An underground strategy to increase mercury tolerance in the salt marsh halophyte Juncus maritimus Lam.: Lipid remodelling and Hg restriction
暂无分享,去创建一个
[1] Paulo Cardoso,et al. A Multifactorial Approach to Untangle Graphene Oxide (GO) Nanosheets Effects on Plants: Plant Growth-Promoting Bacteria Inoculation, Bacterial Survival, and Drought , 2021, Nanomaterials.
[2] R. D. Tripathi,et al. Role of Nitric Oxide in Overcoming Heavy Metal Stress , 2020 .
[3] Samiksha Singh,et al. Additional calcium and sulfur manages hexavalent chromium toxicity in Solanum lycopersicum L. and Solanum melongena L. seedlings by involving nitric oxide. , 2020, Journal of hazardous materials.
[4] Xuemin Wang,et al. Diverse roles of tocopherols in response to abiotic and biotic stresses and strategies for genetic biofortification in plants , 2020, Molecular Breeding.
[5] Xiaoxiao Liu,et al. Plant lipid remodeling in response to abiotic stresses , 2019, Environmental and Experimental Botany.
[6] Romà Tauler,et al. ROIMCR: a powerful analysis strategy for LC-MS metabolomic datasets , 2019, BMC Bioinformatics.
[7] V. Nurminsky,et al. Effects of Abiotic Stresses on the Content of Glycoglycerolipids in the Vacuolar Membrane of Red Beetroot , 2019, Biochemistry (Moscow), Supplement Series A: Membrane and Cell Biology.
[8] R. Tauler,et al. Exposure to chlorpyrifos induces morphometric, biochemical and lipidomic alterations in green beans (Phaseolus vulgaris). , 2018, Ecotoxicology and environmental safety.
[9] Yuki Nakamura. Plant Phospholipid Diversity: Emerging Functions in Metabolism and Protein-Lipid Interactions. , 2017, Trends in plant science.
[10] F. Minibayeva,et al. Plant sterols: Diversity, biosynthesis, and physiological functions , 2016, Biochemistry (Moscow).
[11] U. Roessner,et al. Salt-stress induced alterations in the root lipidome of two barley genotypes with contrasting responses to salinity. , 2016, Functional plant biology : FPB.
[12] M. Carvajal,et al. Intrinsic stability of Brassicaceae plasma membrane in relation to changes in proteins and lipids as a response to salinity. , 2015, Journal of plant physiology.
[13] V. Volkov. Quantitative description of ion transport via plasma membrane of yeast and small cells , 2012, Front. Plant Sci..
[14] K. Reiss,et al. Threats to Marsh Resources and Mitigation , 2015 .
[15] P. N. Costa,et al. Alpha-tocopherol and gamma-tocopherol concentration in vegetable oils , 2014 .
[16] F. Regoli,et al. Oxidative pathways of chemical toxicity and oxidative stress biomarkers in marine organisms. , 2014, Marine environmental research.
[17] Nayek Sumanta,et al. Spectrophotometric Analysis of Chlorophylls and Carotenoids from Commonly Grown Fern Species by Using Various Extracting Solvents , 2014 .
[18] S. Corticeiro,et al. The role of GSTs in the tolerance of Rhizobium leguminosarum to cadmium , 2013, BioMetals.
[19] D. Takahashi,et al. Detergent-resistant plasma membrane proteome to elucidate microdomain functions in plant cells , 2013, Front. Plant Sci..
[20] K. Mysore,et al. AtCYP710A1 gene-mediated stigmasterol production plays a role in imparting temperature stress tolerance in Arabidopsis thaliana , 2013, Plant signaling & behavior.
[21] E. Rodriguez,et al. Phytotoxicity of Mercury in Plants: A Review , 2012 .
[22] K. Kondo,et al. Genome Mutation Revealed by Artificial Hybridization between Chrysanthemum yoshinaganthum and Chrysanthemum vestitum Assessed by FISH and GISH , 2012 .
[23] Kai Simons,et al. Membrane organization and lipid rafts. , 2011, Cold Spring Harbor perspectives in biology.
[24] J. Abadía,et al. Complexation of Hg with phytochelatins is important for plant Hg tolerance. , 2011, Plant, cell & environment.
[25] J. Zeier,et al. A role for beta-sitosterol to stigmasterol conversion in plant-pathogen interactions. , 2010, The Plant journal : for cell and molecular biology.
[26] S. Corticeiro,et al. Accumulation, distribution and cellular partitioning of mercury in several halophytes of a contaminated salt marsh. , 2009, Chemosphere.
