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1.
Plant Cell Rep ; 43(6): 158, 2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38822833

ABSTRACT

KEY MESSAGE: Transgenic plants stably overexpressing ScOPR1 gene enhanced disease resistance by increasing the accumulation of JA, SA, and GST, as well as up-regulating the expression of genes related to signaling pathways. 12-Oxo-phytodienoate reductase (OPR) is an oxidoreductase that depends on flavin mononucleotide (FMN) and catalyzes the conversion of 12-oxophytodienoate (12-OPDA) into jasmonic acid (JA). It plays a key role in plant growth and development, and resistance to adverse stresses. In our previous study, we have obtained an OPR gene (ScOPR1, GenBank Accession Number: MG755745) from sugarcane. This gene showed positive responses to methyl jasmonate (MeJA), salicylic acid (SA), abscisic acid (ABA), and Sporisorium scitamineum, suggesting its potential for pathogen resistance. Here, in our study, we observed that Nicotiana benthamiana leaves transiently overexpressing ScOPR1 exhibited weaker disease symptoms, darker 3,3-diaminobenzidine (DAB) staining, higher accumulation of reactive oxygen species (ROS), and higher expression of hypersensitive response (HR) and SA pathway-related genes after inoculation with Ralstonia solanacearum and Fusarium solanacearum var. coeruleum. Furthermore, the transgenic N. benthamiana plants stably overexpressing the ScOPR1 gene showed enhanced resistance to pathogen infection by increasing the accumulation of JA, SA, and glutathione S-transferase (GST), as well as up-regulating genes related to HR, JA, SA, and ROS signaling pathways. Transcriptome analysis revealed that the specific differentially expressed genes (DEGs) in ScOPR1-OE were significantly enriched in hormone transduction signaling and plant-pathogen interaction pathways. Finally, a functional mechanism model of the ScOPR1 gene in response to pathogen infection was depicted. This study provides insights into the molecular mechanism of ScOPR1 and presents compelling evidence supporting its positive involvement in enhancing plant disease resistance.


Subject(s)
Cyclopentanes , Disease Resistance , Gene Expression Regulation, Plant , Oxylipins , Plant Diseases , Plant Growth Regulators , Plant Proteins , Plants, Genetically Modified , Saccharum , Salicylic Acid , Signal Transduction , Disease Resistance/genetics , Plant Diseases/microbiology , Plant Diseases/genetics , Saccharum/genetics , Saccharum/microbiology , Signal Transduction/genetics , Plant Proteins/genetics , Plant Proteins/metabolism , Plant Growth Regulators/metabolism , Oxylipins/metabolism , Salicylic Acid/metabolism , Cyclopentanes/metabolism , Nicotiana/genetics , Nicotiana/microbiology , Reactive Oxygen Species/metabolism , Acetates/pharmacology , Plant Leaves/genetics , Plant Leaves/microbiology , Abscisic Acid/metabolism , Ralstonia solanacearum/physiology , Ralstonia solanacearum/pathogenicity
2.
BMC Plant Biol ; 24(1): 496, 2024 Jun 04.
Article in English | MEDLINE | ID: mdl-38831278

ABSTRACT

BACKGROUND: Monosaccharide transporter (MST) family, as a carrier for monosaccharide transport, plays an important role in carbon partitioning and widely involves in plant growth and development, stress response, and signaling transduction. However, little information on the MST family genes is reported in maize (Zea mays), especially in response to abiotic stresses. In this study, the genome-wide identification of MST family genes was performed in maize. RESULT: A total of sixty-six putative members of MST gene family were identified and divided into seven subfamilies (including SPT, PMT, VGT, INT, pGlcT, TMT, and ERD) using bioinformatics approaches, and gene information, phylogenetic tree, chromosomal location, gene structure, motif composition, and cis-acting elements were investigated. Eight tandem and twelve segmental duplication events were identified, which played an important role in the expansion of the ZmMST family. Synteny analysis revealed the evolutionary features of MST genes in three gramineous crop species. The expression analysis indicated that most of the PMT, VGT, and ERD subfamilies members responded to osmotic and cadmium stresses, and some of them were regulated by ABA signaling, while only a few members of other subfamilies responded to stresses. In addition, only five genes were induced by NaCl stress in MST family. CONCLUSION: These results serve to understand the evolutionary relationships of the ZmMST family genes and supply some insight into the processes of monosaccharide transport and carbon partitioning on the balance between plant growth and development and stress response in maize.


