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sabinene and boron

sabinene has been researched along with boron in 28 studies

Research

Studies (28)

TimeframeStudies, this research(%)All Research%
pre-19901 (3.57)18.7374
1990's1 (3.57)18.2507
2000's2 (7.14)29.6817
2010's19 (67.86)24.3611
2020's5 (17.86)2.80

Authors

AuthorsStudies
Lehmann, J; Zook, EG1
Cerezo, M; García-Augustín, P; Lapeña, L1
Chen, LS; Han, S; Jiang, HX; Smith, BR; Xie, CY; Yang, LT1
Chen, LS; Jiang, HX; Tang, N; Zheng, JG1
Aquea, F; Arce-Johnson, P; Cañon, P; Rodríguez-Hoces de la Guardia, A1
Chun, CP; Huang, Y; Jiang, CL; Ling, LL; Peng, LZ; Wang, NQ; Xing, F; Zhou, W1
Chen, LS; Guo, P; Huang, JH; Jiang, HX; Qi, YP; Yang, LT; Ye, X1
Chen, LS; Guo, P; Qi, YP; Yang, LT; Zhou, XX1
Chen, LS; Guo, P; Huang, ZR; Qi, YP; Sang, W; Yang, LT1
Chen, EJ; Chen, LS; Guo, P; Wang, LQ; Yang, LT; Ye, X; Zhou, XX1
Forner-Giner, MÁ; Iglesias, DJ; Martínez-Alcántara, B; Martínez-Cuenca, MR; Primo-Millo, E; Quiñones, A; Ruiz, M1
Chen, LS; Chen, XM; Guo, P; Huang, JH; Qi, YP; Wen, SX1
Aziz, O; Hussain, S; Imran, M; Jiang, C; Riaz, M; Wang, Y; Wu, X; Yan, L1
Alfosea-Simón, M; Cámara-Zapata, JM; García-Sánchez, F; Martínez-Nicolás, JJ; Nieves, M; Simón-Grao, S1
Du, C; Jiang, C; Liu, Y; Riaz, M; Wu, X; Yan, L1
Chen, LS; Lai, NW; Liu, JW; Qi, YP; Wang, JL; Wu, YM; Yang, LT; Ye, X1
Du, C; Jiang, C; Liu, Y; Lv, B; Riaz, M; Wu, X; Yan, L1
Aziz, O; Hussain, S; Jiang, C; Riaz, M; Wu, X; Yan, L1
Alfosea-Simón, M; Cámara-Zapata, JM; Fernández-Zapata, JC; García-Sánchez, F; Martínez-Nicolás, JJ; Nieves, M; Simón-Grao, S1
Chen, LS; Fan, GC; Huang, JH; Lin, XJ; Wang, XD; Zhang, LY1
Jiang, C; Lu, X; Riaz, M; Wu, X; Yan, L1
Jiang, C; Liu, Y; Riaz, M; Yan, L; Zeng, Y1
Du, C; Jiang, C; Riaz, M; Yan, L1
Chen, LS; Fan, GC; Ferrarezi, RS; Gao, Y; Huang, JH; Huang, WL; Lin, XJ; Zhang, J; Zhang, LY; Zhao, D1
Cheng, J; Jiang, C; Riaz, M; Yan, L; Zeng, Z1
Cheng, J; Jiang, C; Li, S; Yan, L; Zhang, Y1
Cheng, J; Jiang, C; Li, S; Liu, J; Liu, Y; Yan, L1
Dong, Z; Hu, C; Liu, X; Low, W; Srivastava, AK; Sun, X; Tan, Q; Wu, S; Yan, X1

Other Studies

28 other study(ies) available for sabinene and boron

ArticleYear
Mineral composition of fruits. II. Nitrogen, calcium, magnesium, phosphorus, potassium, aluminum, boron, copper, iron, manganese, and sodium.
    Journal of the American Dietetic Association, 1968, Volume: 52, Issue:3

    Topics: Aluminum; Boron; Calcium; Citrus; Copper; Fruit; Iron; Magnesium; Manganese; Minerals; Nitrogen; Phosphorus; Potassium; Sodium; Statistics as Topic

1968
Possible reuse of treated municipal wastewater for Citrus spp. plant irrigation.
    Bulletin of environmental contamination and toxicology, 1995, Volume: 55, Issue:5

    Topics: Boron; Chlorine; Citrus; Fertilizers; Phosphorus; Potassium; Sodium; Spain; Waste Disposal, Fluid; Waste Management

1995
Boron deficiency decreases growth and photosynthesis, and increases starch and hexoses in leaves of citrus seedlings.
    Journal of plant physiology, 2008, Sep-08, Volume: 165, Issue:13

    Topics: Boron; Carotenoids; Chlorophyll; Citrus; Hexoses; Photosynthesis; Photosynthetic Reaction Center Complex Proteins; Plant Proteins; Plant Roots; Plant Stems; Plant Transpiration; Starch

