.
Bull Environ Contam Toxicol ; 112(6): 83, 2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38822863

ABSTRACT

To investigate the toxicological effects of polystyrene microplastics (PS-MPs), cadmium (Cd), and their combined contamination on the growth and physiological responses of V. faba seedlings, this experiment employed a hydroponic method. The Hoagland nutrient solution served as the control, changes in root growth, physiological and biochemical indicators of V. faba seedlings under different concentrations of PS-MPs (10, 100 mg/L) alone and combined with 0.5 mg/L Cd. The results demonstrated that the root biomass, root vitality, generation rate of superoxide radicals (O2·-), malondialdehyde (MDA) content, and superoxide dismutase (SOD) activity increased with increasing concentration under the influence of PS-MPs alone, while the soluble sugar content and peroxidase (POD) activity decreased. In the combined treatment with Cd, the trends of these indicators are generally similar to the PS-MPs alone treatment group. However, root vitality and SOD activity showed an inverse relationship with the concentration of PS-MPs. Furthermore, laser confocal and electron microscopy scanning revealed that the green fluorescent polystyrene microspheres entered the root tips of the V. faba and underwent agglomeration in the treatment group with a low concentration of PS-MPs alone and a high concentration of composite PS-MPs with Cd.


Subject(s)
Cadmium , Microplastics , Seedlings , Superoxide Dismutase , Vicia faba , Vicia faba/drug effects , Vicia faba/growth & development , Seedlings/drug effects , Seedlings/growth & development , Cadmium/toxicity , Microplastics/toxicity , Superoxide Dismutase/metabolism , Malondialdehyde/metabolism , Water Pollutants, Chemical/toxicity , Plant Roots/drug effects , Plant Roots/growth & development
4.
Physiol Plant ; 176(3): e14371, 2024.
Article in English | MEDLINE | ID: mdl-38837414

ABSTRACT

The WRKY transcription factor (TF) genes form a large family in higher plants, with 72 members in Arabidopsis (Arabidopsis thaliana). The gaseous phytohormone ethylene (ET) regulates multiple physiological processes in plants. It is known that 1-aminocyclopropane-1-carboxylic acid (ACC) synthases (ACSs, EC 4.4.1.14) limit the enzymatic reaction rate of ethylene synthesis. However, whether WRKY TFs regulate the expression of ACSs and/or ACC oxidases (ACOs, EC 1.14.17.4) remains largely elusive. Here, we demonstrated that Arabidopsis WRKY22 positively regulated the expression of a few ACS and ACO genes, thus promoting ethylene production. Inducible overexpression of WRKY22 caused shorter hypocotyls without ACC treatment. A qRT-PCR screening demonstrated that overexpression of WRKY22 activates the expression of several ACS and ACO genes. The promoter regions of ACS5, ACS11, and ACO5 were also activated by WRKY22, which was revealed by a dual luciferase reporter assay. A follow-up chromatin immunoprecipitation coupled with quantitative PCR (ChIP-qPCR) and electrophoretic mobility shift assay (EMSA) showed that the promoter regions of ACS5 and ACO5 could be bound by WRKY22 directly. Moreover, wrky22 mutants had longer primary roots and more lateral roots than wild type, while WRKY22-overexpressing lines showed the opposite phenotype. In conclusion, this study revealed that WRKY22 acts as a novel TF activating, at least, the expression of ACS5 and ACO5 to increase ethylene synthesis and modulate root development.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Ethylenes , Gene Expression Regulation, Plant , Lyases , Plant Roots , Transcription Factors , Arabidopsis/genetics , Arabidopsis/growth & development , Arabidopsis/metabolism , Ethylenes/metabolism , Ethylenes/biosynthesis , Transcription Factors/metabolism , Transcription Factors/genetics , Arabidopsis Proteins/genetics , Arabidopsis Proteins/metabolism , Plant Roots/genetics , Plant Roots/growth & development , Plant Roots/metabolism , Lyases/genetics , Lyases/metabolism , Amino Acid Oxidoreductases/genetics , Amino Acid Oxidoreductases/metabolism , Promoter Regions, Genetic/genetics , Carbon-Carbon Lyases/metabolism , Carbon-Carbon Lyases/genetics , Transcriptional Activation/genetics
5.
Nat Commun ; 15(1): 4689, 2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38824148

