Impact of Bacteria-Nitrogen Coupling on Cotton Growth and Nitrogen Utilization Under Different Salt Levels
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[1] C. Crusciol,et al. Bacillus subtilis Inoculation Improves Nutrient Uptake and Physiological Activity in Sugarcane under Drought Stress , 2022, Microorganisms.
[2] Beibei Zhou,et al. Magnetically-treated brackish water affects soil water-salt distribution and the growth of cotton with film mulch drip irrigation in Xinjiang, China , 2022, Agricultural Water Management.
[3] Xinlin He,et al. Mechanism of Saline-Alkali land improvement using subsurface pipe and vertical well drainage measures and its response to agricultural soil ecosystem. , 2021, Environmental pollution.
[4] Fangbin Cao,et al. Genome-wide association study reveals a genomic region on 5AL for salinity tolerance in wheat , 2021, Theoretical and Applied Genetics.
[5] Yongbin Ou,et al. Acclimation to nitrogen × salt stress in Populus bolleana mediated by potassium/sodium balance , 2021 .
[6] Zhijun Li,et al. Evaluation of cotton N nutrition status based on critical N dilution curve, N uptake and residual under different drip fertigation regimes in Southern Xinjiang of China , 2021 .
[7] Shumei Fang,et al. Response Mechanisms of Plants Under Saline-Alkali Stress , 2021, Frontiers in Plant Science.
[8] Yu Liu,et al. Effects of excessive nitrogen on nitrogen uptake and transformation in the wetland soils of Liaohe estuary, northeast China. , 2021, The Science of the total environment.
[9] Beibei Zhou,et al. Effect of magnetic water irrigation on the improvement of salinized soil and cotton growth in Xinjiang , 2021 .
[10] Guisheng Zhou,et al. Gibberellic acid and nitrogen efficiently protect early seedlings growth stage from salt stress damage in Sorghum , 2021, Scientific Reports.
[11] A. Ditta,et al. Bacillus subtilis Y16 and biogas slurry enhanced potassium to sodium ratio and physiology of sunflower (Helianthus annuus L.) to mitigate salt stress , 2021, Environmental Science and Pollution Research.
[12] Yuqi Feng,et al. Physiological and metabolomic responses of bermudagrass (Cynodon dactylon) to alkali stress. , 2020, Physiologia plantarum.
[13] H. Mohamed,et al. Evaluation of wheat (Triticum aestivum L.) salt stress tolerance using physiological parameters and retrotransposon-based markers , 2020, Genetic Resources and Crop Evolution.
[14] In-Jung Lee,et al. Bacillus subtilis JW1 enhances plant growth and nutrient uptake of Chinese cabbage through gibberellins secretion , 2019 .
[15] M. Shahid,et al. Regulation of antioxidant production, ion uptake and productivity in potato (Solanum tuberosum L.) plant inoculated with growth promoting salt tolerant Bacillus strains. , 2019, Ecotoxicology and environmental safety.
[16] Jingkuan Sun,et al. Response of seedling growth and physiology of Sorghum bicolor (L.) Moench to saline-alkali stress , 2019, PloS one.
[17] A. Hashem,et al. Bacillus subtilis: A plant-growth promoting rhizobacterium that also impacts biotic stress , 2019, Saudi journal of biological sciences.
[18] Wenyan Li,et al. Long-term urea fertilization alters the composition and increases the abundance of soil ureolytic bacterial communities in an upland soil , 2019, FEMS microbiology ecology.
[19] Jian-feng Zhang. Amelioration and Utilization of Saline–Alkali Land , 2019 .
[20] Qiang Zhao,et al. Effects of reduced nitrogen rate on cotton yield and nitrogen use efficiency as mediated by application mode or plant density , 2018 .
[21] D. Jacobson,et al. Plant Growth‐Promoting Rhizobacteria (PGPR) Reduce Evaporation and Increase Soil Water Retention , 2017 .
[22] S. Aliniaeifard,et al. Effects of Bacillus subtilis on some physiological and biochemical parameters of Triticum aestivum L. (wheat) under salinity. , 2017, Plant physiology and biochemistry : PPB.
[23] Xiaoli Liu,et al. Root Damage under Alkaline Stress Is Associated with Reactive Oxygen Species Accumulation in Rice (Oryza sativa L.) , 2017, Front. Plant Sci..
[24] Zhihua Liu,et al. Alleviation of the effects of saline-alkaline stress on maize seedlings by regulation of active oxygen metabolism by Trichoderma asperellum , 2017, PloS one.
[25] H. Vereecken,et al. A meta‐analysis of soil salinization effects on nitrogen pools, cycles and fluxes in coastal ecosystems , 2017, Global change biology.
[26] G. Owens,et al. Amelioration of saline–sodic soil with gypsum can increase yield and nitrogen use efficiency in rice–wheat cropping system , 2017 .
[27] B. Singh,et al. Microbiome and the future for food and nutrient security , 2017, Microbial biotechnology.
[28] S. Fahad,et al. Nitrogen Fertilizer Management for Enhancing Crop Productivity and Nitrogen Use Efficiency in a Rice-Oilseed Rape Rotation System in China , 2016, Front. Plant Sci..
