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1.
Plant Cell ; 36(8): 2834-2850, 2024 Jul 31.
Article in English | MEDLINE | ID: mdl-38701348

ABSTRACT

Salt stress is an environmental factor that limits plant growth and crop production. With the rapid expansion of salinized arable land worldwide, investigating the molecular mechanisms underlying the salt stress response in plants is urgently needed. Here, we report that GROWTH REGULATING FACTOR 7 (OsGRF7) promotes salt tolerance by regulating arbutin (hydroquinone-ß-D-glucopyranoside) metabolism in rice (Oryza sativa). Overexpression of OsGRF7 increased arbutin content, and exogenous arbutin application rescued the salt-sensitive phenotype of OsGRF7 knockdown and knockout plants. OsGRF7 directly promoted the expression of the arbutin biosynthesis genes URIDINE DIPHOSPHATE GLYCOSYLTRANSFERASE 1 (OsUGT1) and OsUGT5, and knockout of OsUGT1 or OsUGT5 reduced rice arbutin content, salt tolerance, and grain size. Furthermore, OsGRF7 degradation through its interaction with F-BOX AND OTHER DOMAINS CONTAINING PROTEIN 13 reduced rice salinity tolerance and grain size. These findings highlight an underexplored role of OsGRF7 in modulating rice arbutin metabolism, salt stress response, and grain size, as well as its broad potential use in rice breeding.


Subject(s)
Arbutin , Gene Expression Regulation, Plant , Oryza , Plant Proteins , Salt Tolerance , Oryza/genetics , Oryza/metabolism , Oryza/physiology , Oryza/drug effects , Oryza/growth & development , Salt Tolerance/genetics , Plant Proteins/metabolism , Plant Proteins/genetics , Arbutin/metabolism , Arbutin/pharmacology , Plants, Genetically Modified , Salt Stress
2.
Plant Physiol ; 195(3): 1969-1980, 2024 Jun 28.
Article in English | MEDLINE | ID: mdl-38446735

ABSTRACT

Root angle is a critical factor in optimizing the acquisition of essential resources from different soil depths. The regulation of root angle relies on the auxin-mediated root gravitropism machinery. While the influence of ethylene on auxin levels is known, its specific role in governing root gravitropism and angle remains uncertain, particularly when Arabidopsis (Arabidopsis thaliana) core ethylene signaling mutants show no gravitropic defects. Our research, focusing on rice (Oryza sativa L.) and maize (Zea mays), clearly reveals the involvement of ethylene in root angle regulation in cereal crops through the modulation of auxin biosynthesis and the root gravitropism machinery. We elucidated the molecular components by which ethylene exerts its regulatory effect on auxin biosynthesis to control root gravitropism machinery. The ethylene-insensitive mutants ethylene insensitive2 (osein2) and ethylene insensitive like1 (oseil1), exhibited substantially shallower crown root angle compared to the wild type. Gravitropism assays revealed reduced root gravitropic response in these mutants. Hormone profiling analysis confirmed decreased auxin levels in the root tips of the osein2 mutant, and exogenous auxin (NAA) application rescued root gravitropism in both ethylene-insensitive mutants. Additionally, the auxin biosynthetic mutant mao hu zi10 (mhz10)/tryptophan aminotransferase2 (ostar2) showed impaired gravitropic response and shallow crown root angle phenotypes. Similarly, maize ethylene-insensitive mutants (zmein2) exhibited defective gravitropism and root angle phenotypes. In conclusion, our study highlights that ethylene controls the auxin-dependent root gravitropism machinery to regulate root angle in rice and maize, revealing a functional divergence in ethylene signaling between Arabidopsis and cereal crops. These findings contribute to a better understanding of root angle regulation and have implications for improving resource acquisition in agricultural systems.


Subject(s)
Ethylenes , Gravitropism , Indoleacetic Acids , Oryza , Plant Roots , Zea mays , Ethylenes/metabolism , Indoleacetic Acids/metabolism , Gravitropism/drug effects , Gravitropism/physiology , Plant Roots/drug effects , Plant Roots/growth & development , Plant Roots/physiology , Plant Roots/genetics , Oryza/genetics , Oryza/physiology , Oryza/drug effects , Oryza/growth & development , Zea mays/drug effects , Zea mays/genetics , Zea mays/physiology , Zea mays/growth & development , Edible Grain/drug effects , Edible Grain/physiology , Edible Grain/growth & development , Edible Grain/genetics , Crops, Agricultural/genetics , Crops, Agricultural/growth & development , Crops, Agricultural/physiology , Mutation/genetics , Gene Expression Regulation, Plant/drug effects , Arabidopsis/genetics , Arabidopsis/physiology , Arabidopsis/drug effects , Arabidopsis/growth & development , Plant Proteins/metabolism , Plant Proteins/genetics
3.
BMC Plant Biol ; 24(1): 569, 2024 Jun 18.
Article in English | MEDLINE | ID: mdl-38886652