2008
Antagonistic actions of boron against inhibitory effects of aluminum toxicity on growth, CO2 assimilation, ribulose-1,5-bisphosphate carboxylase/oxygenase, and photosynthetic electron transport probed by the JIP-test, of Citrus grandis seedlings.
    BMC plant biology, 2009, Aug-01, Volume: 9

    Topics: Aluminum; Boron; Carbon Dioxide; Chlorophyll; Citrus; Electron Transport; Photosynthesis; Ribulose-Bisphosphate Carboxylase; Seedlings

2009
Functional characterization of Citrus macrophylla BOR1 as a boron transporter.
    Physiologia plantarum, 2013, Volume: 149, Issue:3

    Topics: Amino Acid Sequence; Boron; Citrus; Genetic Complementation Test; Membrane Transport Proteins; Molecular Sequence Data; Plant Proteins; Sequence Analysis, DNA

2013
[Citrus boron nutrient level and its impact factors in the Three Gorges Reservoir region of Chongqing, China].
    Ying yong sheng tai xue bao = The journal of applied ecology, 2014, Volume: 25, Issue:4

    Topics: Boron; China; Citrus; Fruit; Plant Leaves; Soil; Trees

2014
cDNA-AFLP analysis reveals the adaptive responses of citrus to long-term boron-toxicity.
    BMC plant biology, 2014, Oct-28, Volume: 14

    Topics: Adaptation, Physiological; Amplified Fragment Length Polymorphism Analysis; Biological Transport; Boron; Cell Wall; Citrus; Citrus sinensis; Cytoskeleton; DNA, Complementary; Gene Expression Regulation, Plant; Light; Phosphorus; Photosynthesis; Plant Leaves; Seedlings; Signal Transduction

2014
Mechanisms on boron-induced alleviation of aluminum-toxicity in Citrus grandis seedlings at a transcriptional level revealed by cDNA-AFLP analysis.
    PloS one, 2015, Volume: 10, Issue:3

    Topics: Aluminum; Boron; Citrus; DNA, Complementary; Gene Expression Regulation, Plant; Plant Roots; Transcription, Genetic

2015
An investigation of boron-toxicity in leaves of two citrus species differing in boron-tolerance using comparative proteomics.
    Journal of proteomics, 2015, Jun-18, Volume: 123

    Topics: Antioxidants; Boron; China; Citrus; Citrus sinensis; Electrophoresis, Gel, Two-Dimensional; Photosynthesis; Plant Leaves; Plant Proteins; Plant Roots; Proteomics; Reactive Oxygen Species; Seedlings; Species Specificity

2015
Leaf cDNA-AFLP analysis reveals novel mechanisms for boron-induced alleviation of aluminum-toxicity in Citrus grandis seedlings.
    Ecotoxicology and environmental safety, 2015, Volume: 120

    Topics: Aluminum; Amplified Fragment Length Polymorphism Analysis; Boron; Citrus; DNA, Complementary; Gene Expression Profiling; Gene Expression Regulation, Plant; Lipid Metabolism; Plant Leaves; Reactive Oxygen Species; Reproducibility of Results; Seedlings; Signal Transduction

2015
Physiological and Molecular Responses to Excess Boron in Citrus macrophylla W.
    PloS one, 2015, Volume: 10, Issue:7

    Topics: Boron; Chlorophyll; Citrus; Genes, Plant; Malondialdehyde; Plant Leaves; Plant Roots

2015
Illumina microRNA profiles reveal the involvement of miR397a in Citrus adaptation to long-term boron toxicity via modulating secondary cell-wall biosynthesis.
    Scientific reports, 2016, Mar-10, Volume: 6

    Topics: Acclimatization; Adaptation, Physiological; Boron; Cell Wall; Citrus; Gene Expression Regulation, Plant; MicroRNAs; Plant Leaves; Plant Roots; Seedlings

2016
Boron alleviates the aluminum toxicity in trifoliate orange by regulating antioxidant defense system and reducing root cell injury.
    Journal of environmental management, 2018, Feb-15, Volume: 208

    Topics: Aluminum; Antioxidants; Boron; Citrus; Plant Roots; Poncirus

2018
Response of three citrus genotypes used as rootstocks grown under boron excess conditions.
    Ecotoxicology and environmental safety, 2018, Sep-15, Volume: 159

    Topics: Ascorbate Peroxidases; Boron; Citrus; Genotype; Plant Leaves; Plant Roots; Seedlings; Species Specificity; Superoxide Dismutase

2018
Ameliorative effects of boron on aluminum induced variations of cell wall cellulose and pectin components in trifoliate orange (Poncirus trifoliate (L.) Raf.) rootstock.
    Environmental pollution (Barking, Essex : 1987), 2018, Volume: 240

    Topics: Aluminum; Boron; Cell Wall; Cellulose; Citrus; Esterification; Glucans; Hydrogen Peroxide; Oxidative Stress; Pectins; Poncirus; Protective Agents; Soil; Soil Pollutants