Subject(s)
Monosaccharide Transport Proteins , Multigene Family , Phylogeny , Plant Proteins , Stress, Physiological , Zea mays , Zea mays/genetics , Zea mays/physiology , Stress, Physiological/genetics , Monosaccharide Transport Proteins/genetics , Monosaccharide Transport Proteins/metabolism , Plant Proteins/genetics , Plant Proteins/metabolism , Evolution, Molecular , Plant Growth Regulators/pharmacology , Plant Growth Regulators/metabolism , Gene Expression Regulation, Plant , Genome, Plant , Genes, Plant
3.
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
4.
Physiol Plant ; 176(3): e14328, 2024.
Article in English | MEDLINE | ID: mdl-38695265

ABSTRACT

While endophytic fungi offer promising avenues for bolstering plant resilience against abiotic stressors, the molecular mechanisms behind this biofortification remain largely unknown. This study employed a multifaceted approach, combining plant physiology, proteomic, metabolomic, and targeted hormonal analyses to illuminate the early response of Brassica napus to Acremonium alternatum during the nascent stages of their interaction. Notably, under optimal growth conditions, the initial reaction to fungus was relatively subtle, with no visible alterations in plant phenotype and only minor impacts on the proteome and metabolome. Interestingly, the identified proteins associated with the Acremonium response included TUDOR 1, Annexin D4, and a plastidic K+ efflux antiporter, hinting at potential processes that could counter abiotic stressors, particularly salt stress. Subsequent experiments validated this hypothesis, showcasing significantly enhanced growth in Acremonium-inoculated plants under salt stress. Molecular analyses revealed a profound impact on the plant's proteome, with over 50% of salt stress response proteins remaining unaffected in inoculated plants. Acremonium modulated ribosomal proteins, increased abundance of photosynthetic proteins, enhanced ROS metabolism, accumulation of V-ATPase, altered abundances of various metabolic enzymes, and possibly promoted abscisic acid signaling. Subsequent analyses validated the accumulation of this hormone and its enhanced signaling. Collectively, these findings indicate that Acremonium promotes salt tolerance by orchestrating abscisic acid signaling, priming the plant's antioxidant system, as evidenced by the accumulation of ROS-scavenging metabolites and alterations in ROS metabolism, leading to lowered ROS levels and enhanced photosynthesis. Additionally, it modulates ion sequestration through V-ATPase accumulation, potentially contributing to the observed decrease in chloride content.


Subject(s)
Acremonium , Homeostasis , Oxidation-Reduction , Plant Growth Regulators , Salt Tolerance , Signal Transduction , Acremonium/metabolism , Acremonium/physiology , Plant Growth Regulators/metabolism , Salt Tolerance/physiology , Brassica napus/microbiology , Brassica napus/metabolism , Brassica napus/physiology , Brassica napus/drug effects , Salt Stress/physiology , Plant Proteins/metabolism , Plant Proteins/genetics , Abscisic Acid/metabolism , Photosynthesis
5.
Mol Biol Rep ; 51(1): 605, 2024 May 03.
Article in English | MEDLINE | ID: mdl-38700570

ABSTRACT

BACKGROUND: Cultivation of Crocus sativus (saffron) faces challenges due to inconsistent flowering patterns and variations in yield. Flowering takes place in a graded way with smaller corms unable to produce flowers. Enhancing the productivity requires a comprehensive understanding of the underlying genetic mechanisms that govern this size-based flowering initiation and commitment. Therefore, samples enriched with non-flowering and flowering apical buds from small (< 6 g) and large (> 14 g) corms were sequenced. METHODS AND RESULTS: Apical bud enriched samples from small and large corms were collected immediately after dormancy break in July. RNA sequencing was performed using Illumina Novaseq 6000 to access the gene expression profiles associated with size dependent flowering. De novo transcriptome assembly and analysis using flowering committed buds from large corms at post-dormancy and their comparison with vegetative shoot primordia from small corms pointed out the major role of starch and sucrose metabolism, Auxin and ABA hormonal regulation. Many genes with known dual responses in flowering development and circadian rhythm like Flowering locus T and Cryptochrome 1 along with a transcript showing homology with small auxin upregulated RNA (SAUR) exhibited induced expression in flowering buds. Thorough prediction of Crocus sativus non-coding RNA repertoire has been carried out for the first time. Enolase was found to be acting as a major hub with protein-protein interaction analysis using Arabidopsis counterparts. CONCLUSION: Transcripts belong to key pathways including phenylpropanoid biosynthesis, hormone signaling and carbon metabolism were found significantly modulated. KEGG assessment and protein-protein interaction analysis confirm the expression data. Findings unravel the genetic determinants driving the size dependent flowering in Crocus sativus.


Subject(s)
Crocus , Flowers , Gene Expression Profiling , Gene Expression Regulation, Plant , Indoleacetic Acids , Meristem , Signal Transduction , Flowers/genetics , Flowers/growth & development , Flowers/metabolism , Crocus/genetics , Crocus/growth & development , Crocus/metabolism , Gene Expression Regulation, Plant/genetics , Indoleacetic Acids/metabolism , Gene Expression Profiling/methods , Meristem/genetics , Meristem/growth & development , Meristem/metabolism , Signal Transduction/genetics , Plant Proteins/genetics , Plant Proteins/metabolism , Transcriptome/genetics , Sugars/metabolism , Plant Growth Regulators/metabolism
6.
Antonie Van Leeuwenhoek ; 117(1): 76, 2024 May 05.
Article in English | MEDLINE | ID: mdl-38705910

