American Journal of Molecular Biology

American Journal of Molecular Biology

ISSN Print: 2161-6620
ISSN Online: 2161-6663
www.scirp.org/Journal/ajmb
E-mail: ajmb@scirp.org
"Microbial Phytases and Phytate: Exploring Opportunities for Sustainable Phosphorus Management in Agriculture"
written by Nelly P. Balaban, Aliya D. Suleimanova, Lia R. Valeeva, Inna B. Chastukhina, Natalia L. Rudakova, Margarita R. Sharipova, Eugene V. Shakirov,
published by American Journal of Molecular Biology, Vol.7 No.1, 2017
has been cited by the following article(s):
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[3] Bioactivation of Legacy Phosphorus in Calcareous Soil by P-Activators and Its Effect on Maize Growth
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[4] Applications of microbial biomolecules in sustainable agriculture
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[5] Encapsulated Phytase Produced by Recombinant Yarrowia lipolytica Exhibits High Efficiency on Quails at Low Doses
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[6] Identification of Phytate Phosphorus-solubilizing PGPB in Avena sativa Rhizosphere from Alpine Grassland and Functional Characteristics of Dominant Genus …
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[9] Flame retardant treated wood: An investigation into phytic acid and its ability to act as a flame retardant agent
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[10] Advances in breeding and engineering climate-resilient crops: A comprehensive review
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[11] Role of microbial phytases in improving fish health
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[12] Microbiome analysis revealed distinct microbial communities occupying different sized nodules in field-grown peanut
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[13] Ornamental cabbage (Brassica oleracea var. acephala) responses to phytase enzyme purified from Lactobacillus coryniformis application
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[14] Microbial Phytases: Properties and Applications in the Food Industry
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[15] Insight into phytase-producing microorganisms for phytate solubilization and soil sustainability
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[16] Phosphate-solubilizing bacteria: Their agroecological function and optimistic application for enhancing agro-productivity
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[17] Isolation, characterization and optimization of Cystobasidium minutum for phytase production
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[18] Comparative Assay of Phytase Activity in Yarrowia lipolytica Strains Transformed with the Neutrophilic Phytase Genome from Obesumbacterium proteus in Batch …
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[19] Harnessing the Phytase Production Potential of Soil-Borne Fungi from Wastewater Irrigated Fields Based on Eco-Cultural Optimization under Shake Flask …
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[20] How can we breed for phosphate efficiency in maize (Zea mays)?
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[21] Developments in Fungal Phytase Research: Characteristics and Multifarious Applications
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[22] Production, Immobilization and Characterization of Fungal Phytase and its Utilization in Food and Feed Industry
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[23] ИЗУЧЕНИЕ ФОСФАТМОБИЛИЗУЮЩЕЙ СПОСОБНОСТИ ШТАММОВ AGROBACTERIUM RADIOBACTER 10 И PSEUDOMONAS CHLORORAPHIS ПГ7 …
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[24] Peltigera frigida Lichens and Their Substrates Reduce the Influence of Forest Cover Change on Phosphate Solubilizing Bacteria
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[25] Bacterial phosphorus turnover in agricultural soils and the effect of different fertilizer amendments
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[26] Unobserved variables and applications of stochastic processes in life sciences
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[27] Soil microbial community dynamics in response to cover crop implementation and P fertilizer management
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[28] Multifarious applications of fungal phytases
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[29] Production of Plant Beneficial and Antioxidants Metabolites by Klebsiella variicola under Salinity Stress
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[30] A Review: Is Cinderella's story of self-DNA extracellular effect towards plant growth real?
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[31] Comparative effectiveness of agricultural advisory services rendered by public and private sectors in the Punjab, Pakistan
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[32] Production of Plant Beneficial and Antioxidants Metabolites by Klebsiellavariicola under Salinity Stress
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[33] Phosphobacteria as key actors to overcome phosphorus deficiency in plants
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[34] Inoculation of Klebsiella variicola Alleviated Salt Stress and Improved Growth and Nutrients in Wheat and Maize
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[35] Phytate and Microbial Suspension Amendments Increased Soybean Growth and Shifted Microbial Community Structure
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[36] Contribution of microbial phytases to the improvement of plant growth and nutrition: A review
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[37] Soil Fertility Management for Better Crop Production
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[38] The optimization of the composition of fertilizers based on milled phosphorites
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[39] Enhancing phosphorus-use efficiency in crop production
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[40] Fusion of the N-terminal domain of Pseudomonas sp. phytase with Bacillus sp. phytase and its effects on optimal temperature and catalytic efficiency
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[41] Harnessing Beneficial Bacillus in Productivity Improvement of Food Security Crops of Himalayan Agro-Climatic Zones
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[42] Phytase Activity In Human Nutrition
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[43] Characterization of Arabidopsis thaliana Plants Expressing Bacterial Phytase
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[44] Phytases and their pharmaceutical applications: Mini-review
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[45] Оптимизация состава удобрений на основе молотых фосфоритов
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[46] Характеристика растений Arabidopsis thaliana, экспрессирующих бактериальную фитазу
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[47] Phytases and the Prospects for Their Application
Applied Biochemistry and Microbiology, 2018
[48] Strategies to Improve Phosphorus Availability in A Sustainable Agricultural System
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[49] ФИТАЗЫ И ПЕРСПЕКТИВЫ ИХ ПРИМЕНЕНИЯ (ОБЗОР)
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[50] The positive impacts of microbial phytase on its nutritional applications
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[51] Histidine Acid Phytases of Microbial Origin
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[52] Гистидиновые кислые фитазы микроорганизмов
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[53] Purification of thermo and acid tolerant extracellular phytase from a new soil isolate of Amycolatopsis vancoresmycina S-12
Biocatalysis and Agricultural Biotechnology, 2017
[54] Anticancer and Nutraceutical Potentialities of Phytase/Phytate
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[55] Microbial phytase: Impact of advances in genetic engineering in revolutionizing its properties and applications
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[56] Biostimulants, biopesticides
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