The role of the ABF1 gene in regulation of Cd-induced hormesis in Arabidopsis thaliana.
暂无分享,去创建一个
Diwu Fan | Yongli Zhu | Jiangang Han | Yongyan Sun | Moxian Chen | E. Agathokleous | Evgenios Agathokleous | Fuyuan Zhu
[1] S. Shaheen,et al. Cadmium uptake and membrane transport in roots of hyperaccumulator Amaranthus hypochondriacus L. , 2023, Environmental pollution.
[2] Weina Zhang,et al. Exogenous Glutathione enhances tolerance of the potato (Solanum tuberosum L.) to cadmium stress by regulating the biosynthesis of phenylpropanoid and the signal transduction of plant hormones , 2023, Chemical and Biological Technologies in Agriculture.
[3] Jing Li,et al. Comparative transcriptome analysis of broccoli seedlings under different Cd exposure levels revealed possible pathways involved in hormesis , 2022, Scientia Horticulturae.
[4] O. Cavoura,et al. Phytoremediation of Cadmium-Contaminated Soils: A Review of New Cadmium Hyperaccumulators and Factors Affecting their Efficiency , 2022, Bulletin of Environmental Contamination and Toxicology.
[5] K. Nam,et al. Comparison of pollution tolerance in sunflowers as a case study to establish risk assessment criteria for transgenic plants for environmental remediation , 2022, Plant Biotechnology Reports.
[6] L. Skuza,et al. Natural Molecular Mechanisms of Plant Hyperaccumulation and Hypertolerance towards Heavy Metals , 2022, International journal of molecular sciences.
[7] A. Docea,et al. Rethinking Subthreshold Effects in Regulatory Chemical Risk Assessments. , 2022, Environmental science & technology.
[8] E. Calabrese,et al. Hormesis is an evolutionary expectation: implications for aging , 2022, Biogerontology.
[9] Xiaomeng Zhang,et al. Integrated physiological, transcriptomic and metabolomic analysis of the response of Trifolium pratense L. to Pb toxicity. , 2022, Journal of hazardous materials.
[10] S. Mehmood,et al. Physiological and Transcriptomic analysis provide molecular Insight into 24-epibrassinolide mediated Cr(VI)-Toxicity tolerance in pepper plants. , 2022, Environmental pollution.
[11] E. Calabrese,et al. Hormesis: A General Biological Principle. , 2022, Chemical research in toxicology.
[12] I. Sperdouli,et al. Hormesis in photosystem II: a mechanistic understanding , 2022, Current Opinion in Toxicology.
[13] M. Noman,et al. Recent progress on the heavy metals ameliorating potential of engineered nanomaterials in rice paddy: a comprehensive outlook on global food safety with nanotoxicitiy issues , 2021, Critical reviews in food science and nutrition.
[14] E. Erofeeva. Environmental hormesis of non-specific and specific adaptive mechanisms in plants. , 2021, The Science of the total environment.
[15] Yi Tang,et al. Network response of two cherry tomato (Lycopersicon esculentum) cultivars to Cadmium stress as revealed by transcriptome analysis. , 2021, Ecotoxicology and environmental safety.
[16] Diwu Fan,et al. Hormetic responses of soil microbiota to exogenous Cd: A step toward linking community-level hormesis to ecological risk assessment. , 2021, Journal of hazardous materials.
[17] Haoyu Sun,et al. Investigations on the influence of energy source on time-dependent hormesis: A case study of sulfadoxine to Aliivibrio fischeri in different cultivation systems. , 2021, The Science of the total environment.
[18] E. Calabrese,et al. Accumulator plants and hormesis. , 2021, Environmental pollution.
[19] Diwu Fan,et al. The role of bacterial communities in shaping Cd-induced hormesis in 'living' soil as a function of land-use change. , 2020, Journal of hazardous materials.
[20] E. Agathokleous,et al. The rise and fall of photosynthesis: hormetic dose response in plants , 2020, Journal of Forestry Research.
[21] A. R. Reis,et al. Hormesis in plants: Physiological and biochemical responses. , 2020, Ecotoxicology and environmental safety.
[22] J. Peñuelas,et al. Chlorophyll hormesis: Are chlorophylls major components of stress biology in higher plants? , 2020, The Science of the total environment.
[23] Diwu Fan,et al. Lysobacter may drive the hormetic effects of Pb on soil alkaline phosphatase , 2020, Environmental Science and Pollution Research.
[24] H. Kalaji,et al. Hormesis in Plants: The Role of Oxidative Stress, Auxins and Photosynthesis in Corn Treated with Cd or Pb , 2020, International journal of molecular sciences.
[25] D. Michaud,et al. UV-C hormesis in broccoli florets: Preservation, phyto-compounds and gene expression , 2019, Postharvest Biology and Technology.
[26] R. Azevedo,et al. Hormesis in plants under Cd exposure: From toxic to beneficial element? , 2019, Journal of hazardous materials.
[27] E. Calabrese,et al. Hormesis: The Dose Response for the 21st Century: The Future has Arrived. , 2019, Toxicology.
[28] Yuhu Luo. Study on the repair of heavy metal contaminated soil , 2019, IOP Conference Series: Earth and Environmental Science.
[29] W. Gao,et al. Cadmium stress increases antioxidant enzyme activities and decreases endogenous hormone concentrations more in Cd-tolerant than Cd-sensitive wheat varieties. , 2019, Ecotoxicology and environmental safety.
[30] Diwu Fan,et al. Time-Dependent Hormetic Response of Soil Alkaline Phosphatase Induced by Cd and the Association with Bacterial Community Composition , 2019, Microbial Ecology.
