arsenic acid and chlorophyll a

arsenic acid has been researched along with chlorophyll a in 18 studies

Research

Studies (18)

TimeframeStudies, this research(%)All Research%
pre-19900 (0.00)18.7374
1990's0 (0.00)18.2507
2000's3 (16.67)29.6817
2010's12 (66.67)24.3611
2020's3 (16.67)2.80

Authors

AuthorsStudies
Chaturvedi, PK; Misra, V; Seth, CS1
Fang, T; Gong, Y; Liu, J; Song, L; Wu, X; Xiao, B1
Dai, X; He, Z; Ma, M; Wang, L; Xu, W; Zheng, Y1
Bačkor, M; Loppi, S; Munzi, S; Paoli, L; Pisani, T1
Mallick, S; Sinam, G; Sinha, S1
Bajpai, R; Deeba, F; Nayaka, S; Pandey, AK; Pandey, V; Upreti, DK1
Ahmad, MA; Gupta, M1
Lin, HZ; Lü, JC; Yang, PS; Yue, YH; Zhao, GC1
Kumar, J; Prasad, SM; Singh, S; Singh, VP2
Dubey, G; Mohan Prasad, S; Pratap Singh, V; Singh, M1
de Andrade, SA; Domingues, AP; Mazzafera, P1
Behera, SK; Dubey, AK; Jaiswal, PK; Kumar, N; Mallick, S; Sahu, N; Tripathi, RD1
Bhattacharya, P; Ghosh, S; Jana, A; Majumdar, S; Swarnakar, S1
Li, Q; Wang, H; Wang, Z; Wu, D; Zheng, W1
Yan, C; Zhao, Y; Zhen, Z1
Bianucci, E; Castro, S; Furlan, A; Peralta, JM; Romero-Puertas, MC; Travaglia, CN1
Bhadwal, S; Sharma, S1

Other Studies

18 other study(ies) available for arsenic acid and chlorophyll a

ArticleYear
Toxic effect of arsenate and cadmium alone and in combination on giant duckweed (Spirodela polyrrhiza L.) in response to its accumulation.
    Environmental toxicology, 2007, Volume: 22, Issue:6

    Topics: Antioxidants; Araceae; Arsenates; Biomass; Cadmium; Chlorophyll; Humans; Metals, Heavy; Water Pollutants, Chemical

2007
Effects of arsenate on microcystin content and leakage of Microcystis strain PCC7806 under various phosphate regimes.
    Environmental toxicology, 2009, Volume: 24, Issue:1

    Topics: Arsenates; Chlorophyll; Microcystins; Microcystis; Phosphates; Water Pollutants, Chemical

2009
Arsenate reduces copper phytotoxicity in gametophytes of Pteris vittata.
    Journal of plant physiology, 2008, Volume: 165, Issue:18

    Topics: Adaptation, Physiological; Arsenates; Cell Membrane Permeability; Cell Survival; Chlorophyll; Copper; Copper Sulfate; Germ Cells; Pteris; Subcellular Fractions; Tissue Distribution

2008
Physiological effects of arsenic in the lichen Xanthoria parietina (L.) Th. Fr.
    Chemosphere, 2011, Volume: 82, Issue:7

    Topics: Arsenates; Arsenic; Ascomycota; Cell Membrane; Chlorophyll; Environmental Pollutants; Lichens; Lipid Peroxidation; Photosynthesis; Reactive Oxygen Species

2011
Study on arsenate tolerant and sensitive cultivars of Zea mays L.: differential detoxification mechanism and effect on nutrients status.
    Ecotoxicology and environmental safety, 2011, Volume: 74, Issue:5

    Topics: Adaptation, Physiological; Arsenates; Catalase; Chlorophyll; Glutathione Peroxidase; Hydrogen Peroxide; Inactivation, Metabolic; Lipid Peroxidation; Malondialdehyde; Metals, Heavy; Plant Leaves; Plant Roots; Soil Pollutants; Superoxide Dismutase; Zea mays

2011
Physiological effects of arsenate on transplant thalli of the lichen Pyxine cocoes (Sw.) Nyl.
    Environmental science and pollution research international, 2012, Volume: 19, Issue:5

    Topics: Antioxidants; Arsenates; Ascomycota; Ascorbate Peroxidases; Catalase; Chlorophyll; Environmental Monitoring; Fluorescence; Lichens; Photosynthesis; Pigments, Biological; Superoxide Dismutase

2012
Arsenate induced differential response in rice genotypes.
    Ecotoxicology and environmental safety, 2014, Volume: 107

    Topics: Antioxidants; Arsenates; Chlorophyll; Cysteine; Drug Tolerance; Gene Expression; Genotype; Germination; Hydroponics; Inactivation, Metabolic; Malondialdehyde; Oryza; Plant Proteins; Proline; Species Specificity; Stress, Physiological

2014
Variation in composition and relative content of accumulated photopigments in a newly isolated Rhodobacter capsulatus strain XJ-1 in response to arsenic.
    Journal of environmental science and health. Part A, Toxic/hazardous substances & environmental engineering, 2014, Volume: 49, Issue:13