ABSTRACT

Despite being one of the most abundant elements in soil, phosphorus (P) often becomes a limiting macronutrient for plants due to its low bioavailability, primarily locked away in insoluble organic and inorganic forms. Phosphate solubilizing and mineralizing bacteria, also called phosphobacteria, isolated from P-deficient soils have emerged as a promising biofertilizer alternative, capable of converting these recalcitrant P forms into plant-available phosphates. Three such phosphobacteria strains-Serratia sp. RJAL6, Klebsiella sp. RCJ4, and Enterobacter sp. 198-previously demonstrated their particular strength as plant growth promoters for wheat, ryegrass, or avocado under abiotic stresses and P deficiency. Comparative genomic analysis of their draft genomes revealed several genes encoding key functionalities, including alkaline phosphatases, isonitrile secondary metabolites, enterobactin biosynthesis and genes associated to the production of indole-3-acetic acid (IAA) and gluconic acid. Moreover, overall genome relatedness indexes (OGRIs) revealed substantial divergence between Serratia sp. RJAL6 and its closest phylogenetic neighbours, Serratia nematodiphila and Serratia bockelmanii. This compelling evidence suggests that RJAL6 merits classification as a novel species. This in silico genomic analysis provides vital insights into the plant growth-promoting capabilities and provenance of these promising PSRB strains. Notably, it paves the way for further characterization and potential application of the newly identified Serratia species as a powerful bioinoculant in future agricultural settings.


Subject(s)
Enterobacter , Genome, Bacterial , Genomics , Indoleacetic Acids , Phylogeny , Serratia , Soil Microbiology , Indoleacetic Acids/metabolism , Serratia/genetics , Serratia/isolation & purification , Serratia/metabolism , Serratia/classification , Enterobacter/genetics , Enterobacter/isolation & purification , Enterobacter/classification , Enterobacter/metabolism , Klebsiella/genetics , Klebsiella/metabolism , Klebsiella/isolation & purification , Klebsiella/classification , Plant Development , Soil/chemistry , Plant Growth Regulators/metabolism
7.
Mol Biol Rep ; 51(1): 618, 2024 May 06.
Article in English | MEDLINE | ID: mdl-38705956

ABSTRACT

BACKGROUND: Astragalus membranaceus is a plant of the Astragalus genus, which is used as a traditional Chinese herbal medicine with extremely high medicinal and edible value. Astragalus mongholicus, as one of the representative medicinal materials with the same origin of medicine and food, has a rising market demand for its raw materials, but the quality is different in different production areas. Growth-regulating factors (GRF) are transcription factors unique to plants that play important roles in plant growth and development. Up to now, there is no report about GRF in A. mongholicus. METHODS AND RESULTS: This study conducted a genome-wide analysis of the AmGRF gene family, identifying a total of nine AmGRF genes that were classified into subfamily V based on phylogenetic relationships. In the promoter region of the AmGRF gene, we successfully predicted cis-elements that respond to abiotic stress, growth, development, and hormone production in plants. Based on transcriptomic data and real-time quantitative polymerase chain reaction (qPCR) validation, the results showed that AmGRFs were expressed in the roots, stems, and leaves, with overall higher expression in leaves, higher expression of AmGRF1 and AmGRF8 in roots, and high expression levels of AmGRF1 and AmGRF9 in stems. CONCLUSIONS: The results of this study provide a theoretical basis for the further exploration of the functions of AmGRFs in plant growth and development.


Subject(s)
Gene Expression Regulation, Plant , Phylogeny , Plant Proteins , Transcription Factors , Gene Expression Regulation, Plant/genetics , Plant Proteins/genetics , Plant Proteins/metabolism , Transcription Factors/genetics , Transcription Factors/metabolism , Astragalus propinquus/genetics , Astragalus propinquus/metabolism , Multigene Family , Genome, Plant , Gene Expression Profiling/methods , Promoter Regions, Genetic/genetics , Astragalus Plant/genetics , Astragalus Plant/metabolism , Plant Roots/genetics , Plant Roots/metabolism , Stress, Physiological/genetics , Transcriptome/genetics , Plant Growth Regulators/metabolism
8.
Physiol Plant ; 176(3): e14307, 2024.
Article in English | MEDLINE | ID: mdl-38705723

ABSTRACT

Phytohormones, pivotal regulators of plant growth and development, are increasingly recognized for their multifaceted roles in enhancing crop resilience against environmental stresses. In this review, we provide a comprehensive synthesis of current research on utilizing phytohormones to enhance crop productivity and fortify their defence mechanisms. Initially, we introduce the significance of phytohormones in orchestrating plant growth, followed by their potential utilization in bolstering crop defences against diverse environmental stressors. Our focus then shifts to an in-depth exploration of phytohormones and their pivotal roles in mediating plant defence responses against biotic stressors, particularly insect pests. Furthermore, we highlight the potential impact of phytohormones on agricultural production while underscoring the existing research gaps and limitations hindering their widespread implementation in agricultural practices. Despite the accumulating body of research in this field, the integration of phytohormones into agriculture remains limited. To address this discrepancy, we propose a comprehensive framework for investigating the intricate interplay between phytohormones and sustainable agriculture. This framework advocates for the adoption of novel technologies and methodologies to facilitate the effective deployment of phytohormones in agricultural settings and also emphasizes the need to address existing research limitations through rigorous field studies. By outlining a roadmap for advancing the utilization of phytohormones in agriculture, this review aims to catalyse transformative changes in agricultural practices, fostering sustainability and resilience in agricultural settings.