ABSTRACT

Global warming will lead to significantly increased temperatures on earth. Plants respond to high ambient temperature with altered developmental and growth programs, termed thermomorphogenesis. Here we show that thermomorphogenesis is conserved in Arabidopsis, soybean, and rice and that it is linked to a decrease in the levels of the two macronutrients nitrogen and phosphorus. We also find that low external levels of these nutrients abolish root growth responses to high ambient temperature. We show that in Arabidopsis, this suppression is due to the function of the transcription factor ELONGATED HYPOCOTYL 5 (HY5) and its transcriptional regulation of the transceptor NITRATE TRANSPORTER 1.1 (NRT1.1). Soybean and Rice homologs of these genes are expressed consistently with a conserved role in regulating temperature responses in a nitrogen and phosphorus level dependent manner. Overall, our data show that root thermomorphogenesis is a conserved feature in species of the two major groups of angiosperms, monocots and dicots, that it leads to a reduction of nutrient levels in the plant, and that it is dependent on environmental nitrogen and phosphorus supply, a regulatory process mediated by the HY5-NRT1.1 module.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Gene Expression Regulation, Plant , Glycine max , Nitrogen , Oryza , Phosphorus , Plant Roots , Arabidopsis/genetics , Arabidopsis/growth & development , Arabidopsis/metabolism , Phosphorus/metabolism , Nitrogen/metabolism , Plant Roots/growth & development , Plant Roots/metabolism , Plant Roots/genetics , Oryza/genetics , Oryza/growth & development , Oryza/metabolism , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Glycine max/genetics , Glycine max/growth & development , Glycine max/metabolism , Nutrients/metabolism , Plant Proteins/metabolism , Plant Proteins/genetics , Nuclear Proteins/metabolism , Nuclear Proteins/genetics , Hot Temperature , Nitrate Transporters , Anion Transport Proteins/metabolism , Anion Transport Proteins/genetics , Temperature , Basic-Leucine Zipper Transcription Factors
6.
Environ Microbiol ; 26(6): e16662, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38840258

ABSTRACT

Our study delved into the relationship between root-associated fungi, gene expression and plant morphology in Norway spruce cuttings derived from both slow-and fast-growing trees. We found no clear link between the gene expression patterns of adventitious roots and the growth phenotype, suggesting no fundamental differences in the receptiveness to fungal symbionts between the phenotypes. Interestingly, saplings from slow-growing parental trees exhibited a higher richness of ectomycorrhizal species and larger roots. Some ectomycorrhizal species, typically found on mature spruces, were more prevalent on saplings from slow-growing spruces. The ericoid mycorrhizal fungus, Hyaloscypha hepaticola, showed a stronger association with saplings from fast-growing spruces. Moreover, saplings from slow-growing spruces had a greater number of Ascomycete taxa and free-living saprotrophic fungi. Aboveground sapling stems displayed some phenotypic variation; saplings from fast-growing phenotypes had longer branches but fewer whorls in their stems compared to those from the slow-growing group. In conclusion, the observed root-associated fungi and phenotypic characteristics in young Norway spruces may play a role in their long-term growth rate. This suggests that the early interactions between spruces and fungi could potentially influence their growth trajectory.


Subject(s)
Mycorrhizae , Picea , Plant Roots , Picea/microbiology , Picea/growth & development , Plant Roots/microbiology , Plant Roots/growth & development , Mycorrhizae/genetics , Mycorrhizae/growth & development , Mycorrhizae/physiology , Norway , Symbiosis , Fungi/genetics , Fungi/classification , Fungi/growth & development , Ascomycota/genetics , Ascomycota/growth & development
7.
Curr Microbiol ; 81(7): 207, 2024 Jun 04.
Article in English | MEDLINE | ID: mdl-38831110

ABSTRACT

The current study aimed to evaluate the plant growth-promoting (PGP) potential of endophytic strain Bacillus subtilis KU21 isolated from the roots of Rosmarinus officinalis. The strain exhibited multiple traits of plant growth promotion viz., phosphate (P) solubilization, nitrogen fixation, indole-3-acetic acid (IAA), siderophore, hydrogen cyanide (HCN), lytic enzymes production, and 1-aminocyclopropane-1-carboxylate (ACC) deaminase activity. The isolate also exhibited antagonistic activity against phytopathogenic fungi, i.e., Fusarium oxysporum, Fusarium graminiarum, and Rhizoctonia solani. The P-solubilization activity of B. subtilis KU21 was further elucidated via detection of glucose dehydrogenase (gdh) gene involved in the production of gluconic acid which is responsible for P-solubilization. Further, B. subtilis KU21 was evaluated for in vivo growth promotion studies of tomato (test crop) under net house conditions. A remarkable increase in seed germination, plant growth parameters, nutrient acquisition, and soil quality parameters (NPK) was observed in B. subtilis KU21-treated plants over untreated control. Hence, the proposed module could be recommended for sustainable tomato production in the Northwest Himalayan region without compromising soil health and fertility.


