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Original Articles

Review: Genetics of the Azospirillum-Plant Root Association

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Pages 445-466 | Published online: 30 Mar 2011

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Muhammad Saqlain Zaheer, Muhammad Aown Sammar Raza, Muhammad Farrukh Saleem, Imran Haider Khan, Salman Ahmad, Rashid Iqbal & Kiril Manevski. (2019) Investigating the effect of Azospirillum brasilense and Rhizobium pisi on agronomic traits of wheat (Triticum aestivum L.). Archives of Agronomy and Soil Science 65:11, pages 1554-1564.
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E. Somers, J. Vanderleyden & M. Srinivasan. (2004) Rhizosphere Bacterial Signalling: A Love Parade Beneath Our Feet. Critical Reviews in Microbiology 30:4, pages 205-240.
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MaríaI. Saubidet & AtilioJ. Barneix. (1998) Growth stimulation and nitrogen supply to wheat plants inoculated with Azospirillum brasilense . Journal of Plant Nutrition 21:12, pages 2565-2577.
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Articles from other publishers (36)

Misbah Rehman, Sakshi Varshney, Lokesh Ravi & Stalin Nithaniyal. 2023. Microbial Symbionts. Microbial Symbionts 39 55 .
M.L. Puente, G.A. Maroniche, M. Panepucci, J. Sabio y García, J.E. García, M.V. Criado, R. Molina & F. Cassán. (2021) Localization and survival of Azospirillum brasilense Az39 in soybean leaves . Letters in Applied Microbiology.
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Robert L. Tate. 2020. Soil Microbiology. Soil Microbiology 389 414 .
Kusam Lata Rana, Divjot Kour, Tanvir Kaur, Rubee Devi, Ajar Nath Yadav, Neelam Yadav, Harcharan Singh Dhaliwal & Anil Kumar Saxena. (2020) Endophytic microbes: biodiversity, plant growth-promoting mechanisms and potential applications for agricultural sustainability. Antonie van Leeuwenhoek 113:8, pages 1075-1107.
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Rubson da C. Leite, José G. D. dos Santos, Eduardo L. Silva, Cássio R. C. R. Alves, Mariangela Hungria, Robson da C. Leite & Antonio C. dos Santos. (2019) Productivity increase, reduction of nitrogen fertiliser use and drought-stress mitigation by inoculation of Marandu grass (Urochloa brizantha) with Azospirillum brasilense. Crop and Pasture Science 70:1, pages 61.
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Rafael Goulart Machado. 2017. Grasses - Benefits, Diversities and Functional Roles. Grasses - Benefits, Diversities and Functional Roles.
Wei Liu, Jinbao Yang, Yu Sun, Xiaolin Liu, Yan Li, Zhenpeng Zhang & Zhihong Xie. (2017) Azorhizobium caulinodans Transmembrane Chemoreceptor TlpA1 Involved in Host Colonization and Nodulation on Roots and Stems. Frontiers in Microbiology 8.
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Lily Pereg, Luz E. de-Bashan & Yoav Bashan. (2015) Assessment of affinity and specificity of Azospirillum for plants. Plant and Soil 399:1-2, pages 389-414.
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Mohamed K. Abdel-Fatt & Abdel-Rahman M.A. Merwa. (2015) Effect of Different Sources of Nitrogen Fertilizers Combined with Vermiculite on Productivity of Wheat and Availability of Nitrogen in Sandy Soil in Egypt. American Journal of Plant Nutrition and Fertilization Technology 5:2, pages 50-60.
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Lily Pereg. 2015. Handbook for Azospirillum. Handbook for Azospirillum 181 197 .
Jörn Piel. 2010. Comprehensive Natural Products II. Comprehensive Natural Products II 475 510 .
Woo-Jong Yim, Selvaraj Poonguzhali, Munusamy Madhaiyan, Pitchai Palaniappan, M. A. Siddikee & Tongmin Sa. (2009) Characterization of plant-growth promoting diazotrophic bacteria isolated from field grown Chinese cabbage under different fertilization conditions. The Journal of Microbiology 47:2, pages 147-155.
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S. Tripathi, S. Kamal, I. Sheramati, R. Oelmuller & A. Varma. 2008. Mycorrhiza. Mycorrhiza 281 306 .
José-Miguel Barea, Rosario Azcón & Concepción Azcón-Aguilar. 2008. Plant Surface Microbiology. Plant Surface Microbiology 351 371 .
Wang Ming-Yuan, Xia Ren-Xue, Wu Qiang-Sheng, Liu Ji-Hong & Hu Li-Ming. (2007) Influence of arbuscular mycorrhizal fungi on microbes and enzymes of soils from different cultivated densities of red clover. Annals of Microbiology 57:1, pages 1-7.
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V. Tsagou & G. Aggelis. (2006) Growth dynamics of Azospirillum lipoferum at steady and transitory states in the presence of NH. Journal of Applied Microbiology 100:2, pages 286-295.
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Veronica Artursson, Roger D. Finlay & Janet K. Jansson. (2006) Interactions between arbuscular mycorrhizal fungi and bacteria and their potential for stimulating plant growth. Environmental Microbiology 8:1, pages 1-10.
