Regulation on copper-tolerance in Citrus sinensis seedlings by boron addition: Insights from root exudates, related metabolism, and gene expression.
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Lintong Yang | Jiuxin Guo | Huanhuan Chen | Xin Ye | Xu-Feng Chen | Zhitian Zheng | Lisong Chen | R. Rao | Wen-Shu Chen
[1] Yan Li,et al. Declined photosynthetic nitrogen use efficiency under ammonium nutrition is related to photosynthetic electron transport chain disruption in citrus plants , 2023, Scientia Horticulturae.
[2] Zhong Tang,et al. Molecular mechanisms underlying the toxicity and detoxification of trace metals and metalloids in plants. , 2022, Journal of integrative plant biology.
[3] Zeng-rong Huang,et al. Physiological and molecular adaptations of Citrus grandis roots to long-term copper excess revealed by physiology, metabolome and transcriptome , 2022, Environmental and Experimental Botany.
[4] Lintong Yang,et al. Characterization of copper-induced-release of exudates by Citrus sinensis roots and their possible roles in copper-tolerance. , 2022, Chemosphere.
[5] Cuncang Jiang,et al. Boron contributes to excessive aluminum tolerance in trifoliate orange (Poncirus trifoliata (L.) Raf.) by inhibiting cell wall deposition and promoting vacuole compartmentation. , 2022, Journal of hazardous materials.
[6] Zeng-rong Huang,et al. Molecular mechanisms for pH-mediated amelioration of aluminum-toxicity revealed by conjoint analysis of transcriptome and metabolome in Citrus sinensis roots. , 2022, Chemosphere.
[7] Zeng-rong Huang,et al. Boron-mediated amelioration of copper-toxicity in sweet orange [Citrus sinensis (L.) Osbeck cv. Xuegan] seedlings involved reduced damage to roots and improved nutrition and water status. , 2022, Ecotoxicology and environmental safety.
[8] Zeng-rong Huang,et al. Mechanisms for increased pH-mediated amelioration of copper toxicity in Citrus sinensis leaves using physiology, transcriptomics and metabolomics , 2022, Environmental and Experimental Botany.
[9] S. Celletti,et al. Plant species and pH dependent responses to copper toxicity , 2022, Environmental and Experimental Botany.
[10] Yi-Bin Lu,et al. Citrus Physiological and Molecular Response to Boron Stresses , 2021, Plants.
[11] J. T. Puthur,et al. Functional aspects of plant secondary metabolites in metal stress tolerance and their importance in pharmacology , 2021, Plant Stress.
[12] C. Rensing,et al. Adaptive Responses of Citrus grandis Leaves to Copper Toxicity Revealed by RNA-Seq and Physiology , 2021, International journal of molecular sciences.
[13] D. Schachtman,et al. Root exudates impact plant performance under abiotic stress. , 2021, Trends in plant science.
[14] Zeng-rong Huang,et al. Metabolomics combined with physiology and transcriptomics reveals how Citrus grandis leaves cope with copper-toxicity. , 2021, Ecotoxicology and environmental safety.
[15] F. Locatelli,et al. Strategies to Modulate Specialized Metabolism in Mediterranean Crops: From Molecular Aspects to Field , 2021, International journal of molecular sciences.
[16] R. Khalil,et al. Glucose modulates copper induced changes in photosynthesis, ion uptake, antioxidants and proline in Cucumis sativus plants. , 2021, Carbohydrate research.
[17] Abbu Zaid,et al. Mitigation of Copper Stress in Maize by Inoculation with Paenibacillus polymyxa and Bacillus circulans , 2020, Plants.
[18] U. Krasuska,et al. Canavanine Increases the Content of Phenolic Compounds in Tomato (Solanum lycopersicum L.) Roots , 2020, Plants.
[19] Zeng-rong Huang,et al. Ammonium nutrition inhibits plant growth and nitrogen uptake in citrus seedlings , 2020 .