Subject(s)
Bacillus subtilis , Endophytes , Plant Roots , Rosmarinus , Bacillus subtilis/genetics , Bacillus subtilis/growth & development , Bacillus subtilis/isolation & purification , Bacillus subtilis/metabolism , Endophytes/isolation & purification , Endophytes/metabolism , Endophytes/genetics , Endophytes/classification , Rosmarinus/chemistry , Rosmarinus/microbiology , Plant Roots/microbiology , Plant Roots/growth & development , Solanum lycopersicum/microbiology , Solanum lycopersicum/growth & development , Fusarium/growth & development , Fusarium/genetics , Fusarium/metabolism , Soil Microbiology , Plant Development , Germination , Indoleacetic Acids/metabolism , Rhizoctonia/growth & development , Rhizoctonia/drug effects , Nitrogen Fixation , Phosphates/metabolism
8.
World J Microbiol Biotechnol ; 40(8): 234, 2024 Jun 07.
Article in English | MEDLINE | ID: mdl-38844667

ABSTRACT

Bradyrhizobia are the principal symbiotic partner of the leguminous plant and take active part in biological nitrogen-fixation. The present investigation explores the underlying competition among different strains during colonization in host roots. Six distinct GFP and RFP-tagged Bradyrhizobium strains were engineered to track them inside the peanut roots either independently or in combination. The Bradyrhizobium strains require different time-spans ranging from 4 to 21 days post-infection (dpi) for successful colonization which further varies in presence of another strain. While most of the individual strains enhanced the shoot and root dry weight, number of nodules, and nitrogen fixation capabilities of the host plants, no significant enhancement of plant growth and nodulation efficiency was observed when they were allowed to colonize in combinations. However, if among the combinations one strains is SEMIA 6144, the co-infection results in higher growth and nodulation efficiency of the hosts. From the competition experiments it has been found that Bradyrhizobium japonicum SEMIA 6144 was found to be the most dominant strain for effective nodulation in peanut. The extent of biofilm and exopolysaccharide (EPS) production by these isolates, individually or in combinations, were envisaged to correlate whether these parameters have any impact on the symbiotic association. But the extent of colonization, growth-promotion and nitrogen-fixation ability drastically lowered when a strain present together with other Bradyrhizobium strain. Therefore, it is imperative to understand the interaction between two co-inoculating Bradyrhizobium species for nodulation followed by plant growth promotion to develop suitable consortia for enhancing BNF in peanut and possibly for other legumes.


Subject(s)
Arachis , Biofilms , Bradyrhizobium , Nitrogen Fixation , Plant Root Nodulation , Plant Roots , Root Nodules, Plant , Symbiosis , Arachis/microbiology , Arachis/growth & development , Bradyrhizobium/growth & development , Bradyrhizobium/physiology , Plant Roots/microbiology , Plant Roots/growth & development , Root Nodules, Plant/microbiology , Root Nodules, Plant/growth & development , Biofilms/growth & development , Polysaccharides, Bacterial/metabolism , Microbial Interactions , Plant Development
9.
Sci Rep ; 14(1): 12988, 2024 06 06.
Article in English | MEDLINE | ID: mdl-38844823

ABSTRACT

Salinity stress significantly hinders plant growth by disrupting osmotic balance and inhibiting nutrient uptake, leading to reduced biomass and stunted development. Using saponin (SAP) and boron (B) can effectively overcome this issue. Boron decreases salinity stress by stabilizing cell walls and membranes, regulating ion balance, activating antioxidant enzymes, and enhancing water uptake. SAP are bioactive compounds that have the potential to alleviate salinity stress by improving nutrient uptake, modulating plant hormone levels, promoting root growth, and stimulating antioxidant activity. That's why the current study was planned to use a combination of SAP and boron as amendments to mitigate salinity stress in sweet potatoes. Four levels of SAP (0%, 0.1%, 0.15%, and 0.20%) and B (control, 5, 10, and 20 mg/L B) were applied in 4 replications following a completely randomized design. Results illustrated that 0.15% SAP with 20 mg/L B caused significant enhancement in sweet potato vine length (13.12%), vine weight (12.86%), root weight (8.31%), over control under salinity stress. A significant improvement in sweet potato chlorophyll a (9.84%), chlorophyll b (20.20%), total chlorophyll (13.94%), photosynthetic rate (17.69%), transpiration rate (16.03%), and stomatal conductance (17.59%) contrast to control under salinity stress prove the effectiveness of 0.15% SAP + 20 mg/L B treatment. In conclusion, 0.15% SAP + 20 mg/L B is recommended to mitigate salinity stress in sweet potatoes.


