Agriculture Reference
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Bianco C, Defez R (2010) Improvement of phosphate solubilization and Medicago plant yield by
an indole-3-acetic acid-overproducing strain of Sinorhizobium meliloti . Appl Environ
Microbiol 76:4626-4632
Biswas DR, Narayanasamy G (2006) Rock phosphate enriched compost: an approach to improve
low-grade Indian rock phosphate. Bioresour Technol 97:2243-2251
B¨hme L, Langer U, B¨hme F (2005) Microbial biomass, enzyme activities and microbial
community structure in two European long-term field experiments. Agric Ecosyst Environ
109:141-152
Bolle SD, Gebremikael MT, Maervoet V, Neve SD (2013) Performance of phosphate-solubilizing
bacteria in soil under high phosphorus conditions. c 49:705-714
Bumb B (1995) Global fertilizer perspective, 1980-2000: the challenges in structural transforma-
tion. Technical Bulletin T-42. International Fertilizers Development Centre, Muscle Shoals,
AL
Chandra S, Choure K, Dubey RC, Maheshwari DK (2007) Rhizosphere competent Mesorhizobium
loti MP6 induces root hair curling, inhibits Sclerotinia sclerotiorum and enhances growth of
Indian mustard ( Brassica campestris ). Braz J Microbiol 38:124-130
Chen YP, Rekha PD, Arun AB, Shen FT, Lai WA, Young CC (2006) Phosphate solubilizing
bacteria from subtropical soil and their tricalcium phosphate solubilizing abilities. Appl Soil
Ecol 34:33-41
Chesti MH, Ali T (2007) Effect of integrated phosphorus management on yield, nutrient avail-
ability and phosphorus transformation in green gram. J Res 6:243-248
Collavino MM, Sansberro PA, Mroginski LA, Aguilar OM (2010) Comparison of in vitro solu-
bilization activity of diverse phosphate-solubilizing bacteria native to acid soil and their ability
to promote Phaseolus vulgaris growth. Biol Fertil Soils 46:727-738
Comakli B, Dasci M (2009) Effects of biofertilizer, cowpat ash and phosphorus and seed yield of
alfalfa. Asian J Chem 21:689-696
Cooper R (1959) Bacterial fertilizers in Soviet Union. Soils Fert 22:327-333
Corkidi L, Rowland D, Johnson N, Allen E (2002) Nitrogen fertilization alters the functioning of
arbuscular mycorrhizas at two semiarid grasslands. Plant Soil 240:299-310
Dastager SG, Deepa CK, Pandey A (2011) Plant growth promoting potential of Pontibacter
niistensis in cowpea ( Vigna unguiculata (L.) Walp.). Appl Soil Ecol 49:250-255
Deepa CK, Dastager SG, Pandey A (2010) Isolation and characterization of plant growth promot-
ing bacteria from non-rhizospheric soil and their effect on cowpea ( Vigna unguiculata (L.)
Walp.) seedling growth. World J Microbiol Biotechnol 26:1233-1240
Del Campillo MC, Van der Zee SEATM, Torrent J (1999) Modelling long-term phosphorus
leaching and changes in phosphorus fertility in excessively fertilized acid sandy soils. Eur J
Soil Sci 50:391-399
Deshwal VK, Kumar P (2013) Production of plant growth promoting substance by Pseudomonads.
J Acad Ind Res 2:221-225
Deshwal VK, Reena SP, Gupta S, Chakraborty M, Chatterji T (2011) Phosphorus solubilizing
Pseudomonas aeruginosa PMV-14 enhance productivity in rice crop. Int J Appl Agr Res 6:29-
33
Dey R, Pal KK, Bhatt DM, Chauhan SM (2004) Growth promotion and yield enhancement of
peanut ( Arachis hypogaea L.) by application of plant growth-promoting rhizobacteria.
Microbiol Res 159:371-394
Dugar G, Gopinath B, Arun B, Sharma S (2013) Plant growth promoting abilities of phosphate
solubilizers from the rhizosphere of Parthenium hysterophorus . Afr J Microbiol Res 7:147-
151
Dutta D, Bandyopadhyay P (2009) Performance of chickpea ( Cicer arietinum L.) to application of
phosphorus and bio-fertilizer in laterite soil. Arch Agron Soil Sci 55:147-155
Ebrahimi H, Yasari E, Pirdashti HA (2014) Effects of phosphate solubilizing bacteria and
phosphorous levels on rice ( Oryza sativa L.). Agric Adv 3:56-66
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