ABSTRACT

BACKGROUND: Changing climate is causing erratic rainfall and prolonged drought periods, thus posing serious threats to crop productivity. Owing to severity of drought events, it is imperative to take proactive measures to enhance the resilience of drought sensitive crops like rice. Therefore, the present study was carried out to improve the drought stress tolerance in rice through gamma amino butyric acid (GABA) application. METHODS: The experiment was included four GABA concentrations i.e., 0 mM as control, 1 mM, 1.5 mM, and 2 mM, two water levels i.e., 100% and 50% field capacity (referred as FC100 for well-watered and FC50 for drought conditions, respectively), and two fragrant rice cultivars i.e., Super Basmati and Basmati-515. RESULTS: The findings unveiled a comprehensive improvement in various parameters with GABA application in fragrant rice under both well-watered (FC100) and water-limited (FC50) conditions, compared to the control. Specifically, GABA induced enhancements were observed in plant height, root length, fresh weight, dry weight, total soluble protein content, and total free amino acid content across both cultivars. Moreover, GABA application significantly improved peroxidase (POD) and catalase (CAT) enzyme activities, alongside elevating anthocyanin levels, while concurrently reducing H2O2 contents in both FC100 and FC50 treatments. Furthermore, the positive impact of GABA extended to morphological traits, with notable increases in panicle length, total tillers and productive tillers per hill, branch and grain numbers per panicle, and 1000-grain weight for Super Basmati and Basmati 515 cultivars under both water regimes, compared to Ck. Similarly, the grain yield increased by 31.01% and 27.32% under FC100 and 36.85% and 27.71% under FC50 in Super Basmati and Basmati-515, respectively, in response to GABA application, compared to Ck. Additionally, principal component analysis (PCA) revealed significant variances attributed to Dim1 and Dim2, with 86.1% and 4.0% of the variance, respectively, across three bi-plots encompassing rice cultivars, water levels, and GABA treatments. Notably, all tested indices, except for H2O2 and non-productive tillers per hill, exhibited positive correlations amongst themselves and with rice yield, further emphasizing the beneficial effects of GABA application on fragrant rice under well-watered and drought conditions. CONCLUSIONS: GABA significantly improved fragrant rice performance under both well-watered (FC100) and water-limited (FC50) conditions. Moreover, integrating GABA application into rice cultivation practices could not only improve the crop resilience to drought stress but also potentially benefiting the future food and nutritional security globally. However, however; further research is needed to understand the cellular and molecular mechanisms of the functionality of GABA in fragrant rice, particularly under drought conditions.


Subject(s)
Droughts , Oryza , gamma-Aminobutyric Acid , Oryza/physiology , Oryza/growth & development , Oryza/drug effects , Oryza/metabolism , gamma-Aminobutyric Acid/metabolism , Water/metabolism
4.
BMC Plant Biol ; 24(1): 618, 2024 Jun 28.
Article in English | MEDLINE | ID: mdl-38937693

ABSTRACT

In acidic soils, aluminum (Al) toxicity inhibits the growth and development of plant roots and affects nutrient and water absorption, leading to reduced yield and quality. Therefore, it is crucial to investigate and identify candidate genes for Al tolerance and elucidate their physiological and molecular mechanisms under Al stress. In this study, we identified a new gene OsAlR3 regulating Al tolerance, and analyzed its mechanism from physiological, transcriptional and metabolic levels. Compared with the WT, malondialdehyde (MDA) and hydrogen peroxide (H2O2) content were significantly increased, superoxide dismutase (SOD) activity and citric acid (CA) content were significantly decreased in the osalr3 mutant lines when exposed to Al stress. Under Al stress, the osalr3 exhibited decreased expression of antioxidant-related genes and lower organic acid content compared with WT. Integrated transcriptome and metabolome analysis showed the phenylpropanoid biosynthetic pathway plays an important role in OsAlR3-mediated Al tolerance. Exogenous CA and oxalic acid (OA) could increase total root length and enhance the antioxidant capacity in the mutant lines under Al stress. Conclusively, we found a new gene OsAlR3 that positively regulates Al tolerance by promoting the chelation of Al ions through the secretion of organic acids, and increasing the expression of antioxidant genes.


Subject(s)
Aluminum , Antioxidants , Gene Expression Regulation, Plant , Oryza , Aluminum/toxicity , Oryza/genetics , Oryza/metabolism , Oryza/drug effects , Oryza/physiology , Antioxidants/metabolism , Gene Expression Regulation, Plant/drug effects , Plant Proteins/genetics , Plant Proteins/metabolism , Citric Acid/metabolism , Plant Roots/genetics , Plant Roots/drug effects , Plant Roots/metabolism , Genes, Plant
5.
BMC Plant Biol ; 24(1): 786, 2024 Aug 20.
Article in English | MEDLINE | ID: mdl-39160481

ABSTRACT

BACKGROUND: Rice is a staple crop for over half of the global population, but soil salinization poses a significant threat to its production. As a type of polyamine, spermidine (Spd) has been shown to reduce stress-induced damage in plants, but its specific role and mechanism in protecting rice roots under salt stress require further investigation. RESULTS: This study suggested spermidine (Spd) mitigates salt stress on rice root growth by enhancing antioxidant enzyme activity and reducing peroxide levels. Transcriptomic analysis showed that salt stress caused 333 genes to be upregulated and 1,765 to be downregulated. However, adding Spd during salt treatment significantly altered this pattern: 2,298 genes were upregulated and 844 were downregulated, which indicated Spd reverses some transcriptional changes caused by salt stress. KEGG pathway analysis suggested that Spd influenced key signaling pathways, including MAPK signaling, plant hormone signal transduction, and phenylalanine metabolism. Additionally, the bZIP transcription factor OsbZIP73 was upregulated after Spd treatment, which is confirmed by Western blot. Further insights into the interaction between OsbZIP73 and Spd were gained through fluorescence polarization experiments, showing that Spd enhances protein OsbZIP73's affinity for RNA. Functional enrichment analyses revealed that OsPYL1, OsSPARK1, and various SAUR family genes involved in Spd-affected pathways. The presence of G/A/C-box elements in these genes suggests they are potential targets for OsbZIP73. CONCLUSIONS: Our findings suggest a strategy of using spermidine as a chemical alleviator for salt stress and provide insights into the regulatory function of OsbZIP73 in mitigating salt stress in rice roots.