Subject(s)
Boron , Ipomoea batatas , Salt Stress , Saponins , Ipomoea batatas/growth & development , Boron/pharmacology , Saponins/pharmacology , Salt Stress/drug effects , Photosynthesis/drug effects , Plant Roots/growth & development , Plant Roots/drug effects , Chlorophyll/metabolism , Drug Synergism , Salinity
10.
Sci Rep ; 14(1): 12907, 2024 06 05.
Article in English | MEDLINE | ID: mdl-38839814

ABSTRACT

Flatbed scanners are commonly used for root analysis, but typical manual segmentation methods are time-consuming and prone to errors, especially in large-scale, multi-plant studies. Furthermore, the complex nature of root structures combined with noisy backgrounds in images complicates automated analysis. Addressing these challenges, this article introduces RhizoNet, a deep learning-based workflow to semantically segment plant root scans. Utilizing a sophisticated Residual U-Net architecture, RhizoNet enhances prediction accuracy and employs a convex hull operation for delineation of the primary root component. Its main objective is to accurately segment root biomass and monitor its growth over time. RhizoNet processes color scans of plants grown in a hydroponic system known as EcoFAB, subjected to specific nutritional treatments. The root detection model using RhizoNet demonstrates strong generalization in the validation tests of all experiments despite variable treatments. The main contributions are the standardization of root segmentation and phenotyping, systematic and accelerated analysis of thousands of images, significantly aiding in the precise assessment of root growth dynamics under varying plant conditions, and offering a path toward self-driving labs.


Subject(s)
Biomass , Plant Roots , Plant Roots/growth & development , Image Processing, Computer-Assisted/methods , Deep Learning
11.
Sci Rep ; 14(1): 12705, 2024 06 03.
Article in English | MEDLINE | ID: mdl-38831025

ABSTRACT

Fifty-nine diverse Brassica juncea (Indian mustard) genotypes were used to find an effective screening method to identify salt tolerance at the germination and seedling stages. Salinity stress limits crop productivity and is difficult to simulate on farms, hindering parental selection for hybridization programmes and the development of tolerant cultivars. To estimate an optimum salt concentration for screening, seeds of 15 genotypes were selected randomly and grown in vitro at 0 mM/L, 75 mM/L, 150 mM/L, 225 mM/L, and 300 mM/L concentrations of NaCl in 2 replications in a complete randomized design. Various morphological parameters, viz., length of seedling, root and shoot length, fresh weight, and dry weight, were observed to determine a single concentration using the Salt Injury Index. Then, this optimum concentration (225 mM/L) was used to assess the salt tolerance of all the 59 genotypes in 4 replications while observing the same morphological parameters. With the help of Mean Membership Function Value evaluation criteria, the genotypes were categorized into 5 grades: 4 highly salt-tolerant (HST), 6 salt-tolerant (ST), 19 moderately salt-tolerant (MST), 21 salt-sensitive (SS), and 9 highly salt-sensitive (HSS). Seedling fresh weight (SFW) at 225 mM/L was found to be an ideal trait, which demonstrates the extent to which B. juncea genotypes respond to saline conditions. This is the first report that establishes a highly efficient and reliable method for evaluating the salinity tolerance of Indian mustard at the seedling stage and will facilitate breeders in the development of salt-tolerant cultivars.


Subject(s)
Genotype , Mustard Plant , Salt Stress , Salt Tolerance , Seedlings , Mustard Plant/genetics , Mustard Plant/growth & development , Mustard Plant/drug effects , Mustard Plant/physiology , Seedlings/growth & development , Seedlings/drug effects , Seedlings/genetics , Salt Tolerance/genetics , Germination/drug effects , Sodium Chloride/pharmacology , Plant Roots/growth & development , Plant Roots/drug effects
12.
BMC Plant Biol ; 24(1): 492, 2024 Jun 03.
Article in English | MEDLINE | ID: mdl-38831289

ABSTRACT

Non-hydraulic root source signaling (nHRS) is a unique positive response to soil drying in the regulation of plant growth and development. However, it is unclear how the nHRS mediates the tradeoff between source and sink at the late growth stages and its adaptive mechanisms in primitive wheat. To address this issue, a root-splitting design was made by inserting solid partition in the middle of the pot culture to induce the occurrence of nHRS using four wheat cultivars (MO1 and MO4, diploid; DM22 and DM31, tetraploid) as materials. Three water treatments were designed as 1) both halves watered (CK), 2) holistic root system watered then droughted (FS), 3) one-half of the root system watered and half droughted (PS). FS and PS were designed to compare the role of the full root system and split root system to induce nHRS. Leaves samples were collected during booting and anthesis to compare the role of nHRS at both growth stages. The data indicated that under PS treatment, ABA concentration was significantly higher than FS and CK, demonstrating the induction of nHRS in split root design and nHRS decreased cytokinin (ZR) levels, particularly in the PS treatment. Soluble sugar and proline accumulation were higher in the anthesis stage as compared to the booting stage. POD activity was higher at anthesis, while CAT was higher at the booting stage. Increased ABA (nHRS) correlated with source-sink relationships and metabolic rate (i.e., leaf) connecting other stress signals. Biomass density showed superior resource acquisition and utilization capabilities in both FS and PS treatment as compared to CK in all plants. Our findings indicate that nHRS-induced alterations in phytohormones and their effect on source-sink relations were allied with the growth stages in primitive wheat.


