Silicon uptake and utilization on Panicum maximum grass modifies C:N:P stoichiometry under warming and soil water deficit
暂无分享,去创建一个
Renato de Mello Prado | E. Habermann | Anderson de Moura Zanine | Dilier Olivera-Viciedo | Kamilla Silva Oliveira | Carlos Alberto Martínez | Carlos Alberto Martinez
[1] Renato de Mello Prado,et al. Silicon fertigation with appropriate source reduces water requirement of maize under water deficit , 2022, Plant and Soil.
[2] Renato de Mello Prado,et al. New outcomes on how silicon enables the cultivation of Panicum maximum in soil with water restriction , 2022, Scientific Reports.
[3] M. Groppo,et al. Future warming will change the chemical composition and leaf blade structure of tropical C3 and C4 forage species depending on soil moisture levels. , 2022, The Science of the total environment.
[4] Hongchang Cui. Challenges and Approaches to Crop Improvement Through C3-to-C4 Engineering , 2021, Frontiers in Plant Science.
[5] M. Piccolo,et al. Silicon attenuates the effects of water deficit in sugarcane by modifying physiological aspects and C:N:P stoichiometry and its use efficiency , 2021 .
[6] M. Vasconcelos,et al. Mitigation of climate change and environmental hazards in plants: Potential role of the beneficial metalloid silicon. , 2021, Journal of hazardous materials.
[7] A. Niazi,et al. Comparison of Transcriptional Response of C3 and C4 Plants to Drought Stress Using Meta-Analysis and Systems Biology Approach , 2021, Frontiers in Plant Science.
[8] L. Tran,et al. Silicon-mediated heat tolerance in higher plants: A mechanistic outlook. , 2021, Plant physiology and biochemistry : PPB.
[9] Gelza Carliane Marques Teixeira,et al. Low absorption of silicon via foliar in comparison to root application has an immediate antioxidant effect in mitigating water deficit damage in sugarcane , 2021 .
[10] Renato de Mello Prado,et al. Silicon modifies C:N:P stoichiometry, and increases nutrient use efficiency and productivity of quinoa , 2021, Scientific Reports.
[11] R. Prado,et al. Elucidating the action mechanisms of silicon in the mitigation of phosphorus deficiency and enhancement of its response in sorghum plants , 2021 .
[12] R. Singh,et al. Silicon Induced Drought Tolerance in Crop Plants: Physiological Adaptation Strategies , 2021, Silicon.
[13] Gelza Carliane Marques Teixeira,et al. Si fertigation attenuates water stress in forages by modifying carbon stoichiometry, favouring physiological aspects , 2021 .
[14] R. F. Barreto,et al. Ammonium Toxicity Alleviation by Silicon is Dependent on Cytokinins in Tomato cv. Micro-Tom , 2021, Journal of Plant Growth Regulation.
[15] N. Mitani-Ueno,et al. Linking transport system of silicon with its accumulation in different plant species , 2020 .
[16] R. F. Barreto,et al. Changes in soil water availability and air-temperature impact biomass allocation and C:N:P stoichiometry in different organs of Stylosanthes capitata Vogel. , 2020, Journal of environmental management.
[17] M. Piccolo,et al. Root- and foliar-applied silicon modifies C: N: P ratio and increases the nutritional efficiency of pre-sprouted sugarcane seedlings under water deficit , 2020, PloS one.
[18] E. Habermann,et al. Water stress and warming impact nutrient use efficiency of Mombasa grass ( Megathyrsus maximus ) in tropical conditions , 2020 .
[19] Hongyan Liu,et al. Silicon Affects Plant Stoichiometry and Accumulation of C, N, and P in Grasslands , 2020, Frontiers in Plant Science.
[20] D. Rossatto,et al. Silicon changes C:N:P stoichiometry of sugarcane and its consequences for photosynthesis, biomass partitioning and plant growth , 2020, Scientific Reports.
[21] G. Caione,et al. Silicon Contribution Via Nutrient Solution in Forage Plants to Mitigate Nitrogen, Potassium, Calcium, Magnesium, and Sulfur Deficiency , 2020, Journal of Soil Science and Plant Nutrition.