2018
Proteome profile analysis of boron-induced alleviation of aluminum-toxicity in Citrus grandis roots.
    Ecotoxicology and environmental safety, 2018, Oct-30, Volume: 162

    Topics: Agriculture; Aluminum; Boron; Cell Wall; Citrus; DNA, Complementary; Plant Proteins; Plant Roots; Proteome; Seedlings; Signal Transduction; Tropical Climate

2018
Boron inhibits aluminum-induced toxicity to citrus by stimulating antioxidant enzyme activity.
    Journal of environmental science and health. Part C, Environmental carcinogenesis & ecotoxicology reviews, 2018, Volume: 36, Issue:3

    Topics: Aluminum; Antioxidants; Boron; Catalase; Catechol Oxidase; Citrus; Lipid Peroxidation; Peroxidase; Soil Pollutants

2018
Boron supply maintains efficient antioxidant system, cell wall components and reduces aluminum concentration in roots of trifoliate orange.
    Plant physiology and biochemistry : PPB, 2019, Volume: 137

    Topics: Aluminum; Antioxidants; Ascorbic Acid; Boron; Cell Wall; Citrus; Glucans; Microscopy, Confocal; Monoamine Oxidase; Plant Cells; Plant Leaves; Plant Proteins; Plant Roots; Principal Component Analysis; Xanthine Oxidase

2019
Arbuscular mycorrhizal symbiosis improves tolerance of Carrizo citrange to excess boron supply by reducing leaf B concentration and toxicity in the leaves and roots.
    Ecotoxicology and environmental safety, 2019, May-30, Volume: 173

    Topics: Boron; Citrus; Glomeromycota; Mycorrhizae; Plant Leaves; Plant Roots; Symbiosis

2019
MicroRNA Sequencing Revealed
    International journal of molecular sciences, 2019, Mar-21, Volume: 20, Issue:6

    Topics: Adaptation, Biological; Boron; Citrus; Computational Biology; Gene Expression Profiling; Gene Expression Regulation, Plant; MicroRNAs; Phenotype; Phylogeny; Plant Development; Plant Roots; RNA Interference

2019
Boron toxicity induced specific changes of cell ultrastructure and architecture of components in leaf center and tip of trifoliate orange [Poncirus trifoliata (L.) Raf.].
    Journal of environmental management, 2019, Sep-15, Volume: 246

    Topics: Boron; Citrus; Plant Leaves; Plant Roots; Poncirus

2019
Aluminum toxicity could be mitigated with boron by altering the metabolic patterns of amino acids and carbohydrates rather than organic acids in trifoliate orange.
    Tree physiology, 2019, 09-01, Volume: 39, Issue:9

    Topics: Aluminum; Amino Acids; Boron; Carbohydrates; China; Citrus; Plant Roots; Poncirus

2019
Boron mitigates citrus root injuries by regulating intracellular pH and reactive oxygen species to resist H
    Environmental pollution (Barking, Essex : 1987), 2019, Volume: 255, Issue:Pt 2

    Topics: Aluminum; Boron; Cell Wall; Citrus; Cytoplasm; Hydrogen Peroxide; Hydrogen-Ion Concentration; Plant Roots; Poncirus; Reactive Oxygen Species; Seedlings; Soil; Soil Pollutants

2019
CsiLAC4 modulates boron flow in Arabidopsis and Citrus via high-boron-dependent lignification of cell walls.
    The New phytologist, 2022, Volume: 233, Issue:3

    Topics: Arabidopsis; Boron; Cell Wall; Citrus; Gene Expression Regulation, Plant; Plant Roots

2022
Increasing media pH contribute to the absorption of boron via roots to promote the growth of citrus.
    Plant physiology and biochemistry : PPB, 2022, May-01, Volume: 178

    Topics: Boron; Citrus; Hydrogen Peroxide; Hydrogen-Ion Concentration; Plant Roots

2022
Boron-mediated lignin metabolism in response to aluminum toxicity in citrus (Poncirus trifoliata (L.) Raf.) root.
    Plant physiology and biochemistry : PPB, 2022, Aug-15, Volume: 185

    Topics: Aluminum; Boron; Citrus; Hydrogen Peroxide; Lignin; Plant Roots; Poncirus

2022
Boron contributes to excessive aluminum tolerance in trifoliate orange (Poncirus trifoliata (L.) Raf.) by inhibiting cell wall deposition and promoting vacuole compartmentation.
    Journal of hazardous materials, 2022, 09-05, Volume: 437

    Topics: Aluminum; Boron; Cell Wall; Citrus; Plant Roots; Poncirus; Vacuoles

2022
Boron deficiency mediates plant-insect (Diaphorima citri) interaction by disturbing leaf volatile organic compounds and cell wall functions.
    Tree physiology, 2023, 04-12, Volume: 43, Issue:4

    Topics: Animals; Boron; Citrus; Hemiptera; Plant Diseases; Plant Leaves; Shikimic Acid; Volatile Organic Compounds

2023
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