Subject(s)
Diploidy , Plant Roots , Signal Transduction , Tetraploidy , Triticum , Triticum/genetics , Triticum/growth & development , Triticum/metabolism , Plant Roots/growth & development , Plant Roots/metabolism , Plant Roots/genetics , Plant Shoots/growth & development , Plant Shoots/metabolism , Plant Shoots/genetics , Plant Growth Regulators/metabolism , Abscisic Acid/metabolism , Cytokinins/metabolism , Plant Leaves/growth & development , Plant Leaves/metabolism , Plant Leaves/genetics
13.
BMC Plant Biol ; 24(1): 495, 2024 Jun 03.
Article in English | MEDLINE | ID: mdl-38831411

ABSTRACT

BACKGROUND: Phosphorus (P) and iron (Fe) deficiencies are relevant plants nutritional disorders, prompting responses such as increased root exudation to aid nutrient uptake, albeit at an energy cost. Reacquiring and reusing exudates could represent an efficient energy and nitrogen saving strategy. Hence, we investigated the impact of plant development, Fe and P deficiencies on this process. Tomato seedlings were grown hydroponically for 3 weeks in Control, -Fe, and -P conditions and sampled twice a week. We used Isotope Ratio Mass-Spectrometry to measure δ13C in roots and shoots after a 2-h exposure to 13C-labeled glycine (0, 50, or 500 µmol L-1). Plant physiology was assessed with an InfraRed Gas Analyzer and ionome with an Inductively Coupled Plasma Mass-Spectrometry. RESULTS: Glycine uptake varied with concentration, suggesting an involvement of root transporters with different substrate affinities. The uptake decreased over time, with -Fe and -P showing significantly higher values as compared to the Control. This highlights its importance during germination and in nutrient-deficient plants. Translocation to shoots declined over time in -P and Control but increased in -Fe plants, suggesting a role of Gly in the Fe xylem transport. CONCLUSIONS: Root exudates, i.e. glycine, acquisition and their subsequent shoot translocation depend on Fe and P deficiency. The present findings highlight the importance of this adaptation to nutrient deficiencies, that can potentially enhance plants fitness. A thorough comprehension of this trait holds potential significance for selecting cultivars that can better withstand abiotic stresses.


Subject(s)
Glycine , Phosphorus , Plant Roots , Solanum lycopersicum , Solanum lycopersicum/metabolism , Solanum lycopersicum/growth & development , Glycine/metabolism , Plant Roots/metabolism , Plant Roots/growth & development , Phosphorus/metabolism , Phosphorus/deficiency , Iron Deficiencies , Iron/metabolism , Biological Transport , Seedlings/metabolism , Seedlings/growth & development , Plant Shoots/metabolism , Plant Shoots/growth & development
14.
PLoS One ; 19(5): e0298299, 2024.
Article in English | MEDLINE | ID: mdl-38722945

ABSTRACT

Sunflower is one of the four major oil crops in the world. 'Zaoaidatou' (ZADT), the main variety of oil sunflower in the northwest of China, has a short growth cycle, high yield, and high resistance to abiotic stress. However, the ability to tolerate adervesity is limited. Therefore, in this study, we used the retention line of backbone parent ZADT as material to establish its tissue culture and genetic transformation system for new variety cultivating to enhance resistance and yields by molecular breeding. The combination of 0.05 mg/L IAA and 2 mg/L KT in MS was more suitable for direct induction of adventitious buds with cotyledon nodes and the addition of 0.9 mg/L IBA to MS was for adventitious rooting. On this basis, an efficient Agrobacterium tumefaciens-mediated genetic transformation system for ZADT was developed by the screening of kanamycin and optimization of transformation conditions. The rate of positive seedlings reached 8.0%, as determined by polymerase chain reaction (PCR), under the condition of 45 mg/L kanamycin, bacterial density of OD600 0.8, infection time of 30 min, and co-cultivation of three days. These efficient regeneration and genetic transformation platforms are very useful for accelerating the molecular breeding process on sunflower.