Subject(s)
Agriculture , Crops, Agricultural , Plant Development , Plant Growth Regulators , Plant Growth Regulators/metabolism , Agriculture/methods , Crops, Agricultural/growth & development , Stress, Physiological
9.
BMC Genom Data ; 25(1): 41, 2024 May 06.
Article in English | MEDLINE | ID: mdl-38711007

ABSTRACT

BACKGROUND: Class III peroxidase (POD) enzymes play vital roles in plant development, hormone signaling, and stress responses. Despite extensive research on POD families in various plant species, the knowledge regarding the POD family in Chinese pear (Pyrus bretschenedri) is notably limited. RESULTS: We systematically characterized 113 POD family genes, designated as PbPOD1 to PbPOD113 based on their chromosomal locations. Phylogenetic analysis categorized these genes into seven distinct subfamilies (I to VII). The segmental duplication events were identified as a prevalent mechanism driving the expansion of the POD gene family. Microsynteny analysis, involving comparisons with Pyrus bretschenedri, Fragaria vesca, Prunus avium, Prunus mume and Prunus persica, highlighted the conservation of duplicated POD regions and their persistence through purifying selection during the evolutionary process. The expression patterns of PbPOD genes were performed across various plant organs and diverse fruit development stages using transcriptomic data. Furthermore, we identified stress-related cis-acting elements within the promoters of PbPOD genes, underscoring their involvement in hormonal and environmental stress responses. Notably, qRT-PCR analyses revealed distinctive expression patterns of PbPOD genes in response to melatonin (MEL), salicylic acid (SA), abscisic acid (ABA), and methyl jasmonate (MeJA), reflecting their responsiveness to abiotic stress and their role in fruit growth and development. CONCLUSIONS: In this study, we investigated the potential functions and evolutionary dynamics of PbPOD genes in Pyrus bretschenedri, positioning them as promising candidates for further research and valuable indicators for enhancing fruit quality through molecular breeding strategies.


Subject(s)
Gene Expression Regulation, Plant , Phylogeny , Plant Growth Regulators , Pyrus , Pyrus/genetics , Gene Expression Regulation, Plant/drug effects , Plant Growth Regulators/pharmacology , Plant Growth Regulators/metabolism , Melatonin/metabolism , Plant Proteins/genetics , Plant Proteins/metabolism , Oxylipins/pharmacology , Cyclopentanes/pharmacology , Peroxidase/genetics , Peroxidase/metabolism , Acetates/pharmacology , Acetates/metabolism , Fruit/genetics , Fruit/growth & development
10.
BMC Plant Biol ; 24(1): 367, 2024 May 07.
Article in English | MEDLINE | ID: mdl-38711041

ABSTRACT

BACKGROUND: The formation of shoots plays a pivotal role in plant organogenesis and productivity. Despite its significance, the underlying molecular mechanism of de novo regeneration has not been extensively elucidated in Capsicum annuum 'Dempsey', a bell pepper cultivar. To address this, we performed a comparative transcriptome analysis focusing on the differential expression in C. annuum 'Dempsey' shoot, callus, and leaf tissue. We further investigated phytohormone-related biological processes and their interacting genes in the C. annuum 'Dempsey' transcriptome based on comparative transcriptomic analysis across five species. RESULTS: We provided a comprehensive view of the gene networks regulating shoot formation on the callus, revealing a strong involvement of hypoxia responses and oxidative stress. Our comparative transcriptome analysis revealed a significant conservation in the increase of gene expression patterns related to auxin and defense mechanisms in both callus and shoot tissues. Consequently, hypoxia response and defense mechanism emerged as critical regulators in callus and shoot formation in C. annuum 'Dempsey'. Current transcriptome data also indicated a substantial decline in gene expression linked to photosynthesis within regenerative tissues, implying a deactivation of the regulatory system governing photosynthesis in C. annuum 'Dempsey'. CONCLUSION: Coupled with defense mechanisms, we thus considered spatial redistribution of auxin to play a critical role in the shoot morphogenesis via primordia outgrowth. Our findings shed light on shoot formation mechanisms in C. annuum 'Dempsey' explants, important information for regeneration programs, and have broader implications for precise molecular breeding in recalcitrant crops.


Subject(s)
Capsicum , Gene Expression Profiling , Plant Shoots , Transcriptome , Capsicum/genetics , Capsicum/growth & development , Capsicum/physiology , Plant Shoots/genetics , Plant Shoots/growth & development , Plant Shoots/metabolism , Gene Expression Regulation, Plant , Plant Growth Regulators/metabolism
11.
Nat Commun ; 15(1): 3875, 2024 May 08.
Article in English | MEDLINE | ID: mdl-38719800

ABSTRACT

The genomes of charophyte green algae, close relatives of land plants, typically do not show signs of developmental regulation by phytohormones. However, scattered reports of endogenous phytohormone production in these organisms exist. We performed a comprehensive analysis of multiple phytohormones in Viridiplantae, focusing mainly on charophytes. We show that auxin, salicylic acid, ethylene and tRNA-derived cytokinins including cis-zeatin are found ubiquitously in Viridiplantae. By contrast, land plants but not green algae contain the trans-zeatin type cytokinins as well as auxin and cytokinin conjugates. Charophytes occasionally produce jasmonates and abscisic acid, whereas the latter is detected consistently in land plants. Several phytohormones are excreted into the culture medium, including auxin by charophytes and cytokinins and salicylic acid by Viridiplantae in general. We note that the conservation of phytohormone biosynthesis and signaling pathways known from angiosperms does not match the capacity for phytohormone biosynthesis in Viridiplantae. Our phylogenetically guided analysis of established algal cultures provides an important insight into phytohormone biosynthesis and metabolism across Streptophyta.