Subject(s)
Oryza , Plant Proteins , Plant Roots , Salt Stress , Spermidine , Oryza/genetics , Oryza/metabolism , Oryza/drug effects , Oryza/physiology , Spermidine/metabolism , Plant Roots/genetics , Plant Roots/metabolism , Plant Roots/drug effects , Salt Stress/genetics , Plant Proteins/genetics , Plant Proteins/metabolism , Gene Expression Regulation, Plant/drug effects , RNA-Binding Proteins/genetics , RNA-Binding Proteins/metabolism
6.
BMC Plant Biol ; 24(1): 703, 2024 Jul 25.
Article in English | MEDLINE | ID: mdl-39054445

ABSTRACT

BACKGROUND: Fulvic acid enhances plant growth and interacts synergistically with phosphate fertilizer to alleviate the agricultural production problem of low phosphorus fertilizer utilization efficiency. However, the underlying mechanism of its action remains poorly understood. In this study, we investigated the impact of fulvic acid application with varying concentrations (0, 40, 60, 80 and 120 mg/L) on rice performance in plants grown in a hydroponic system subjected to low phosphorus stress. The rice growth phenotypes, biomass, root morphology, phosphorus uptake, and the impact of fulvic acid on the rhizosphere environment of rice, were assessed. RESULTS: The findings showed that adding appropriate concentrations of exogenous fulvic acid could promote the growth performance of rice under low phosphorus stress. Particularly at T1 (40 mg/L) and T2 (60 mg/L) over the control effectively increased rice biomass by 25.42% and 24.56%, respectively. Fulvic acid treatments stimulated root morphogenesis, up-regulated phosphate transporter genes, and facilitated phosphorus absorption and accumulation. Especially T1 (20.52%), T2 (18.10%) and T3 (20.48%) treatments significantly increased phosphorus uptake in rice, thereby alleviating low phosphorus stress. Additionally, fulvic acid elevated organic acids concentration in roots and up-regulated plasma membrane H+-ATPase genes, promoting organic acids secretion. This metabolic alteration can also alleviate low phosphorus stress in rice. CONCLUSIONS: The effect of exogenous fulvic acid on physiological indicators is concentration-dependent under low phosphorus stress, enhances rice performance and reduces reliance on phosphorus fertilizer. This provides new insights to shed light on the mechanism of alleviating low phosphorus stress in rice through fulvic acid application, an eco-friendly tool.


Subject(s)
Benzopyrans , Oryza , Phosphorus , Seedlings , Oryza/drug effects , Oryza/growth & development , Oryza/metabolism , Phosphorus/metabolism , Benzopyrans/pharmacology , Seedlings/drug effects , Seedlings/growth & development , Seedlings/metabolism , Stress, Physiological/drug effects , Plant Roots/drug effects , Plant Roots/growth & development , Plant Roots/metabolism , Fertilizers , Rhizosphere , Hydroponics
7.
BMC Plant Biol ; 24(1): 464, 2024 May 27.
Article in English | MEDLINE | ID: mdl-38802756

ABSTRACT

Saline-sodic stress can limit the absorption of available zinc in rice, subsequently impacting the normal photosynthesis and carbohydrate metabolism of rice plants. To investigate the impact of exogenous zinc application on photosynthesis and carbohydrate metabolism in rice grown in saline-sodic soil, this study simulated saline-sodic stress conditions using two rice varieties, 'Changbai 9' and 'Tonghe 899', as experimental materials. Rice seedlings at 4 weeks of age underwent various treatments including control (CT), 2 µmol·L-1 zinc treatment alone (Z), 50 mmol·L-1 saline-sodic treatment (S), and 50 mmol·L-1 saline-sodic treatment with 2 µmol·L-1 zinc (Z + S). We utilized JIP-test to analyze the variations in excitation fluorescence and MR820 signal in rice leaves resulting from zinc supplementation under saline-sodic stress, and examined the impact of zinc supplementation on carbohydrate metabolism in both rice leaves and roots under saline-sodic stress. Research shows that zinc increased the chloroplast pigment content, specific energy flow, quantum yield, and performance of active PSII reaction centers (PIABS), as well as the oxidation (VOX) and reduction rate (Vred) of PSI in rice leaves under saline-sodic stress. Additionally, it decreased the relative variable fluorescence (WK and VJ) and quantum energy dissipation yield (φDO) of the rice. Meanwhile, zinc application can reduce the content of soluble sugars and starch in rice leaves and increasing the starch content in the roots. Therefore, the addition of zinc promotes electron and energy transfer in the rice photosystem under saline-sodic stress. It enhances rice carbohydrate metabolism, improving the rice plants' ability to withstand saline-sodic stress and ultimately promoting rice growth and development.


Subject(s)
Carbohydrate Metabolism , Chlorophyll , Oryza , Seedlings , Zinc , Oryza/metabolism , Oryza/drug effects , Zinc/metabolism , Seedlings/metabolism , Seedlings/drug effects , Carbohydrate Metabolism/drug effects , Chlorophyll/metabolism , Fluorescence , Photosynthesis/drug effects , Plant Leaves/metabolism , Plant Leaves/drug effects
8.
BMC Plant Biol ; 24(1): 360, 2024 May 03.
Article in English | MEDLINE | ID: mdl-38698342