Subject(s)
Agrobacterium tumefaciens , Helianthus , Plants, Genetically Modified , Transformation, Genetic , Helianthus/genetics , Helianthus/microbiology , Helianthus/growth & development , Agrobacterium tumefaciens/genetics , Plants, Genetically Modified/genetics , Tissue Culture Techniques/methods , Plant Roots/microbiology , Plant Roots/genetics , Plant Roots/growth & development , Plant Breeding/methods , Crops, Agricultural/genetics , Crops, Agricultural/growth & development
15.
Sci Rep ; 14(1): 10684, 2024 05 09.
Article in English | MEDLINE | ID: mdl-38724636

ABSTRACT

Pollution by heavy metals (HMs) has become a global problem for agriculture and the environment. In this study, the effects of pristine biochar and biochar modified with manganese dioxide (BC@MnO2) and zinc oxide (BC@ZnO) nanoparticles on the immobilization and bioavailability of Pb, Cd, Zn, and Ni in soil under ryegrass (Lolium perenne L.) cultivation were investigated. The results of SEM-EDX, FTIR, and XRD showed that ZnO and MnO2 nanoparticles were successfully loaded onto biochar. The results showed that BC, BC@MnO2 and BC@ZnO treatments significantly increased shoots and roots dry weight of ryegrass compared to the control. The maximum dry weight of root and shoot (1.365 g pot-1 and 4.163 g pot-1, respectively) was reached at 1% BC@MnO2. The HMs uptake by ryegrass roots and shoots decreased significantly after addition of amendments. The lowest Pb, Cd, Zn and Ni uptake in the plant shoot (13.176, 24.92, 32.407, and 53.88 µg pot-1, respectively) was obtained in the 1% BC@MnO2 treatment. Modified biochar was more successful in reducing HMs uptake by ryegrass and improving plant growth than pristine biochar and can therefore be used as an efficient and cost effective amendment for the remediation of HMs contaminated soils. The lowest HMs translocation (TF) and bioconcentration factors were related to the 1% BC@MnO2 treatment. Therefore, BC@MnO2 was the most successful treatment for HMs immobilization in soil. Also, a comparison of the TF values of plant showed that ryegrass had a good ability to accumulate all studied HMs in its roots, and it is a suitable plant for HMs phytostabilization.


Subject(s)
Charcoal , Lolium , Manganese Compounds , Metals, Heavy , Oxides , Soil Pollutants , Zinc Oxide , Lolium/metabolism , Lolium/growth & development , Charcoal/chemistry , Soil Pollutants/metabolism , Oxides/chemistry , Metals, Heavy/metabolism , Zinc Oxide/chemistry , Manganese Compounds/chemistry , Manganese Compounds/metabolism , Plant Roots/metabolism , Plant Roots/growth & development , Nanoparticles/chemistry , Biological Availability , Soil/chemistry
16.
Physiol Plant ; 176(3): e14315, 2024.
Article in English | MEDLINE | ID: mdl-38693794

ABSTRACT

Rapeseed (Brassica napus L.) is an oil-containing crop of great economic value but with considerable nitrogen requirement. Breeding root systems that efficiently absorb nitrogen from the soil could be a driver to ensure genetic gains for more sustainable rapeseed production. The aim of this study is to identify genomic regions that regulate root morphology in response to nitrate availability. The natural variability offered by 300 inbred lines was screened at two experimental locations. Seedlings grew hydroponically with low or elevated nitrate levels. Fifteen traits related to biomass production and root morphology were measured. On average across the panel, a low nitrate level increased the root-to-shoot biomass ratio and the lateral root length. A large phenotypic variation was observed, along with important heritability values and genotypic effects, but low genotype-by-nitrogen interactions. Genome-wide association study and bulk segregant analysis were used to identify loci regulating phenotypic traits. The first approach nominated 319 SNPs that were combined into 80 QTLs. Three QTLs identified on the A07 and C07 chromosomes were stable across nitrate levels and/or experimental locations. The second approach involved genotyping two groups of individuals from an experimental F2 population created by crossing two accessions with contrasting lateral root lengths. These individuals were found in the tails of the phenotypic distribution. Co-localized QTLs found in both mapping approaches covered a chromosomal region on the A06 chromosome. The QTL regions contained some genes putatively involved in root organogenesis and represent selection targets for redesigning the root morphology of rapeseed.