Subject(s)
Cytokinins , Indoleacetic Acids , Phylogeny , Plant Growth Regulators , Plant Growth Regulators/metabolism , Indoleacetic Acids/metabolism , Cytokinins/metabolism , Viridiplantae/metabolism , Viridiplantae/genetics , Ethylenes/metabolism , Oxylipins/metabolism , Salicylic Acid/metabolism , Abscisic Acid/metabolism , Gene Expression Regulation, Plant , Cyclopentanes/metabolism , Biological Evolution , Chlorophyta/metabolism , Chlorophyta/genetics , Signal Transduction
12.
Nat Commun ; 15(1): 3895, 2024 May 08.
Article in English | MEDLINE | ID: mdl-38719832

ABSTRACT

Growth at the shoot apical meristem (SAM) is essential for shoot architecture construction. The phytohormones gibberellins (GA) play a pivotal role in coordinating plant growth, but their role in the SAM remains mostly unknown. Here, we developed a ratiometric GA signaling biosensor by engineering one of the DELLA proteins, to suppress its master regulatory function in GA transcriptional responses while preserving its degradation upon GA sensing. We demonstrate that this degradation-based biosensor accurately reports on cellular changes in GA levels and perception during development. We used this biosensor to map GA signaling activity in the SAM. We show that high GA signaling is found primarily in cells located between organ primordia that are the precursors of internodes. By gain- and loss-of-function approaches, we further demonstrate that GAs regulate cell division plane orientation to establish the typical cellular organization of internodes, thus contributing to internode specification in the SAM.


Subject(s)
Arabidopsis Proteins , Arabidopsis , Biosensing Techniques , Gene Expression Regulation, Plant , Gibberellins , Meristem , Signal Transduction , Gibberellins/metabolism , Meristem/metabolism , Meristem/growth & development , Arabidopsis/metabolism , Arabidopsis/growth & development , Arabidopsis/genetics , Arabidopsis Proteins/metabolism , Arabidopsis Proteins/genetics , Plant Growth Regulators/metabolism , Plant Shoots/metabolism , Plant Shoots/growth & development , Plants, Genetically Modified
13.
BMC Plant Biol ; 24(1): 380, 2024 May 08.
Article in English | MEDLINE | ID: mdl-38720246

ABSTRACT

BACKGROUND: Soybean (Glycine max), a vital grain and oilseed crop, serves as a primary source of plant protein and oil. Soil salinization poses a significant threat to soybean planting, highlighting the urgency to improve soybean resilience and adaptability to saline stress. Melatonin, recently identified as a key plant growth regulator, plays crucial roles in plant growth, development, and responses to environmental stress. However, the potential of melatonin to mitigate alkali stress in soybeans and the underlying mechanisms remain unclear. RESULTS: This study investigated the effects of exogenous melatonin on the soybean cultivar Zhonghuang 13 under alkaline stress. We employed physiological, biochemical, transcriptomic, and metabolomic analyses throughout both vegetative and pod-filling growth stages. Our findings demonstrate that melatonin significantly counteracts the detrimental effects of alkaline stress on soybean plants, promoting plant growth, photosynthesis, and antioxidant capacity. Transcriptomic analysis during both growth stages under alkaline stress, with and without melatonin treatment, identified 2,834 and 549 differentially expressed genes, respectively. These genes may play a vital role in regulating plant adaptation to abiotic stress. Notably, analysis of phytohormone biosynthesis pathways revealed altered expression of key genes, particularly in the ARF (auxin response factor), AUX/IAA (auxin/indole-3-acetic acid), and GH3 (Gretchen Hagen 3) families, during the early stress response. Metabolomic analysis during the pod-filling stage identified highly expressed metabolites responding to melatonin application, such as uteolin-7-O-(2''-O-rhamnosyl)rutinoside and Hederagenin-3-O-glucuronide-28-O-glucosyl(1,2)glucoside, which helped alleviate the damage caused by alkali stress. Furthermore, we identified 183 differentially expressed transcription factors, potentially playing a critical role in regulating plant adaptation to abiotic stress. Among these, the gene SoyZH13_04G073701 is particularly noteworthy as it regulates the key differentially expressed metabolite, the terpene metabolite Hederagenin-3-O-glucuronide-28-O-glucosyl(1,2)glucoside. WGCNA analysis identified this gene (SoyZH13_04G073701) as a hub gene, positively regulating the crucial differentially expressed metabolite of terpenoids, Hederagenin-3-O-glucuronide-28-O-glucosyl(1,2)glucoside. Our findings provide novel insights into how exogenous melatonin alleviates alkali stress in soybeans at different reproductive stages. CONCLUSIONS: Integrating transcriptomic and metabolomic approaches, our study elucidates the mechanisms by which exogenous melatonin ameliorates the inhibitory effects of alkaline stress on soybean growth and development. This occurs through modulation of biosynthesis pathways for key compounds, including terpenes, flavonoids, and phenolics. Our findings provide initial mechanistic insights into how melatonin mitigates alkaline stress in soybeans, offering a foundation for molecular breeding strategies to enhance salt-alkali tolerance in this crop.