[27] M. Pardal,et al. Mercury pollution in Ria de Aveiro (Portugal): a review of the system assessment , 2009, Environmental monitoring and assessment.
[28] M. Bertness,et al. Centuries of human-driven change in salt marsh ecosystems. , 2009, Annual review of marine science.
[29] M. Pardal,et al. Mercury intracellular partitioning and chelation in a salt marsh plant, Halimione portulacoides (L.) Aellen: strategies underlying tolerance in environmental exposure. , 2009, Chemosphere.
[30] H. Sallanon,et al. Microplate quantification of enzymes of the plant ascorbate-glutathione cycle. , 2008, Analytical biochemistry.
[31] Archana Sharma,et al. Mercury toxicity in plants , 2000, The Botanical Review.
[32] Shuqing An,et al. China's Natural Wetlands: Past Problems, Current Status, and Future Challenges , 2007, Ambio.
[33] S. Mongrand,et al. Characterization of Lipid Rafts from Medicago truncatula Root Plasma Membranes: A Proteomic Study Reveals the Presence of a Raft-Associated Redox System1[W] , 2007, Plant Physiology.
[34] W. E. Rauser. Structure and function of metal chelators produced by plants , 2007, Cell Biochemistry and Biophysics.
[35] M. Abbasi,et al. Influence of different land-cover types on the changes of selected soil properties in the mountain region of Rawalakot Azad Jammu and Kashmir , 2007, Nutrient Cycling in Agroecosystems.
[36] E. Moreno‐Jiménez,et al. Mercury bioaccumulation and phytotoxicity in two wild plant species of Almadén area. , 2006, Chemosphere.
[37] S. Munné-Bosch,et al. The role of α-tocopherol in plant stress tolerance , 2005 .
[38] G. van Meer,et al. Cellular lipidomics , 2005, The EMBO journal.
[39] H. Schaller. The role of sterols in plant growth and development. , 2003, Progress in lipid research.
[40] O. Blokhina,et al. Antioxidants, oxidative damage and oxygen deprivation stress: a review. , 2003, Annals of botany.
[41] D. Krabbenhoft,et al. Ecotoxicology of mercury , 2003 .
[42] M. Otte,et al. Conflicting processes in the wetland plant rhizosphere: Metal retention or mobilization? , 2003 .
[43] Charlotte Poschenrieder,et al. Phytoremediation : principles and perspectives , 2003 .
[44] S. Clouse. Arabidopsis Mutants Reveal Multiple Roles for Sterols in Plant Development , 2002, The Plant Cell Online.
[45] H. Ohta,et al. Two types of MGDG synthase genes, found widely in both 16:3 and 18:3 plants, differentially mediate galactolipid syntheses in photosynthetic and nonphotosynthetic tissues in Arabidopsis thaliana , 2001, Proceedings of the National Academy of Sciences of the United States of America.
[46] J. Pittman,et al. Emerging mechanisms for heavy metal transport in plants. , 2000, Biochimica et biophysica acta.
[47] R. Brown,et al. Sphingolipid organization in biomembranes: what physical studies of model membranes reveal. , 1998, Journal of cell science.
[48] Colin R. Janssen,et al. The use of biomarkers in Daphnia magna toxicity testing. IV. Cellular Energy Allocation: a new methodology to assess the energy budget of toxicant-stressed Daphnia populations , 1997 .
[49] M. Otte,et al. Organism-induced accumulation of iron, zinc and arsenic in wetland soils. , 1997, Environmental pollution.
[50] M. Nobili,et al. Analysis of intercellular cadmium forms in roots and leaves of bush bean , 1996 .
[51] J. Mudd,et al. Subcellular distribution of steryl ester biosynthesis in spinach leaves. , 1978, Plant physiology.
[52] S. Aust,et al. Microsomal lipid peroxidation. , 1978, Methods in enzymology.
[53] J. Barber,et al. Uptake and Distribution of Mercury within Higher Plants , 1977 .
[54] W B Jakoby,et al. Glutathione S-transferases. The first enzymatic step in mercapturic acid formation. , 1974, The Journal of biological chemistry.
[55] W. Valentine,et al. Studies on the quantitative and qualitative characterization of erythrocyte glutathione peroxidase. , 1967, The Journal of laboratory and clinical medicine.
[56] H. W. Robinson,et al. THE BIURET REACTION IN THE DETERMINATION OF SERUM PROTEINS I. A STUDY OF THE CONDITIONS NECESSARY FOR THE PRODUCTION OF A STABLE COLOR WHICH BEARS A QUANTITATIVE RELATIONSHIP TO THE PROTEIN CONCENTRATION , 1940 .