Subject(s)
Brassica napus , Nitrogen , Phenotype , Plant Roots , Quantitative Trait Loci , Plant Roots/genetics , Plant Roots/anatomy & histology , Plant Roots/growth & development , Plant Roots/metabolism , Nitrogen/metabolism , Quantitative Trait Loci/genetics , Brassica napus/genetics , Brassica napus/growth & development , Brassica napus/anatomy & histology , Brassica napus/metabolism , Genotype , Genome-Wide Association Study , Polymorphism, Single Nucleotide/genetics , Biomass , Nitrates/metabolism , Chromosome Mapping , Genetic Variation
17.
BMC Plant Biol ; 24(1): 358, 2024 May 03.
Article in English | MEDLINE | ID: mdl-38698337

ABSTRACT

BACKGROUND: Astragalus membranaceus var. mongholicus (Astragalus), acknowledged as a pivotal "One Root of Medicine and Food", boasts dual applications in both culinary and medicinal domains. The growth and metabolite accumulation of medicinal roots during the harvest period is intricately regulated by a transcriptional regulatory network. One key challenge is to accurately pinpoint the harvest date during the transition from conventional yield content of medicinal materials to high and to identify the core regulators governing such a critical transition. To solve this problem, we performed a correlation analysis of phenotypic, transcriptome, and metabolome dynamics during the harvesting of Astragalus roots. RESULTS: First, our analysis identified stage-specific expression patterns for a significant proportion of the Astragalus root genes and unraveled the chronology of events that happen at the early and later stages of root harvest. Then, the results showed that different root developmental stages can be depicted by co-expressed genes of Astragalus. Moreover, we identified the key components and transcriptional regulation processes that determine root development during harvest. Furthermore, through correlating phenotypes, transcriptomes, and metabolomes at different harvesting periods, period D (Nov.6) was identified as the critical period of yield and flavonoid content increase, which is consistent with morphological and metabolic changes. In particular, we identified a flavonoid biosynthesis metabolite, isoliquiritigenin, as a core regulator of the synthesis of associated secondary metabolites in Astragalus. Further analyses and experiments showed that HMGCR, 4CL, CHS, and SQLE, along with its associated differentially expressed genes, induced conversion of metabolism processes, including the biosynthesis of isoflavones and triterpenoid saponins substances, thus leading to the transition to higher medicinal materials yield and active ingredient content. CONCLUSIONS: The findings of this work will clarify the differences in the biosynthetic mechanism of astragaloside IV and calycosin 7-O-ß-D-glucopyranoside accumulation between the four harvesting periods, which will guide the harvesting and production of Astragalus.


Subject(s)
Astragalus propinquus , Metabolomics , Phenotype , Plant Roots , Plants, Medicinal , Transcriptome , Astragalus propinquus/metabolism , Astragalus propinquus/genetics , Astragalus propinquus/growth & development , Plant Roots/metabolism , Plant Roots/genetics , Plant Roots/growth & development , Plants, Medicinal/metabolism , Plants, Medicinal/genetics , Plants, Medicinal/growth & development , Gene Expression Regulation, Plant , Metabolome , Gene Expression Profiling
18.
Sci Rep ; 14(1): 10231, 2024 05 03.
Article in English | MEDLINE | ID: mdl-38702407

ABSTRACT

Agricultural soils are increasingly undergoing inadvertent and purposeful exposures to engineered CeO2 nanoparticles (NPs), which can impact crops and root-associated microbial communities. However, interactions between NP concentration and exposure duration on plant-mediated responses of root-associated bacterial communities are not well understood. Soybeans seedlings were grown in soil with uncoated NPs added at concentrations of 0, 1 or 100 mg kg-1. Total soil exposure durations were either 190 days, starting 106 days before planting or 84 days with NP amendments coinciding with planting. We assessed plant development, bacterial diversity, differential abundance and inferred functional changes across rhizosphere, rhizoplane, and root tissue compartments. Plant non-monotonic dose responses were mirrored in bacterial communities. Most notably, effects were magnified in the rhizoplane under low-dose, short-exposures. Enriched metabolic pathways were primarily related to biosynthesis and degradation/utilization/assimilation, rather than responses to metals or oxidative stress. Our results indicate that plant-mediated bacterial responses were greater than direct NP impacts. Also, we identify needs for modeling non-monotonic legume stress responses that account for coinfection with mutualistic and parasitic bacteroids. Our findings provide new insights regarding effects of applications of soil amendments such as biosolids containing NPs or nano-enabled formulations used in cultivation of legumes and other crops.