Subject(s)
Glycine max , Melatonin , Stress, Physiological , Transcriptome , Melatonin/pharmacology , Glycine max/genetics , Glycine max/drug effects , Glycine max/growth & development , Glycine max/metabolism , Stress, Physiological/drug effects , Stress, Physiological/genetics , Transcriptome/drug effects , Gene Expression Regulation, Plant/drug effects , Metabolomics , Gene Expression Profiling , Alkalies , Plant Growth Regulators/metabolism , Plant Growth Regulators/pharmacology , Metabolome/drug effects
14.
BMC Plant Biol ; 24(1): 363, 2024 May 09.
Article in English | MEDLINE | ID: mdl-38724910

ABSTRACT

Salinity stress is a significant challenge in agricultural production. When soil contains high salts, it can adversely affect plant growth and productivity due to the high concentration of soluble salts in the soil water. To overcome this issue, foliar applications of methyl jasmonate (MJ) and gibberellic acid (GA3) can be productive amendments. Both can potentially improve the plant's growth attributes and flowering, which are imperative in improving growth and yield. However, limited literature is available on their combined use in canola to mitigate salinity stress. That's why the current study investigates the impact of different levels of MJ (at concentrations of 0.8, 1.6, and 3.2 mM MJ) and GA3 (0GA3 and 5 mg/L GA3) on canola cultivated in salt-affected soils. Applying all the treatments in four replicates. Results indicate that the application of 0.8 mM MJ with 5 mg/L GA3 significantly enhances shoot length (23.29%), shoot dry weight (24.77%), number of leaves per plant (24.93%), number of flowering branches (26.11%), chlorophyll a (31.44%), chlorophyll b (20.28%) and total chlorophyll (27.66%) and shoot total soluble carbohydrates (22.53%) over control. Treatment with 0.8 mM MJ and 5 mg/L GA3 resulted in a decrease in shoot proline (48.17%), MDA (81.41%), SOD (50.59%), POD (14.81%) while increase in N (10.38%), P (15.22%), and K (8.05%) compared to control in canola under salinity stress. In conclusion, 0.8 mM MJ + 5 mg/L GA3 can improve canola growth under salinity stress. More investigations are recommended at the field level to declare 0.8 mM MJ + 5 mg/L GA3 as the best amendment for alleviating salinity stress in different crops.


Subject(s)
Acetates , Antioxidants , Brassica napus , Cyclopentanes , Gibberellins , Oxylipins , Plant Growth Regulators , Soil , Cyclopentanes/pharmacology , Oxylipins/pharmacology , Brassica napus/growth & development , Brassica napus/drug effects , Brassica napus/metabolism , Gibberellins/metabolism , Gibberellins/pharmacology , Antioxidants/metabolism , Plant Growth Regulators/pharmacology , Plant Growth Regulators/metabolism , Acetates/pharmacology , Soil/chemistry , Chlorophyll/metabolism , Salt Stress/drug effects , Plant Leaves/drug effects , Plant Leaves/growth & development , Plant Leaves/metabolism , Nutrients/metabolism
15.
BMC Genomics ; 25(1): 474, 2024 May 14.
Article in English | MEDLINE | ID: mdl-38745148

ABSTRACT

BACKGROUND: Flowering time has an important effect on regional adaptation and yields for crops. The tyrosine kinase-like (TKL) gene family is widely existed and participates in many biological processes in plants. Furthermore, only few TKLs have been characterized functions in controlling flowering time in wheat. RESULTS: Here, we report that TaCTR1, a tyrosine kinase-like (TKL) gene, regulates flowering time in wheat. Based on identification and evolutionary analysis of TKL_CTR1-DRK-2 subfamily in 15 plants, we proposed an evolutionary model for TaCTR1, suggesting that occurrence of some exon fusion events during evolution. The overexpression of TaCTR1 caused early flowering time in transgenic lines. Transcriptomics analysis enabled identification of mass differential expression genes including plant hormone (ET, ABA, IAA, BR) signaling, flavonoid biosynthesis, phenolamides and antioxidant, and flowering-related genes in TaCTR1 overexpression transgenic lines compared with WT plants. qRT-PCR results showed that the expression levels of ethylene (ET) signal-related genes (ETR, EIN, ERF) and flowering-related genes (FT, PPD1, CO, PRR, PHY) were altered in TaCTR1-overexpressing wheat compared with WT plants. Metabonomics analysis showed that flavonoid contents were altered. CONCLUSIONS: Thus, the results show that TaCTR1 plays a positive role in controlling flowering time by activating various signaling pathways and regulating flowering-related genes, and will provide new insights on the mechanisms of wheat flowering regulation.