ABSTRACT

BACKGROUND: Cadmium (Cd) pollution has declined crop yields and quality. Selenium (Se) is a beneficial mineral element that protects plants from oxidative damage, thereby improving crop tolerance to heavy metals. The molecular mechanism of Se-induced Cd tolerance in rice (Oryza sativa) is not yet understood. This study aimed to elucidate the beneficial mechanism of Se (1 mg/kg) in alleviating Cd toxicity in rice seedlings. RESULTS: Exogenous selenium addition significantly improved the toxic effect of cadmium stress on rice seedlings, increasing plant height and fresh weight by 20.53% and 34.48%, respectively, and increasing chlorophyll and carotenoid content by 16.68% and 15.26%, respectively. Moreover, the MDA, ·OH, and protein carbonyl levels induced by cadmium stress were reduced by 47.65%, 67.57%, and 56.43%, respectively. Cell wall metabolism, energy cycling, and enzymatic and non-enzymatic antioxidant systems in rice seedlings were significantly enhanced. Transcriptome analysis showed that the expressions of key functional genes psbQ, psbO, psaG, psaD, atpG, and PetH were significantly up-regulated under low-concentration Se treatment, which enhanced the energy metabolism process of photosystem I and photosystem II in rice seedlings. At the same time, the up-regulation of LHCA, LHCB family, and C4H1, PRX, and atp6 functional genes improved the ability of photon capture and heavy metal ion binding in plants. Combined with proteome analysis, the expression of functional proteins OsGSTF1, OsGSTU11, OsG6PDH4, OsDHAB1, CP29, and CabE was significantly up-regulated under Se, which enhanced photosynthesis and anti-oxidative stress mechanism in rice seedlings. At the same time, it regulates the plant hormone signal transduction pathway. It up-regulates the expression response process of IAA, ABA, and JAZ to activate the synergistic effect between each cell rapidly and jointly maintain the homeostasis balance. CONCLUSION: Our results revealed the regulation process of Se-mediated critical metabolic pathways, functional genes, and proteins in rice under cadmium stress. They provided insights into the expression rules and dynamic response process of the Se-mediated plant resistance mechanism. This study provided the theoretical basis and technical support for crop safety in cropland ecosystems and cadmium-contaminated areas.


Subject(s)
Cadmium , Oryza , Plant Proteins , Proteomics , Seedlings , Selenium , Oryza/genetics , Oryza/metabolism , Oryza/drug effects , Selenium/pharmacology , Cadmium/toxicity , Seedlings/genetics , Seedlings/drug effects , Seedlings/metabolism , Plant Proteins/genetics , Plant Proteins/metabolism , Gene Expression Regulation, Plant/drug effects , Stress, Physiological/genetics , Stress, Physiological/drug effects , Gene Expression Profiling , Transcriptome , Genes, Plant
9.
Planta ; 259(6): 148, 2024 May 08.
Article in English | MEDLINE | ID: mdl-38717679

ABSTRACT

MAIN CONCLUSION: Mutation of OsSHR2 adversely impacted root and shoot growth and impaired plant response to N conditions, further reducing the yield per plant. Nitrogen (N) is a crucial factor that regulates the plant architecture. There is still a lack of research on it. In our study, it was observed that the knockout of the SHORTROOT 2 (OsSHR2) which was induced by N deficiency, can significantly affect the regulation of plant architecture response to N in rice. Under N deficiency, the mutation of OsSHR2 significantly reduced root growth, and impaired the sensitivity of the root meristem length to N deficiency. The mutants were found to have approximately a 15% reduction in plant height compared to wild type. But mutants showed a significant increase in tillering at post-heading stage, approximately 26% more than the wild type, particularly in high N conditions. In addition, due to reduced seed setting rate and 1000-grain weight, mutant yield was significantly decreased by approximately 33% under low N fertilizer supply. The mutation also changed the distribution of N between the vegetative and reproductive organs. Our findings suggest that the transcription factor OsSHR2 plays a regulatory role in the response of plant architecture and yield per plant to N in rice.


Subject(s)
Gene Expression Regulation, Plant , Nitrogen , Oryza , Transcription Factors , Gene Expression Regulation, Plant/drug effects , Meristem/genetics , Meristem/growth & development , Meristem/drug effects , Mutation , Nitrogen/metabolism , Nitrogen/pharmacology , Oryza/genetics , Oryza/growth & development , Oryza/metabolism , Oryza/drug effects , Plant Proteins/genetics , Plant Proteins/metabolism , Plant Roots/growth & development , Plant Roots/genetics , Plant Roots/drug effects , Plant Roots/metabolism , Transcription Factors/genetics , Transcription Factors/metabolism
10.
New Phytol ; 243(5): 1742-1757, 2024 Sep.
Article in English | MEDLINE | ID: mdl-38934055

ABSTRACT

Climate warming poses a significant threat to global crop production and food security. However, our understanding of the molecular mechanisms governing thermoresponsive development in crops remains limited. Here we report that the auxiliary subunit of N-terminal acetyltransferase A (NatA) in rice OsNAA15 is a prerequisite for rice thermoresponsive growth. OsNAA15 produces two isoforms OsNAA15.1 and OsNAA15.2, via temperature-dependent alternative splicing. Among the two, OsNAA15.1 is more likely to form a stable and functional NatA complex with the potential catalytic subunit OsNAA10, leading to a thermoresponsive N-terminal acetylome. Intriguingly, while OsNAA15.1 promotes plant growth under elevated temperatures, OsNAA15.2 exhibits an inhibitory effect. We identified two glycolate oxidases (GLO1/5) as major substrates from the thermoresponsive acetylome. These enzymes are involved in hydrogen peroxide (H2O2) biosynthesis via glycolate oxidation. N-terminally acetylated GLO1/5 undergo their degradation through the ubiquitin-proteasome system. This leads to reduced reactive oxygen species (ROS) production, thereby promoting plant growth, particularly under high ambient temperatures. Conclusively, our findings highlight the pivotal role of N-terminal acetylation in orchestrating the glycolate-mediated ROS homeostasis to facilitate thermoresponsive growth in rice.