Subject(s)
Bacteria , Cerium , Glycine max , Nanoparticles , Plant Roots , Rhizosphere , Soil Microbiology , Glycine max/growth & development , Glycine max/drug effects , Glycine max/microbiology , Plant Roots/microbiology , Plant Roots/drug effects , Plant Roots/growth & development , Bacteria/drug effects , Microbiota/drug effects , Soil/chemistry
19.
PLoS One ; 19(5): e0303096, 2024.
Article in English | MEDLINE | ID: mdl-38713656

ABSTRACT

Fast-growing poplar plantations are considered a great benefit to timber production, but water availability is a key factor limiting their growth and development, especially in arid and semi-arid ecosystems. Super-absorbent polymers facilitate more water retention in soil after rain or irrigation, and they are able to release water gradually during plant growth. This study aimed to examine the effects of reduced irrigation (60% and 30% of conventional border irrigation) co-applied with super-absorbent polymers (0, 40 kg/ha) on root exudates, enzyme activities, microbial functional diversity in rhizosphere soil, and volume increments in poplar (Populus euramericana cv. 'Neva'). The results showed that 60% border irrigation co-applied with super-absorbent polymers significantly increased the content of organic acids, amino acids and total sugars in the root exudates, and the activities of invertase, urease, dehydrogenase, and catalase in the rhizosphere soil in comparison to conventional border irrigation without super-absorbent polymers. Meanwhile, this treatment also enhanced the average well-color development, Shannon index, and McIntosh index, but decreased the Simpson index. Additionally, the average volume growth rate and relative water content of leaves reached their maximum using 60% irrigation with super-absorbent polymers, which was significantly higher than other treatments. However, using 30% irrigation with super-absorbent polymers, had a smaller effect on rhizosphere soil and volume growth than 60% irrigation with super-absorbent polymers. Therefore, using an appropriate water-saving irrigation measure (60% conventional border irrigation with super-absorbent polymers) can help to improve enzyme activities and microbial diversity in the rhizosphere soil while promoting the growth of poplar trees.


Subject(s)
Agricultural Irrigation , Polymers , Populus , Rhizosphere , Soil Microbiology , Populus/growth & development , Populus/microbiology , Agricultural Irrigation/methods , Polymers/chemistry , Plant Roots/microbiology , Plant Roots/growth & development , Soil/chemistry , Water/chemistry
20.
Ecotoxicol Environ Saf ; 279: 116518, 2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38820874

ABSTRACT

Microplastics (MP) can influence a plethora of fungal species within the rhizosphere. Nevertheless, there are few studies on the direct impacts of MPs on soil fungi and their intricate interplay with plants. Here, we investigated the impact of polyethylene microspheres (PEMS) on the ecological interactions between Fusarium solani, a plant pathogenic fungus, and Trichoderma viride, a fungal plant growth promotor, within the rhizosphere of Solanum lycopersicum (tomato). Spores of F. solani and T. viride were pre-incubated with PEMS at two concentrations, 100 and 1000 mg L-1. Mycelium growth, sporulation, spore germination, and elongation were evaluated. Tomato seeds were exposed to fungal spore suspensions treated with PEMS, and plant development was subsequently assessed after 4 days. The results showed that PEMS significantly enhanced the sporulation (106.0 % and 70.1 %) but compromised the spore germination (up to 27.3 % and 32.2 %) and radial growth (up to -5.2% and -21.7 %) of F. solani and T. viride, respectively. Furthermore, the 100 and 1000 mg L-1 concentrations of PEMS significantly (p<0.05) enhanced the mycelium density of T. viride (9.74 % and 22.30 %, respectively), and impaired the germ-tube elongation of F. solani after 4 h (16.16 % and 11.85 %, respectively) and 8 h (4 % and 17.10 %, respectively). In addition, PEMS amplified the pathogenicity of F. solani and boosted the bio-enhancement effect of T. viride on tomato root growth. Further, PEMS enhanced the bio-fungicidal effect of T. viride toward F. solani (p<0.05). In summary, PEMS had varying effects on F. solani and T. viride, impacting their interactions and influencing their relationship with tomato plants. It intensified the beneficial effects of T. viride and increased the aggressiveness of F. solani. This study highlights concerns regarding the effects of MPs on fungal interactions in the rhizosphere, which are essential for crop soil colonization and resource utilization.


Subject(s)
Fusarium , Microplastics , Solanum lycopersicum , Spores, Fungal , Solanum lycopersicum/microbiology , Solanum lycopersicum/growth & development , Solanum lycopersicum/drug effects , Fusarium/physiology , Fusarium/growth & development , Spores, Fungal/drug effects , Spores, Fungal/growth & development , Microplastics/toxicity , Rhizosphere , Soil Microbiology , Soil Pollutants/toxicity , Polyethylene , Hypocreales/drug effects , Hypocreales/physiology , Microspheres , Plant Roots/microbiology , Plant Roots/growth & development , Plant Roots/drug effects
SELECTION OF CITATIONS
SEARCH DETAIL
...