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José I. Baldani & Vera L.D. Baldani. (2005) History on the biological nitrogen fixation research in graminaceous plants: special emphasis on the Brazilian experience. Anais da Academia Brasileira de Ciências 77:3, pages 549-579.
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Efrat Bahat-Samet, Susana Castro-Sowinski & Yaacov Okon. (2004) Arabinose content of extracellular polysaccharide plays a role in cell aggregation of Azospirillum brasilense. FEMS Microbiology Letters 237:2, pages 195-203.
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Edgardo Jofré, Antonio Lagares & Gladys Mori. (2004) Disruption of dTDP-rhamnose biosynthesis modifies lipopolysaccharide core, exopolysaccharide production, and root colonization in Azospirillum brasilense . FEMS Microbiology Letters 231:2, pages 267-275.
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Sonia Elizabeth Fischer, Marioli Juan Miguel & Gladys Beatriz Mori. (2003) Effect of root exudates on the exopolysaccharide composition and the lipopolysaccharide profile of Azospirillum brasilense Cd under saline stress . FEMS Microbiology Letters 219:1, pages 53-62.
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J. M. Barea, M. Gryndler, P. Lemanceau, H. Schüepp & R. Azcón. 2002. Mycorrhizal Technology in Agriculture. Mycorrhizal Technology in Agriculture 1 18 .
Denis Faure, Bernard Henrissat, David Ptacek, My Ali Bekri & Jos Vanderleyden. (2001) The celA Gene, Encoding a Glycosyl Hydrolase Family 3 β-Glucosidase in Azospirillum irakense, Is Required for Optimal Growth on Cellobiosides . Applied and Environmental Microbiology 67:5, pages 2380-2383.
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Jm. Barea. 2000. Biological Resource Management Connecting Science and Policy. Biological Resource Management Connecting Science and Policy 81 92 .
Jesús Caballero-Mellado, Lucía López-Reyes & Rocío Bustillos-Cristales. (1999) Presence of 16S rRNA genes in multiple replicons in Azospirillum brasilense . FEMS Microbiology Letters 178:2, pages 283-288.
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Denis Faure, Jos Desair, Veerle Keijers, My Ali Bekri, Paul Proost, Bernard Henrissat & Jos Vanderleyden. (1999) Growth of Azospirillum irakense KBC1 on the Aryl β-Glucoside Salicin Requires either salA or salB . Journal of Bacteriology 181:10, pages 3003-3009.
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Els Van Bastelaere, Mark Lambrecht, Hans Vermeiren, Anne Van Dommelen, Veerle Keijers, Paul Proost & Jos Vanderleyden. (1999) Characterization of a sugar-binding protein from Azospirillum brasilense mediating chemotaxis to and uptake of sugars. Molecular Microbiology 32:4, pages 703-714.
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Ann Van de Broek, Mark Lambrecht & Jos Vanderleyden. (1998) Bacterial chemotactic motility is important for the initiation of wheat root colonization by Azospirillum brasilense. Microbiology 144:9, pages 2599-2606.
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Miklos de Zamaroczy. (1998) Structural homologues PII and Pz of Azospirillum brasilense provide intracellular signalling for selective regulation of various nitrogen-dependent functions. Molecular Microbiology 29:2, pages 449-463.
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Anne Van Dommelen, Veerle Keijers, Jos Vanderleyden & Miklos de Zamaroczy. (1998) (Methyl)ammonium Transport in the Nitrogen-Fixing Bacterium Azospirillum brasilense . Journal of Bacteriology 180:10, pages 2652-2659.
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Edgardo Jofré, Sonia Fischer, Viviana Rivarola, Héctor Balegno & Gladys Mori. (1998) Saline stress affects the attachment of Azospirillum brasilense Cd to maize and wheat roots . Canadian Journal of Microbiology 44:5, pages 416-422.
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A. Van Dommelen, V. Keijers, J. Vanderleyden & M. DeZamaroczy. 1998. Biological Nitrogen Fixation for the 21st Century. Biological Nitrogen Fixation for the 21st Century 127 128 .
L. Pereg-Gerk, F. Arsène, P. Gounon, A. Paquelin, R. Carreno-Lopez, I. R. Kennedy & C. Eimerich. 1998. Biological Nitrogen Fixation for the 21st Century. Biological Nitrogen Fixation for the 21st Century 395 395 .
J. Vanderleyden. 1998. Biological Nitrogen Fixation for the 21st Century. Biological Nitrogen Fixation for the 21st Century 373 374 .
JoséI. Baldani, Leonardo Caruso, Vera L.D. Baldani, Silvia R. Goi & Johanna Döbereiner. (1997) Recent advances in BNF with non-legume plants. Soil Biology and Biochemistry 29:5-6, pages 911-922.
Crossref
Anton Hartmann. 1996. Biological Nitrogen Fixation Associated with Rice Production. Biological Nitrogen Fixation Associated with Rice Production 211 223 .

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