Subject(s)
Glycolates , Homeostasis , Oryza , Plant Proteins , Reactive Oxygen Species , Temperature , Oryza/metabolism , Oryza/growth & development , Oryza/drug effects , Oryza/genetics , Acetylation , Reactive Oxygen Species/metabolism , Plant Proteins/metabolism , Plant Proteins/genetics , Glycolates/metabolism , Hydrogen Peroxide/metabolism , Proteolysis/drug effects , Gene Expression Regulation, Plant/drug effects , Alcohol Oxidoreductases/metabolism
11.
New Phytol ; 243(4): 1440-1454, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38923565

ABSTRACT

Rice tillering is one of the most important agronomical traits largely determining grain yield. Photosynthesis and nitrogen availability are two important factors affecting rice tiller bud elongation; however, underlying mechanism and their cross-talk is poorly understood. Here, we used map-based cloning, transcriptome profiling, phenotypic analysis, and molecular genetics to understand the roles of the Decreased Tiller Number 1 (DTN1) gene that encodes the fructose-1,6-bisphosphate aldolase and involves in photosynthesis required for light-induced axillary bud elongation in rice. Deficiency of DTN1 results in the reduced photosynthetic rate and decreased contents of sucrose and other sugars in both leaves and axillary buds, and the reduced tiller number in dtn1 mutant could be partially rescued by exogenous sucrose treatment. Furthermore, we found that the expression of nitrogen-mediated tiller growth response 5 (NGR5) was remarkably decreased in shoot base of dtn1-2, which can be activated by sucrose treatment. Overexpression of NGR5 in the dtn1-2 could partially rescue the reduced tiller number, and the tiller number of dtn1-2 was insensitive to nitrogen supply. This work demonstrated that the sugar level regulated by photosynthesis and DTN1 could positively regulate NGR5 expression, which coordinates the cross-talk between carbon and nitrate to control tiller bud outgrowth in rice.


Subject(s)
Gene Expression Regulation, Plant , Nitrogen , Oryza , Photosynthesis , Plant Proteins , Oryza/genetics , Oryza/growth & development , Oryza/drug effects , Oryza/metabolism , Photosynthesis/drug effects , Nitrogen/metabolism , Nitrogen/pharmacology , Plant Proteins/metabolism , Plant Proteins/genetics , Gene Expression Regulation, Plant/drug effects , Sucrose/metabolism , Sucrose/pharmacology , Sugars/metabolism , Mutation/genetics , Genes, Plant , Phenotype , Plant Leaves/drug effects , Plant Leaves/metabolism , Plant Leaves/growth & development , Plant Shoots/growth & development , Plant Shoots/drug effects , Plant Shoots/metabolism
12.
New Phytol ; 242(6): 2604-2619, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38563391

ABSTRACT

Soil contamination with arsenic (As) can cause phytotoxicity and reduce crop yield. The mechanisms of As toxicity and tolerance are not fully understood. In this study, we used a forward genetics approach to isolate a rice mutant, ahs1, that exhibits hypersensitivity to both arsenate and arsenite. Through genomic resequencing and complementation tests, we identified OsLPD1 as the causal gene, which encodes a putative lipoamide dehydrogenase. OsLPD1 was expressed in the outer cell layer of roots, root meristem cells, and in the mesophyll and vascular tissues of leaves. Subcellular localization and immunoblot analysis demonstrated that OsLPD1 is localized in the stroma of plastids. In vitro assays showed that OsLPD1 exhibited lipoamide dehydrogenase (LPD) activity, which was strongly inhibited by arsenite, but not by arsenate. The ahs1 and OsLPD1 knockout mutants exhibited significantly reduced NADH/NAD+ and GSH/GSSG ratios, along with increased levels of reactive oxygen species and greater oxidative stress in the roots compared with wild-type (WT) plants under As treatment. Additionally, loss-of-function of OsLPD1 also resulted in decreased fatty acid concentrations in rice grain. Taken together, our finding reveals that OsLPD1 plays an important role for maintaining redox homeostasis, conferring tolerance to arsenic stress, and regulating fatty acid biosynthesis in rice.


Subject(s)
Arsenic , Dihydrolipoamide Dehydrogenase , Fatty Acids , Homeostasis , Oryza , Plant Proteins , Stress, Physiological , Adaptation, Physiological/drug effects , Adaptation, Physiological/genetics , Arsenic/toxicity , Arsenites/toxicity , Dihydrolipoamide Dehydrogenase/metabolism , Dihydrolipoamide Dehydrogenase/genetics , Fatty Acids/biosynthesis , Gene Expression Regulation, Plant/drug effects , Mutation/genetics , Oryza/genetics , Oryza/drug effects , Oryza/metabolism , Oxidation-Reduction/drug effects , Oxidative Stress/drug effects , Plant Proteins/metabolism , Plant Proteins/genetics , Plant Roots/drug effects , Plant Roots/metabolism , Plastids/metabolism , Plastids/drug effects , Reactive Oxygen Species/metabolism , Stress, Physiological/drug effects , Stress, Physiological/genetics
13.
Plant Cell ; 33(5): 1790-1812, 2021 07 02.
Article in English | MEDLINE | ID: mdl-33630095

ABSTRACT

Calcium (Ca2+)/calmodulin (CaM)-dependent protein kinase (CCaMK) is an important positive regulator of abscisic acid (ABA) and abiotic stress signaling in plants and is believed to act upstream of mitogen-activated protein kinase (MAPK) in ABA signaling. However, it is unclear how CCaMK activates MAPK in ABA signaling. Here, we show that OsDMI3, a rice (Oryza sativa) CCaMK, directly interacts with and phosphorylates OsMKK1, a MAPK kinase (MKK) in rice, in vitro and in vivo. OsDMI3 was found to directly phosphorylate Thr-25 in the N-terminus of OsMKK1, and this Thr-25 phosphorylation is OsDMI3-specific in ABA signaling. The activation of OsMKK1 and its downstream kinase OsMPK1 is dependent on Thr-25 phosphorylation of OsMKK1 in ABA signaling. Moreover, ABA treatment induces phosphorylation in the activation loop of OsMKK1, and the two phosphorylations, in the N-terminus and in the activation loop, are independent. Further analyses revealed that OsDMI3-mediated phosphorylation of OsMKK1 positively regulates ABA responses in seed germination, root growth, and tolerance to both water stress and oxidative stress. Our results indicate that OsMKK1 is a direct target of OsDMI3, and OsDMI3-mediated phosphorylation of OsMKK1 plays an important role in activating the MAPK cascade and ABA signaling.