[20] Kanika Khanna,et al. Copper bioavailability, uptake, toxicity and tolerance in plants: A comprehensive review. , 2020, Chemosphere.
[21] Guoyong Huang,et al. Effects of low molecular weight organic acids on Cu accumulation by castor bean and soil enzyme activities. , 2020, Ecotoxicology and environmental safety.
[22] Natasha,et al. Copper uptake, essentiality, toxicity, detoxification and risk assessment in soil-plant environment. , 2020, Chemosphere.
[23] Y. Qi,et al. Interactive effects of pH and aluminum on the secretion of organic acid anions by roots and related metabolic factors in Citrus sinensis roots and leaves. , 2020, Environmental pollution.
[24] P. McSteen,et al. From element to development: the power of the essential micronutrient boron to shape morphological processes in plants , 2020, Journal of experimental botany.
[25] Long Zhao,et al. Status of copper accumulation in agricultural soils across China (1985-2016). , 2019, Chemosphere.
[26] T. Mimmo,et al. Iron fertilization to enhance tolerance mechanisms to copper toxicity of ryegrass plants used as cover crop in vineyards. , 2019, Chemosphere.
[27] Pei Wang,et al. Role of Ca2+ in phenolic compound metabolism of barley (Hordeum vulgare L.) sprouts under NaCl stress. , 2019, Journal of the science of food and agriculture.
[28] Y. Qi,et al. Increasing Nutrient Solution pH Alleviated Aluminum-Induced Inhibition of Growth and Impairment of Photosynthetic Electron Transport Chain in Citrus sinensis Seedlings , 2019, BioMed research international.
[29] Lian-feng Zhu,et al. Boron reduces cell wall aluminum content in rice (Oryza sativa) roots by decreasing H2O2 accumulation. , 2019, Plant physiology and biochemistry : PPB.
[30] G. Qiu,et al. Interactive effects of single, binary and trinary trace metals (lead, zinc and copper) on the physiological responses of Kandelia obovata seedlings , 2018, Environmental Geochemistry and Health.
[31] Chuanxin Ma,et al. Growth, physiological responses, and copper accumulation in seven willow species exposed to Cu—a hydroponic experiment , 2018, Environmental Science and Pollution Research.
[32] E. Baldi,et al. Soil-applied phosphorous is an effective tool to mitigate the toxicity of copper excess on grapevine grown in rhizobox , 2018 .
[33] P. Rutkowski,et al. Diversity of low-molecular weight organic acids synthesized by Salix growing in soils characterized by different Cu, Pb and Zn concentrations , 2017, Acta Physiologiae Plantarum.
[34] Sukhmeen Kaur Kohli,et al. Castasterone assisted accumulation of polyphenols and antioxidant to increase tolerance of B. juncea plants towards copper toxicity , 2016 .
[35] N. Zhang,et al. Organic acids, amino acids compositions in the root exudates and Cu-accumulation in castor (Ricinus communis L.) Under Cu stress , 2016, International journal of phytoremediation.
[36] Li-Song Chen,et al. Soil chemical properties,'Guanximiyou' pummelo leaf mineral nutrient status and fruit quality in the southern region of Fujian province, China , 2015 .
[37] Jing Xu,et al. Effects of boron deficiency on major metabolites, key enzymes and gas exchange in leaves and roots of Citrus sinensis seedlings. , 2014, Tree physiology.
[38] Md. Zahidul Islam,et al. The physiological and nutritional responses of seven different citrus rootstock seedlings to boron deficiency , 2014, Trees.
[39] R. Terzi,et al. Exogenous hydrogen peroxide increases dry matter production, mineral content and level of osmotic solutes in young maize leaves and alleviates deleterious effects of copper stress , 2013, Botanical Studies.
[40] I. Brunner,et al. Aluminum exclusion and aluminum tolerance in woody plants , 2013, Front. Plant Sci..
