Agriculture Reference
In-Depth Information
References
Abdel-Aziz SM, MoharamM, Hamed H, Mouafi F (2012) Extracellular metabolites produced by a
novel strain, Bacillus alvei NRC-14:1. Some properties of the chitinolytic system. New York
Sci J 5:53-62
Abdel-Aziz SM, El-Nagdi WA, Moharam ME (2013) Efficiency of the novel strain Bacillus alvei
NRC-14 for biocontrol of parasitic nematode. J Agric Food Tech 3:31-40
Abeles FB, Morgan PW, Saltveit ME Jr (1992) Ethylene in plant biology, 2nd edn. Academic,
New York, NY, 414 pp
Ahmad E, Khan MS, Zaidi A (2013) ACC deaminase producing Pseudomonas putida strain PSE3
and Rhizobium leguminosarum strain RP2 in synergism improves growth, nodulation and
yield of pea grown in alluvial soils. Symbiosis 61:93-104
Alizadeh H, Behboudi K, Ahmadzadeh M, Javan-Nikkhah M, Zamioudis C, Pieterse CMJ, Bakker
PAHM (2013) Induced systemic resistance in cucumber and Arabidopsis thaliana by the
combination of Trichoderma harzianum Tr6 and Pseudomonas sp. Ps14. Biol Contr 65:14-23
Arora NK, Kang SC, Maheshwari DK (2001) Isolation of siderophore producing strains of
Rhizobium meliloti and their biocontrol potential against Macrophomina phaseolina that
causes charcoal rot of groundnut. Curr Sci 81:673-677
Arora NK, Khare E, Oh JH, Kang SC, Maheshwar DK (2008) Diverse mechanisms adopted by
fluorescent Pseudomonas PGC2 during the inhibition of Rhizoctonia solani and Phytophthora
capsici . World J Microbiol Biotechnol 24:581-585
Arrebola E, Jacobs R, Korsten L (2010) Iturin A is the principal inhibitor in the biocontrol activity
of Bacillus amyloliquefaciens PPCB004 against postharvest
fungal pathogens. J Appl
Microbiol 108:386-395
Asadhi S, Reddy BVB, Sivaprasad Y, Prathyusha M, Krishna TM, Kumar KVK (2013) Charac-
terization, genetic diversity and antagonistic potential of 2,4-diacetylphloroglucinol producing
Pseudomonas fluorescens isolates in groundnut-based cropping systems of Andhra Pradesh,
India. Arch Phytopathol Plant Prot. doi: 10.1080/03235408.2013.782223
Avis TJ, Grave V, Antoun H, Tweddel RJ (2008) Multifaceted beneficial effects of rhizosphere
microorganisms on plant health and productivity. Soil Biol Biochem 40:1733-1740
Babana AH, Dicko AH, Ma ¨ ga K, Traor ´ D (2013) Characterization of rock phosphate-
solubilizing microorganisms isolated from wheat ( Triticum aestivum L.) rhizosphere in Mali.
J Microbiol Microbial Res 1:1-6
Badri DV, Vivanco JM (2009) Regulation and function of root exudates. Plant Cell Environ
32:666-681
Bais HP, Park SW, Weir TL, Callaway RM, Vivanco JM (2004) How plants communicate using
the underground information superhighway. Trends Plant Sci 9:26-32
Bakker PAHM, Pieterse CMJ, van Loon LC (2007) Induced systemic resistance by fluorescent
Pseudomonas spp. Phytopathology 97:239-243
Barka EA, Belarbi A, Hachet C, Nowak J, Audran JC (2000) Enhancement of in vitro growth and
resistance to gray mould of Vitis vinifera cocultured with plant growth-promoting
rhizobacteria. FEMS Microbiol Lett 186:91-95
Barka EA, Gognies S, Nowak J, Audran JC, Belarbi A (2002) Inhibitory effect of endophyte
bacteria on Botrytis cinerea and its influence to promote the grapevine growth. Biol Contr
24:135-142
Bar-Ness E, Chen Y, Hadar Y, Marschner H, R¨mheld V (1991) Siderophores of Pseudomonas
putida as an iron source for dicot and monocot plants. In: Chen Y, Hadar Y (eds) Iron nutrition
and interactions in plants. Kluwer, Dordrecht, pp 271-281
Bashan Y, Holguin G (1998) Proposal for the division of plant growth-promoting rhizobacteria
into two classifications: biocontrol-PGPB (plant growth-promoting bacteria) and PGPB. Soil
Biol Biochem 30:1225-1228
Beneduzi A, Ambrosini A, Luciane MPP (2012) Plant growth-promoting rhizobacteria (PGPR):
their potential as antagonists and biocontrol agents. Genet Mol Biol 35:1044-1051
Search WWH ::




Custom Search