Subject(s)
Abscisic Acid/metabolism , Calcium-Calmodulin-Dependent Protein Kinases/metabolism , Calcium/metabolism , Mitogen-Activated Protein Kinase Kinases/metabolism , Oryza/enzymology , Plant Proteins/metabolism , Abscisic Acid/pharmacology , Mitogen-Activated Protein Kinase Kinases/chemistry , Models, Biological , Oryza/drug effects , Oryza/physiology , Oxidative Stress/drug effects , Phosphorylation/drug effects , Phosphothreonine/metabolism , Protein Binding/drug effects , Signal Transduction/drug effects , Stress, Physiological/drug effects , Water
14.
PLoS Biol ; 19(4): e3001190, 2021 04.
Article in English | MEDLINE | ID: mdl-33844686

ABSTRACT

Chemical insecticides have been heavily employed as the most effective measure for control of agricultural and medical pests, but evolution of resistance by pests threatens the sustainability of this approach. Resistance-conferring mutations sometimes impose fitness costs, which may drive subsequent evolution of compensatory modifier mutations alleviating the costs of resistance. However, how modifier mutations evolve and function to overcome the fitness cost of resistance still remains unknown. Here we show that overexpression of P450s not only confers imidacloprid resistance in the brown planthopper, Nilaparvata lugens, the most voracious pest of rice, but also leads to elevated production of reactive oxygen species (ROS) through metabolism of imidacloprid and host plant compounds. The inevitable production of ROS incurs a fitness cost to the pest, which drives the increase or fixation of the compensatory modifier allele T65549 within the promoter region of N. lugens peroxiredoxin (NlPrx) in the pest populations. T65549 allele in turn upregulates the expression of NlPrx and thus increases resistant individuals' ability to clear the cost-incurring ROS of any source. The frequent involvement of P450s in insecticide resistance and their capacity to produce ROS while metabolizing their substrates suggest that peroxiredoxin or other ROS-scavenging genes may be among the common modifier genes for alleviating the fitness cost of insecticide resistance.


Subject(s)
Hemiptera/drug effects , Insecticide Resistance/drug effects , Neonicotinoids/pharmacology , Nitro Compounds/pharmacology , Oryza/parasitology , Peroxiredoxins/physiology , Adaptation, Biological/drug effects , Adaptation, Biological/genetics , Alleles , Animals , Chromosome Mapping , Gene Expression Regulation, Enzymologic/drug effects , Genes, Insect/drug effects , Genes, Modifier/drug effects , Genes, Modifier/physiology , Genetic Association Studies , Genetic Fitness/drug effects , Hemiptera/physiology , Insecticide Resistance/genetics , Insecticides/pharmacology , Oryza/drug effects , Peroxiredoxins/genetics , Reactive Oxygen Species/metabolism , Toxicity Tests
15.
Environ Sci Technol ; 58(26): 11280-11291, 2024 Jul 02.
Article in English | MEDLINE | ID: mdl-38898567

ABSTRACT

Soil antibiotic pollution profoundly influences plant growth and photosynthetic performance, yet the main disturbed processes and the underlying mechanisms remain elusive. This study explored the photosynthetic toxicity of quinolone antibiotics across three generations on rice plants and clarified the mechanisms through experimental and computational studies. Marked variations across antibiotic generations were noted in their impact on rice photosynthesis with the level of inhibition intensifying from the second to the fourth generation. Omics analyses consistently targeted the light reaction phase of photosynthesis as the primary process impacted, emphasizing the particular vulnerability of photosystem II (PS II) to the antibiotic stress, as manifested by significant interruptions in the photon-mediated electron transport and O2 production. PS II center D2 protein (psbD) was identified as the primary target of the tested antibiotics, with the fourth-generation quinolones displaying the highest binding affinity to psbD. A predictive machine learning method was constructed to pinpoint antibiotic substructures that conferred enhanced affinity. As antibiotic generations evolve, the positive contribution of the carbonyl and carboxyl groups on the 4-quinolone core ring in the affinity interaction gradually intensified. This research illuminates the photosynthetic toxicities of antibiotics across generations, offering insights for the risk assessment of antibiotics and highlighting their potential threats to carbon fixation of agroecosystems.


Subject(s)
Anti-Bacterial Agents , Oryza , Photosynthesis , Photosystem II Protein Complex , Quinolones , Oryza/drug effects , Oryza/metabolism , Photosynthesis/drug effects , Anti-Bacterial Agents/pharmacology , Photosystem II Protein Complex/metabolism
16.
J Appl Microbiol ; 135(7)2024 Jul 02.
Article in English | MEDLINE | ID: mdl-38925655