[22] R. Deshmukh,et al. New evidence defining the evolutionary path of aquaporins regulating silicon uptake in land plants. , 2020, Journal of experimental botany.
[23] M. Zarebanadkouki,et al. Biogenic amorphous silica as main driver for plant available water in soils , 2020, Scientific Reports.
[24] Daniel M. Griffith,et al. Soil nutrients and precipitation are major drivers of global patterns of grass leaf silicification , 2020, Ecology.
[25] M. Loik,et al. Nitrogen Addition Increases the Sensitivity of Photosynthesis to Drought and Re-watering Differentially in C3 Versus C4 Grass Species , 2019, Front. Plant Sci..
[26] Renato de Mello Prado,et al. Short-term warming and water stress affect Panicum maximum Jacq. stoichiometric homeostasis and biomass production. , 2019, The Science of the total environment.
[27] I. Wright,et al. Climate warming and plant biomechanical defences: Silicon addition contributes to herbivore suppression in a pasture grass , 2019, Functional Ecology.
[28] Renato de Mello Prado,et al. Warming and water deficit impact leaf photosynthesis and decrease forage quality and digestibility of a C4 tropical grass. , 2019, Physiologia plantarum.
[29] A. Karathanasis. Mineral Equilibria in Environmental Soil Systems , 2018, Soil Mineralogy with Environmental Applications.
[30] Baoliang Chen,et al. Biochar Impacts on Soil Silicon Dissolution Kinetics and their Interaction Mechanisms , 2018, Scientific Reports.
[31] Mingxiu Long,et al. Effects of water and exogenous Si on element concentrations and ecological stoichiometry of plantain (Plantago lanceolata L.) , 2018 .
[32] A. Raschi,et al. Adaptation to high temperature mitigates the impact of water deficit during combined heat and drought stress in C3 sunflower and C4 maize varieties with contrasting drought tolerance. , 2017, Physiologia plantarum.
[33] B. Tubana,et al. A Review of Silicon in Soils and Plants and Its Role in US Agriculture: History and Future Perspectives , 2016 .
[34] D. Savvas,et al. Biostimulant activity of silicon in horticulture , 2015 .
[35] R. Haynes. A contemporary overview of silicon availability in agricultural soils , 2014 .
[36] A. Rodrigues,et al. Moderate warming increases PSII performance, antioxidant scavenging systems and biomass production in Stylosanthes capitata Vogel , 2014 .
[37] Hongyan Liu,et al. Ecological stoichiometry of N:P:Si in China’s grasslands , 2014, Plant and Soil.
[38] K. Hikosaka,et al. Temperature response of photosynthesis in C3, C4, and CAM plants: temperature acclimation and temperature adaptation , 2014, Photosynthesis Research.
[39] J. Stape,et al. Köppen's climate classification map for Brazil , 2013 .
[40] D. Sauer,et al. Development of a method for sequential Si extraction from soils , 2013 .
[41] Xinguang Zhu,et al. Exploiting the engine of C(4) photosynthesis. , 2011, Journal of experimental botany.
[42] G. Breitenbeck,et al. Simple, Robust Method for Quantifying Silicon in Plant Tissue , 2010 .
[43] J. Cornelis,et al. Tree species impact the terrestrial cycle of silicon through various uptakes , 2010 .
[44] B. Kimball,et al. Infrared heater arrays for warming ecosystem field plots , 2007 .
[45] Y. Kuzyakov,et al. Review Article Silicon pools and fluxes in soils and landscapes—a review , 2006 .
[46] Yiqi Luo,et al. Plant nitrogen concentration, use efficiency, and contents in a tallgrass prairie ecosystem under experimental warming , 2005 .
[47] J. Raven. THE TRANSPORT AND FUNCTION OF SILICON IN PLANTS , 1983 .
[48] M. Cândido,et al. Biomass flow in massai grass fertilized with nitrogen under intermittent stocking grazing with sheep , 2013 .
[49] E. Epstein. Chapter 1 Silicon in plants: Facts vs. concepts , 2001 .
[50] M. Siddiqi,et al. Utilization index: A modified approach to the estimation and comparison of nutrient utilization efficiency in plants , 1981 .