Subject(s)
Evolution, Molecular , Flowers , Gene Expression Regulation, Plant , Multigene Family , Plant Proteins , Triticum , Triticum/genetics , Triticum/growth & development , Triticum/metabolism , Flowers/genetics , Flowers/growth & development , Plant Proteins/genetics , Plant Proteins/metabolism , Phylogeny , Plants, Genetically Modified/genetics , Plant Growth Regulators/metabolism , Gene Expression Profiling , Genome, Plant
16.
Physiol Plant ; 176(3): e14357, 2024.
Article in English | MEDLINE | ID: mdl-38775128

ABSTRACT

The application of protein hydrolysates (PH) biostimulants is considered a promising approach to promote crop growth and resilience against abiotic stresses. Nevertheless, PHs bioactivity depends on both the raw material used for their preparation and the molecular fraction applied. The present research aimed at investigating the molecular mechanisms triggered by applying a PH and its fractions on plants subjected to nitrogen limitations. To this objective, an integrated transcriptomic-metabolomic approach was used to assess lettuce plants grown under different nitrogen levels and treated with either the commercial PH Vegamin® or its molecular fractions PH1(>10 kDa), PH2 (1-10 kDa) and PH3 (<1 kDa). Regardless of nitrogen provision, biostimulant application enhanced lettuce biomass, likely through a hormone-like activity. This was confirmed by the modulation of genes involved in auxin and cytokinin synthesis, mirrored by an increase in the metabolic levels of these hormones. Consistently, PH and PH3 upregulated genes involved in cell wall growth and plasticity. Furthermore, the accumulation of specific metabolites suggested the activation of a multifaceted antioxidant machinery. Notwithstanding, the modulation of stress-response transcription factors and genes involved in detoxification processes was observed. The coordinated action of these molecular entities might underpin the increased resilience of lettuce plants against nitrogen-limiting conditions. In conclusion, integrating omics techniques allowed the elucidation of mechanistic aspects underlying PH bioactivity in crops. Most importantly, the comparison of PH with its fraction PH3 showed that, except for a few peculiarities, the effects induced were equivalent, suggesting that the highest bioactivity was ascribable to the lightest molecular fraction.


Subject(s)
Lactuca , Nitrogen , Protein Hydrolysates , Lactuca/metabolism , Lactuca/genetics , Lactuca/drug effects , Lactuca/growth & development , Nitrogen/metabolism , Protein Hydrolysates/metabolism , Protein Hydrolysates/pharmacology , Gene Expression Regulation, Plant/drug effects , Metabolomics , Plant Growth Regulators/metabolism , Transcriptome/genetics , Multiomics
17.
ISME J ; 18(1)2024 Jan 08.
Article in English | MEDLINE | ID: mdl-38691444

ABSTRACT

Plant-associated microbiomes play important roles in plant health and productivity. However, despite fruits being directly linked to plant productivity, little is known about the microbiomes of fruits and their potential association with fruit health. Here, by integrating 16S rRNA gene, ITS high-throughput sequencing data, and microbiological culturable approaches, we reported that roots and fruits (pods) of peanut, a typical plant that bears fruits underground, recruit different bacterial and fungal communities independently of cropping conditions and that the incidence of pod disease under monocropping conditions is attributed to the depletion of Bacillus genus and enrichment of Aspergillus genus in geocarposphere. On this basis, we constructed a synthetic community (SynCom) consisting of three Bacillus strains from geocarposphere soil under rotation conditions with high culturable abundance. Comparative transcriptome, microbiome profiling, and plant phytohormone signaling analysis reveal that the SynCom exhibited more effective Aspergillus growth inhibition and pod disease control than individual strain, which was underpinned by a combination of molecular mechanisms related to fungal cell proliferation interference, mycotoxins biosynthesis impairment, and jasmonic acid-mediated plant immunity activation. Overall, our results reveal the filter effect of plant organs on the microbiome and that depletion of key protective microbial community promotes the fruit disease incidence.


Subject(s)
Arachis , Fruit , Microbiota , Plant Diseases , Plant Roots , RNA, Ribosomal, 16S , Soil Microbiology , Fruit/microbiology , Plant Diseases/microbiology , Plant Diseases/prevention & control , RNA, Ribosomal, 16S/genetics , Plant Roots/microbiology , Arachis/microbiology , Aspergillus/genetics , Aspergillus/isolation & purification , Bacillus/genetics , Bacillus/isolation & purification , Plant Growth Regulators/metabolism , Fungi/genetics , Fungi/classification , Fungi/isolation & purification , Bacteria/genetics , Bacteria/classification , Bacteria/isolation & purification
18.
Plant Physiol Biochem ; 211: 108699, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38749375

ABSTRACT

Climate change is currently considered as one of the main concerns of the agriculture sector, as it limits crop production and quality. Furthermore, the current context of global crisis with international political instability and war conflicts over the world is pushing the agriculture sector even more to urgently boost productivity and yield and doing so in a sustainable way in the current frame of climate change. Biostimulants can be an effective tool in alleviating the negative effects of environmental stresses to which plants are exposed, such as drought, salinity, heavy metals and extreme temperatures etc. Biostimulants act through multiple mechanisms, modifying gene expression, metabolism and phytohormone production, promoting the accumulation of compatible solutes and antioxidants and mitigating oxidative stress. However, it is important to keep in mind that the use and effect of biostimulants has limitations and must be accompanied by other techniques to ensure crop yield and quality in the current frame of climate change, such as proper crop management and the use of other sustainable resources. Here, we will not only highlight the potential use of biostimulants to face future agricultural challenges, but also take a critical look at their limitations, underlining the importance of a broad vision of sustainable agriculture in the context of climate change.