ABSTRACT

AIMS: In this study, the antifungal efficacy and phytotoxicity of silica coated porous zinc oxide nanoparticle (SZNP) were analyzed as this nanocomposite was observed to be a suitable platform for slow release fungicides and has the promise to bring down the dosage of other agrochemicals as well. METHODS AND RESULTS: Loading and release kinetics of tricyclazole, a potent fungicide, were analyzed by measuring surface area (SBET) using Brunauer-Emmett-Teller (BET) isotherm and liquid chromatography tandem mass spectrometry (LC-MS/MS), respectively. The antifungal efficacy of ZnO nanoparticle (ZNP) and SZNP was investigated on two phytopathogenic fungi (Alternaria solani and Aspergillus niger). The morphological changes to the fungal structure due to ZNP and SZNP treatment were studied by field emission-scanning electron microscopy. Nanoparticle mediated elevation of reactive oxygen species (ROS) in fungal samples was detected by analyzing the levels of superoxide dismutase, catalase, thiol content, lipid peroxidation, and by 2,7-dichlorofluorescin diacetate assay. The phytotoxicity of these two nanostructures was assessed in rice plants by measuring primary plant growth parameters. Further, the translocation of the nanocomposite in the same plant model system was examined by checking the presence of fluorescein isothiocyanate tagged SZNP within the plant tissue. CONCLUSIONS: ZNP had superior antifungal efficacy than SZNP and caused the generation of more ROS in the fungal samples. Even then, SZNP was preferred as an agrochemical delivery vehicle because, unlike ZNP alone, it was not toxic to plant system. Moreover, as silica in nanoform is entomotoxic in nature and nano ZnO has antifungal property, both the cargo (agrochemical) and the carrier system (silica coated porous nano zinc oxide) will have a synergistic effect in crop protection.


Subject(s)
Antifungal Agents , Nanocomposites , Silicon Dioxide , Zinc Oxide , Zinc Oxide/pharmacology , Nanocomposites/toxicity , Silicon Dioxide/pharmacology , Silicon Dioxide/chemistry , Antifungal Agents/pharmacology , Agrochemicals/pharmacology , Aspergillus niger/drug effects , Aspergillus niger/growth & development , Oryza/microbiology , Oryza/growth & development , Oryza/drug effects , Fungicides, Industrial/pharmacology , Porosity , Plant Diseases/microbiology , Plant Diseases/prevention & control , Delayed-Action Preparations , Reactive Oxygen Species/metabolism
17.
Environ Res ; 251(Pt 1): 118635, 2024 Jun 15.
Article in English | MEDLINE | ID: mdl-38462083

ABSTRACT

Carbon nanosol (CNS) is a carbon-based nanomaterial capable of promoting plant growth while the underlying mechanism involved in this process remains unknown. This study demonstrates that CNS promotes rice seedling growth under restricted concentrations. Macroelement transporter mutants were investigated to further investigate the CNS-mediated promotion of rice seedling growth. The genetic and physiological findings revealed that nitrate transporter 1.1B (NRT1.1B) and ammonium transporter 1 (AMT1) mutants inhibited the CNS-induced growth development of rice seedlings, whereas potassium transporter (AKT1) and phosphate transporter 8 (PT8) did not exhibit any inhibitory effects. Further investigations demonstrated the inhibition of CNS-mediated growth promotion via glutamine synthetase 1;1 (gs1;1) mutants. Additionally, the administration of CNS resulted in enhanced accumulation of chlorophyll in plants, and the promotion of CNS-induced growth was inhibited by yellow-green leaf 8 (YGL8) mutants and the chlorophyll biosynthetic gene divinyl reductase (DVR) mutants. According to these findings, the CNS promotes plant growth by stimulating chlorophyll biosynthesis. Furthermore, the presence of CNS enhanced the ability of rice to withstand blast, sheath blight (ShB), and bacterial blight. The nrt1.1b, amt1, dvr, and ygl8 mutants did not exhibit a broad spectrum effect. The positive regulation of broad-spectrum resistance in rice by GS1;1 suggests the requirement of N assimilation for CNS-mediated broad-spectrum resistance. In addition, an in vitro assay demonstrated that CNS inhibits the growth of pathogens responsible for blast, ShB, and bacterial blight, namely Magnaporthe oryzae, Rhizoctonia solani AG1-IA, and Xanthomonas oryzae pv. Oryzae, respectively. CNS application may also induce broad-spectrum resistance against bacterial and fungal pathogens, indicating that in addition to its antifungal and antibacterial properties, CNS application may also stimulate N assimilation. Collectively, the results indicate that CNS may be a potential nano-therapeutic agent for improved plant growth promotion while also providing broad-spectrum resistance.


Subject(s)
Carbon , Oryza , Oryza/microbiology , Oryza/growth & development , Oryza/drug effects , Oryza/genetics , Carbon/metabolism , Plant Diseases/microbiology , Plant Diseases/prevention & control , Chlorophyll/metabolism , Seedlings/growth & development , Seedlings/drug effects , Seedlings/microbiology , Disease Resistance/drug effects
18.
Plant Cell Rep ; 43(8): 199, 2024 Jul 22.
Article in English | MEDLINE | ID: mdl-39039362

ABSTRACT

KEY MESSAGE: Metabolomic and transcriptomic analyses revealed an intensification of energy metabolism in rice grains under DMA stress, possibly causing the consumption of sugars or non-sugars and the development of unfilled grains Excessive dimethylarsinic acid (DMA) causes rice straighthead disease, a physiological disorder typically with erect panicle due to empty grain at maturity. Although the toxicity of DMA and its uptake and transport in rice are well recognized, the underlying mechanism of unfilled grains remains unclear. Therefore, a pot experiment was conducted using a susceptible variety (Ruanhuayou1179, RHY) and a resistant one (Nanjingxiangzhan, NJXZ) via the metabolomic and transcriptomic approaches to explore the mechanisms of empty grains in diseased rice under DMA stress. The results demonstrate an increase in total and methylated As in grains of RHY and NJXZ under DMA addition, with RHY containing higher levels of DMA. DMA addition increased the soluble sugar content in grains of RHY and NJXZ by 17.1% and 14.3% compared to the control, respectively, but significantly reduced the levels of amino acid, soluble protein, and starch. The decrease of grain Zn and B contents was also observed, and inadequate Zn might be a key factor limiting rice grain yield under DMA stress. Notably, DMA addition altered the expression levels of genes involved in the transport of sugar, amino acids, nitrates/peptides, and mineral ions. In sugar and amino acid metabolism, the reduction of metabolites and the upregulated expression of genes reflect positive regulation at the level of energy metabolism, implying that the reduction of grain starch and proteins might be ascribed to generate sufficient energy to resist the stress. This study provides a useful reference for understanding the molecular mechanism of grain emptying under DMA stress.