    Topics: Arsenates; Arsenic; Arsenites; Carotenoids; Chlorophyll; Chromatography, High Pressure Liquid; Chromatography, Thin Layer; Mass Spectrometry; Photosynthesis; Rhodobacter capsulatus; RNA, Ribosomal, 16S

2014
Investigating the roles of ascorbate-glutathione cycle and thiol metabolism in arsenate tolerance in ridged Luffa seedlings.
    Protoplasma, 2015, Volume: 252, Issue:5

    Topics: Adaptation, Physiological; Arsenates; Ascorbic Acid; Chlorophyll; Glutathione; Luffa; Metabolic Networks and Pathways; Oxidative Stress; Plant Proteins; Reactive Oxygen Species; Seedlings; Soil Pollutants; Sulfhydryl Compounds

2015
Exogenous proline application ameliorates toxic effects of arsenate in Solanum melongena L. seedlings.
    Ecotoxicology and environmental safety, 2015, Volume: 117

    Topics: Antioxidants; Arsenates; Catalase; Chlorophyll; Hydrogen Peroxide; Lipid Peroxidation; Malondialdehyde; Oxidative Stress; Photosynthesis; Photosystem II Protein Complex; Proline; Pyrroles; Reactive Oxygen Species; Seedlings; Solanum melongena; Superoxide Dismutase

2015
Photosynthesis is induced in rice plants that associate with arbuscular mycorrhizal fungi and are grown under arsenate and arsenite stress.
    Chemosphere, 2015, Volume: 134

    Topics: Arsenates; Arsenites; Biomass; Chlorophyll; Chlorophyll A; Electron Transport; Glomeromycota; Mycorrhizae; Oryza; Photosynthesis; Photosystem II Protein Complex; Plant Leaves; Soil Pollutants; Stress, Physiological

2015
Hydrogen sulfide alleviates toxic effects of arsenate in pea seedlings through up-regulation of the ascorbate-glutathione cycle: Possible involvement of nitric oxide.
    Journal of plant physiology, 2015, Jun-01, Volume: 181

    Topics: Arsenates; Ascorbic Acid; Biomass; Cell Membrane; Chlorophyll; Cystathionine gamma-Lyase; Cysteine; Fluorescence; Glutathione; Hydrogen Sulfide; Lipid Metabolism; Nitrate Reductase; Nitric Oxide; Nitrogen; Pisum sativum; Plant Proteins; Reactive Oxygen Species; Seedlings; Up-Regulation

2015
Selenite supplementation reduces arsenate uptake greater than phosphate but compromises the phosphate level and physiological performance in hydroponically grown Oryza sativa L.
    Environmental toxicology and chemistry, 2016, Volume: 35, Issue:1

    Topics: Antioxidants; Arsenates; Chlorophyll; Dose-Response Relationship, Drug; Electric Conductivity; Hydroponics; Oryza; Phosphates; Photosynthesis; Seedlings; Seeds; Selenious Acid; Thiobarbituric Acid Reactive Substances

2016
Anabaena sp. mediated bio-oxidation of arsenite to arsenate in synthetic arsenic (III) solution: Process optimization by response surface methodology.
    Chemosphere, 2015, Volume: 138

    Topics: Adsorption; Anabaena; Arsenates; Arsenic; Arsenites; Chlorophyll; Chlorophyll A; Environmental Pollutants; Oxidation-Reduction; Solutions

2015
Effects of kinetin on plant growth and chloroplast ultrastructure of two Pteris species under arsenate stress.
    Ecotoxicology and environmental safety, 2018, Aug-30, Volume: 158

    Topics: Adaptation, Physiological; Arsenates; Arsenic; Carotenoids; Chlorophyll; Chlorophyll A; Chloroplasts; Hydroponics; Kinetin; Photosynthesis; Plant Development; Plant Growth Regulators; Pteris; Species Specificity; Stress, Physiological

2018
Influence of environmental factors on arsenite transformation and fate in the Hydrilla verticillata (L.f.) royle - Medium system.
    Chemosphere, 2020, Volume: 259

    Topics: Arsenates; Arsenic; Arsenites; Biodegradation, Environmental; Chlorophyll; Chlorophyll A; Hydrocharitaceae; Oxidation-Reduction

2020
Unraveling the impact of arsenic on the redox response of peanut plants inoculated with two different Bradyrhizobium sp. strains.
    Chemosphere, 2020, Volume: 259

    Topics: Arachis; Arsenates; Arsenic; Bradyrhizobium; Chlorophyll; Hydrogen Peroxide; Lipid Peroxidation; Oxidation-Reduction; Oxidative Stress; Plant Roots; Reactive Oxygen Species; Symbiosis

2020
Selenium alleviates physiological traits, nutrient uptake and nitrogen metabolism in rice under arsenate stress.
    Environmental science and pollution research international, 2022, Volume: 29, Issue:47

    Topics: Arsenates; Arsenic; Carotenoids; Chlorophyll; Edible Grain; Glutamate Synthase; Glutamine; Nitrite Reductases; Nitrogen; Nutrients; Oryza; Photosynthesis; Plant Leaves; Selenic Acid; Selenium; Soil

2022