[41] Y. Qi,et al. Roles of Organic Acid Anion Secretion in Aluminium Tolerance of Higher Plants , 2012, BioMed research international.
[42] N. Tang,et al. Boron-aluminum interactions affect organic acid metabolism more in leaves than in roots of Citrus grandis seedlings , 2011, Biologia Plantarum.
[43] S. Zheng,et al. Aluminum regulates oxalate secretion and plasma membrane H+-ATPase activity independently in tomato roots , 2011, Planta.
[44] Lintong Yang,et al. Mechanisms of aluminum-tolerance in two species of citrus: secretion of organic acid anions and immobilization of aluminum by phosphorus in roots. , 2011, Plant science : an international journal of experimental plant biology.
[45] R. Chen,et al. Phosphorus enhances Al resistance in Al-resistant Lespedeza bicolor but not in Al-sensitive L. cuneata under relatively high Al stress. , 2008, Annals of botany.
[46] M. Strnad,et al. Phenolic compounds composition and physiological attributes of Matricaria chamomilla grown in copper excess , 2008 .
[47] W. Horst,et al. Effect of boron on the expression of aluminium toxicity in Phaseolus vulgaris. , 2007, Physiologia plantarum.
[48] W. Horst,et al. Aluminum resistance of cowpea as affected by phosphorus-deficiency stress. , 2007, Journal of plant physiology.
[49] A. M. Shohael,et al. Phenolics metabolism and lignin synthesis in root suspension cultures of Panax ginseng in response to copper stress , 2006 .
[50] Xiaolong Yan,et al. Organic acid exudation induced by phosphorus deficiency and/or aluminium toxicity in two contrasting soybean genotypes , 2004 .
[51] J. Hayes,et al. Al-induced efflux of organic acid anions is poorly associated with internal organic acid metabolism in triticale roots. , 2003, Journal of experimental botany.
[52] B. Frey,et al. Release of phenols from Lupinus albus L. roots exposed to Cu and their possible role in Cu detoxification , 2003, Plant and Soil.
[53] Sung-ju Ahn,et al. A comparative study on the aluminium‐ and copper‐induced organic acid exudation from wheat roots , 2002 .
[54] E. Frossard,et al. Aluminum resistance in two cultivars of Zea mays L.: Root exudation of organic acids and influence of phosphorus nutrition , 2001, Plant and Soil.
[55] F. Pomar,et al. Induction of shikimate dehydrogenase and peroxidase in pepper (Capsicum annuum L.) seedlings in response to copper stress and its relation to lignification , 2001 .
[56] F. Turano,et al. Characterization of the glutamate dehydrogenase isoenzyme system in germinating soybean , 1998 .
[57] D. Parker,et al. Probing the “malate hypothesis” of differential aluminum tolerance in wheat by using other rhizotoxic ions as proxies for Al , 1998, Planta.
[58] C. A. Loulakakis,et al. Intracellular Localization and Properties of NADH-Glutamate Dehydrogenase from Vitis vinifera L.: Purification and Characterization of the Major Leaf Isoenzyme , 1990 .
[59] C. Lamb,et al. A spectrophotometric assay for trans-cinnamic acid 4-hydroxylase activity. , 1975, Analytical biochemistry.
[60] Anket Sharma,et al. Castasterone confers copper stress tolerance by regulating antioxidant enzyme responses, antioxidants, and amino acid balance in B. juncea seedlings. , 2018, Ecotoxicology and environmental safety.
[61] Li,et al. Effects of Grafting on Root Exudates of Cucumber and Rhizosphere Environment under Copper Stress , 2013 .
[62] S. Meier,et al. Influence of copper on root exudate patterns in some metallophytes and agricultural plants. , 2012, Ecotoxicology and environmental safety.
[63] I. Stulen,et al. Enzymes of nitrogen assimilation in maize roots , 2004, Planta.