[29] Gebisa Ejeta,et al. A new global agenda for nutrition and health: the importance of agriculture and food systems , 2016, Bulletin of the World Health Organization.
[30] M. Daami‐Remadi,et al. Efficacy of Bacillus subtilis V26 as a biological control agent against Rhizoctonia solani on potato. , 2015, Comptes rendus biologies.
[31] A. Imran,et al. Isolation and characterization of plant growth-promoting rhizobacteria from wheat rhizosphere and their effect on plant growth promotion , 2015, Front. Microbiol..
[32] Suo-min Wang,et al. Soil microbe Bacillus subtilis (GB03) induces biomass accumulation and salt tolerance with lower sodium accumulation in wheat , 2014, Crop and Pasture Science.
[33] D. Suarez,et al. INTERACTIVE EFFECTS OF SALINITY AND N ON PEPPER (CAPSICUM ANNUUM L.) YIELD, WATER USE EFFICIENCY AND ROOT ZONE AND DRAINAGE SALINITY , 2014 .
[34] Maqshoof Ahmad,et al. INTEGRATED USE OF PLANT GROWTH PROMOTING RHIZOBACTERIA , BIOGAS SLURRY AND CHEMICAL NITROGEN FOR SUSTAINABLE PRODUCTION OF MAIZE UNDER SALT-AFFECTED CONDITIONS , 2014 .
[35] Chi Xu,et al. Effect of Salinity on Soil Respiration and Nitrogen Dynamics , 2013 .
[36] Wanchun Sun,et al. Effects of Nitrogen Application Level on Rice Nutrient Uptake and Ammonia Volatilization , 2013 .
[37] Z. Ke. Effect of nitrogen topdressing on the growth of Suaeda salsa and the improvement of saline soil , 2013 .
[38] S. Ruppel,et al. Interactive effects of plant growth–promoting rhizobacteria and organic fertilization on P nutrition of Zea mays L. and Brassica napus L. , 2011 .
[39] M. Marahiel,et al. Environmental Salinity Determines the Specificity and Need for Tat-Dependent Secretion of the YwbN Protein in Bacillus subtilis , 2011, PloS one.
[40] M. Abbasi,et al. Isolation of plant growth promoting rhizobacteria from wheat rhizosphere and their effect on improving growth, yield and nutrient uptake of plants , 2011 .
[41] K. Demir,et al. Effects of salt stress on pigment and total soluble protein contents of three different tomato cultivars. , 2010 .
[42] Y. Singh,et al. Deficit irrigation and nitrogen effects on seed cotton yield, water productivity and yield response factor in shallow soils of semi-arid environment. , 2010 .
[43] M. Arshad,et al. Rhizobacteria containing ACC-deaminase confer salt tolerance in maize grown on salt-affected fields. , 2009, Canadian journal of microbiology.
[44] S. Elli̇altıoğlu,et al. Effect of salt stress on antioxidant defense systems, lipid peroxidation, and chlorophyll content in green bean , 2008, Russian Journal of Plant Physiology.
[45] Y. Xue,et al. Antioxidant enzymes and physiological characteristics in two Jerusalem artichoke cultivars under salt stress , 2008, Russian Journal of Plant Physiology.
[46] H. S. Thind,et al. Response of cotton to various levels of nitrogen and water applied to normal and paired sown cotton under drip irrigation in relation to check-basin , 2008 .
[47] Laosheng Wu,et al. Effects of salinity and nitrogen on cotton growth in arid environment , 2008, Plant and Soil.
[48] Qiang Yu,et al. Soil nitrate accumulation, leaching and crop nitrogen use as influenced by fertilization and irrigation in an intensive wheat–maize double cropping system in the North China Plain , 2006, Plant and Soil.
[49] S. Mandhania,et al. Antioxidant defense mechanism under salt stress in wheat seedlings , 2006, Biologia Plantarum.
[50] E. Turhan,et al. Changes in peroxidase activities and soluble proteins in strawberry varieties under salt-stress , 2006, Acta Physiologiae Plantarum.
[51] Yin Han-wen. Effects of Bacillus subtilis on salt tolerance of cucumber , 2006 .
[52] Li Dong-xue. World Resources of Saline Soil and Main Amelioration Measures , 2005 .
[53] H. Junge,et al. Bacillus subtilis as Growth Promotor in Hydroponically Grown Toma- toes under Saline Conditions , 2004 .
[54] V. Martínez,et al. Effect of NaCl on citrus cultivars , 2004 .
[55] M. Ashraf,et al. Changes in Soluble Proteins in Spring Wheat Stressed with Sodium Chloride , 1999, Biologia Plantarum.
[56] N. Katerji,et al. Effect of salinity on yield and nitrogen uptake of four grain legumes and on biological nitrogen contribution from the soil , 2001 .
[57] H. Junge,et al. Use of Bacillus subtilis as biocontrol agent. IV. Salt-stress tolerance induction by Bacillus subtilis FZB24 seed treatment in tropical vegetable field crops, and its mode of action , 2001 .
[58] M. Pessarakli,et al. Uptake of nitrogen-15 by cotton under salt stress , 1985 .