Subject(s)
Amino Acids , Cacodylic Acid , Gene Expression Regulation, Plant , Oryza , Stress, Physiological , Oryza/genetics , Oryza/metabolism , Oryza/drug effects , Amino Acids/metabolism , Gene Expression Regulation, Plant/drug effects , Cacodylic Acid/metabolism , Edible Grain/metabolism , Edible Grain/genetics , Edible Grain/drug effects , Micronutrients/metabolism , Plant Proteins/metabolism , Plant Proteins/genetics , Zinc/metabolism
19.
Plant Cell Rep ; 43(7): 163, 2024 Jun 06.
Article in English | MEDLINE | ID: mdl-38842544

ABSTRACT

KEY MESSAGE: Calcium polypeptide plays a key role during cadmium stress responses in rice, which is involved in increasing peroxidase activity, modulating pectin methylesterase activity, and regulating cell wall by reducing malondialdehyde content. Cadmium (Cd) contamination threatens agriculture and human health globally, emphasizing the need for sustainable methods to reduce cadmium toxicity in crops. Calcium polypeptide (CaP) is a highly water-soluble small molecular peptide acknowledged for its potential as an organic fertilizer in promoting plant growth. However, it is still unknown whether CaP has effects on mitigating Cd toxicity. Here, we investigated the effect of CaP application on the ability to tolerate toxic Cd in rice. We evaluated the impact of CaP on rice seedlings under varying Cd stress conditions and investigated the effect mechanism of CaP mitigating Cd toxicity by Fourier transform infrared spectroscopy (FTIR), fluorescent probe dye, immunofluorescent labeling, and biochemical analysis. We found a notable alleviation of Cd toxicity by reduced malondialdehyde content and increased peroxidase activity. In addition, our findings reveal that CaP induces structural alterations in the root cell wall by modulating pectin methylesterase activity. Altogether, our results confirm that CaP not only promoted biomass accumulation but also reduced Cd concentration in rice. This study contributes valuable insights to sustainable strategies for addressing Cd contamination in agricultural ecosystems.


Subject(s)
Cadmium , Malondialdehyde , Oryza , Oxidative Stress , Pectins , Oryza/drug effects , Oryza/metabolism , Cadmium/toxicity , Oxidative Stress/drug effects , Pectins/metabolism , Malondialdehyde/metabolism , Plant Proteins/metabolism , Carboxylic Ester Hydrolases/metabolism , Cell Wall/metabolism , Cell Wall/drug effects , Seedlings/drug effects , Seedlings/metabolism , Seedlings/growth & development , Peptides/metabolism , Plant Roots/drug effects , Plant Roots/metabolism , Spectroscopy, Fourier Transform Infrared
20.
J Plant Res ; 137(3): 521-543, 2024 May.
Article in English | MEDLINE | ID: mdl-38460108

ABSTRACT

The present study examined the regulatory mechanism of hydrogen sulfide (H2S) and nitric oxide (NO) in nickel (Ni) stressed cyanobacteria viz., Nostoc muscorum and Anabaena sp. by analyzing growth, photosynthetic pigments, biochemical components (protein and carbohydrate), exopolysaccharides (EPS), inorganic nitrogen content, and activity of enzymes comprised in nitrogen metabolism and Ni accumulation. The 1 µM Ni substantially diminished growth by 18% and 22% in N. muscorum and Anabaena sp. respectively, along with declining the pigment contents (Chl a/Car ratio and phycobiliproteins), and biochemical components. It also exerted negative impacts on inorganic uptake of nitrate and nitrite contents; nitrate reductase and nitrite reductase; and ammonium assimilating enzymes (glutamine synthetase, glutamate synthase, and glutamate dehydrogenase exhibited a reverse trend) activities. Nonetheless, the adverse impact of Ni can be mitigated through the exogenous supplementation of NaHS [sodium hydrosulfide (8 µM); H2S donor] and SNP [sodium nitroprusside (10 µM); NO donor] which showed substantial improvement on growth, pigments, nitrogen metabolism, and EPS layer and noticeably occurred as a consequence of a substantial reduction in Ni accumulation content which minimized the toxicity effects. The accumulation of Ni on both the cyanobacterial cell surface (EPS layer) are confirmed by the SEM-EDX analysis. Further, the addition of NO scavenger (PTIO; 20 µM) and inhibitor of NO (L-NAME; 100 µM); and H2S scavenger (HT; 20 µM) and H2S inhibitor (PAG; 50 µM) reversed the positive responses of H2S and NO and damages were more prominent under Ni stress thereby, suggesting the downstream signaling of H2S on NO-mediated alleviation. Thus, this study concludes the crosstalk mechanism of H2S and NO in the mitigation of Ni-induced toxicity in rice field cyanobacteria.


Subject(s)
Hydrogen Sulfide , Nickel , Nitric Oxide , Nitrogen , Oryza , Nitric Oxide/metabolism , Nickel/metabolism , Hydrogen Sulfide/metabolism , Nitrogen/metabolism , Oryza/metabolism , Oryza/drug effects , Oryza/growth & development , Nostoc muscorum/metabolism , Polysaccharides, Bacterial/metabolism , Anabaena/metabolism , Anabaena/drug effects , Anabaena/growth & development , Stress, Physiological , Nitroprusside/pharmacology
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