Subject(s)
Agriculture , Climate Change , Crops, Agricultural , Agriculture/methods , Crops, Agricultural/growth & development , Crops, Agricultural/metabolism , Plant Growth Regulators/metabolism
19.
Cells ; 13(10)2024 May 13.
Article in English | MEDLINE | ID: mdl-38786049

ABSTRACT

Plant structure-related agronomic traits like plant height and leaf size are critical for growth, development, and crop yield. Defining the types of genes involved in regulating plant structure size is essential for the molecular-assisted breeding of peppers. This research conducted comparative transcriptome analyses using Capsicum baccatum germplasm HNUCB0112 and HNUCB0222 and their F2 generation as materials. A total of 6574 differentially expressed genes (DEGs) were detected, which contain 379 differentially expressed transcription factors, mainly including transcription factor families such as TCP, WRKY, AUX/IAA, and MYB. Seven classes of DEGs were annotated in the plant hormone signal transduction pathway, including indole acetic acid (IAA), gibberellin (GA), cytokinin (CK), abscisic acid (ABA), jasmonic acid (JA), ethylene (ET), and salicylic acid (SA). The 26 modules were obtained by WGCNA analysis, and the MEpink module was positively correlated with plant height and leaf size, and hub genes associated with plant height and leaf size were anticipated. Differential genes were verified by qRT-PCR, which was consistent with the RNA-Seq results, demonstrating the accuracy of the sequencing results. These results enhance our understanding of the developmental regulatory networks governing pepper key traits like plant height and leaf size and offer new information for future research on the pepper plant architecture system.


Subject(s)
Capsicum , Gene Expression Regulation, Plant , Plant Growth Regulators , Plant Leaves , Signal Transduction , Transcriptome , Capsicum/genetics , Capsicum/growth & development , Capsicum/anatomy & histology , Plant Growth Regulators/metabolism , Plant Growth Regulators/genetics , Plant Leaves/genetics , Plant Leaves/anatomy & histology , Plant Leaves/growth & development , Plant Leaves/metabolism , Transcriptome/genetics , Signal Transduction/genetics , Metabolome/genetics , Gene Expression Profiling , Genes, Plant , Plant Proteins/genetics , Plant Proteins/metabolism
20.
Planta ; 260(1): 9, 2024 May 25.
Article in English | MEDLINE | ID: mdl-38795149

ABSTRACT

MAIN CONCLUSION: The secondary metabolic conversion of monolignans to sesquilignans/dilignans was closely related to seed germination and seedling establishment in Arctium lappa. Arctium lappa plants are used as a kind of traditional Chinese medicines for nearly 1500 years, and so far, only a few studies have put focus on the key secondary metabolic changes during seed germination and seedling establishment. In the current study, a combined approach was used to investigate the correlation among secondary metabolites, plant hormone signaling, and transcriptional profiles at the early critical stages of A. lappa seed germination and seedling establishment. Of 50 metabolites in methonolic extracts of A. lappa samples, 35 metabolites were identified with LC-MS/MS and 15 metabolites were identified with GC-MS. Their qualitative properties were examined according to the predicted chemical structures. The quantitative analysis was performed for deciphering their metabolic profiles, discovering that the secondary metabolic conversion from monolignans to sesquilignans/dilignans was closely correlated to the initiation of A. lappa seed germination and seedling establishment. Furthermore, the critical transcriptional changes in primary metabolisms, translational regulation at different cellular compartments, and multiple plant hormone signaling pathways were revealed. In addition, the combined approach provides unprecedented insights into key regulatory mechanisms in both gene transcription and secondary metabolites besides many known primary metabolites during seed germination of an important traditional Chinese medicinal plant species. The results not only provide new insights to understand the regulation of key medicinal components of 'ARCTII FRUCTUS', arctiin and arctigenin at the stages of seed germination and seedling establishment, but also potentially spur the development of seed-based cultivation in A. lappa plants.


Subject(s)
Arctium , Germination , Lignans , Seeds , Arctium/genetics , Arctium/metabolism , Seeds/genetics , Seeds/growth & development , Seeds/metabolism , Lignans/metabolism , Seedlings/genetics , Seedlings/growth & development , Seedlings/metabolism , Gene Expression Regulation, Plant , Tandem Mass Spectrometry , Lignin/metabolism , Plant Growth Regulators/metabolism , Gas Chromatography-Mass Spectrometry , Secondary Metabolism
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