[31] E. Calabrese,et al. Biphasic effect of abscisic acid on plants: an hormetic viewpoint , 2018, Botany.
[32] F. Parvin,et al. Phytoremediation of Heavy Metals (Ar, Cd, Pb) Using Transgenic Rice Plants - an Overview , 2015 .
[33] K. Shinozaki,et al. Four Arabidopsis AREB/ABF transcription factors function predominantly in gene expression downstream of SnRK2 kinases in abscisic acid signalling in response to osmotic stress , 2014, Plant, cell & environment.
[34] E. Calabrese. Hormesis: a fundamental concept in biology , 2014, Microbial cell.
[35] S. Zheng,et al. Abscisic acid alleviates iron deficiency by promoting root iron reutilization and transport from root to shoot in Arabidopsis. , 2014, Plant, cell & environment.
[36] C. Poschenrieder,et al. Do toxic ions induce hormesis in plants? , 2013, Plant science : an international journal of experimental plant biology.
[37] S. Cuzzocrea,et al. Cellular stress responses, hormetic phytochemicals and vitagenes in aging and longevity. , 2012, Biochimica et biophysica acta.
[38] C. S. Seth. A Review on Mechanisms of Plant Tolerance and Role of Transgenic Plants in Environmental Clean-up , 2012, The Botanical Review.
[39] E. Solgi,et al. Soil Contamination of Metals in the Three Industrial Estates, Arak, Iran , 2012, Bulletin of Environmental Contamination and Toxicology.
[40] Hemen Sarma,et al. Metal Hyperaccumulation in Plants: A Review Focusing on Phytoremediation Technology , 2011 .
[41] U. Krämer. Metal hyperaccumulation in plants. , 2010, Annual review of plant biology.
[42] A. Raybould. Reducing uncertainty in regulatory decision-making for transgenic crops: More ecological research or clearer environmental risk assessment? , 2010, GM crops.
[43] S. Horvath,et al. WGCNA: an R package for weighted correlation network analysis , 2008, BMC Bioinformatics.
[44] A. Eneji,et al. Coronatine Alleviates Polyethylene Glycol-induced Water Stress in Two Rice (Oryza sativa L.) Cultivars , 2008 .
[45] Yasemin Ekmekçi,et al. Effects of cadmium on antioxidant enzyme and photosynthetic activities in leaves of two maize cultivars. , 2008, Journal of plant physiology.
[46] A. Eneji,et al. Coronatine alleviates salinity stress in cotton by improving the antioxidative defense system and radical-scavenging activity. , 2008, Journal of plant physiology.
[47] M. Mattson. Hormesis defined , 2008, Ageing Research Reviews.
[48] S. Horvath,et al. A General Framework for Weighted Gene Co-Expression Network Analysis , 2005, Statistical applications in genetics and molecular biology.
[49] B. Bartel,et al. Auxin: regulation, action, and interaction. , 2005, Annals of botany.
[50] Y. Kuk,et al. Antioxidative Enzymes Offer Protection from Chilling Damage in Rice Plants , 2003 .
[51] Edward J Calabrese,et al. Toxicology rethinks its central belief , 2003, Nature.
[52] R. Finkelstein,et al. Abscisic Acid Signaling in Seeds and Seedlings Article, publication date, and citation information can be found at www.plantcell.org/cgi/doi/10.1105/tpc.010441. , 2002, The Plant Cell Online.
[53] A. Facchinelli,et al. Multivariate statistical and GIS-based approach to identify heavy metal sources in soils. , 2001, Environmental pollution.
[54] E J Calabrese,et al. Hormesis: U-shaped dose responses and their centrality in toxicology. , 2001, Trends in pharmacological sciences.
[55] S. Kim,et al. ABFs, a Family of ABA-responsive Element Binding Factors* , 2000, The Journal of Biological Chemistry.
[56] E J Calabrese,et al. Radiation hormesis: its historical foundations as a biological hypothesis , 2000, Human & experimental toxicology.
[57] E J Calabrese,et al. Chemical hormesis: its historical foundations as a biological hypothesis , 2000, Human & experimental toxicology.
[58] E J Calabrese,et al. The marginalization of hormesis , 2000, Toxicologic pathology.
[59] L. Sagan,et al. On radiation, paradigms, and hormesis. , 1989, Science.
[60] D. Purchase,et al. Phytoremediation of Heavy Metal-Contaminated Sites: Eco-environmental Concerns, Field Studies, Sustainability Issues, and Future Prospects. , 2020, Reviews of environmental contamination and toxicology.
[61] P. White,et al. Root responses to cadmium in the rhizosphere: a review. , 2011, Journal of experimental botany.
[62] J. Normanly. Approaching cellular and molecular resolution of auxin biosynthesis and metabolism. , 2010, Cold Spring Harbor perspectives in biology.
[63] Edward J. Calabrese,et al. Hormesis: What it is and Why it Matters , 2010 .
[64] E. Calabrese,et al. Hormesis and plant biology. , 2009, Environmental pollution.
[65] S. Davydova. Heavy metals as toxicants in big cities , 2005 .
[66] Seong-Gil Kim,et al. Cadmium accumulation and elimination in tissues of juvenile olive flounder, Paralichthys olivaceus after sub-chronic cadmium exposure. , 2004, Environmental pollution.
[67] H. Lichtenthaler. CHLOROPHYLL AND CAROTENOIDS: PIGMENTS OF PHOTOSYNTHETIC BIOMEMBRANES , 1987 .