64
A. Dahiya et al.
Duvauchelle D (2009) Plant fact sheet for hopbush (Dodonaea viscose (L) J acq). USDA-National
Resources Conservation Service Hawaii Plant Materials Center, Hoolehua 96729
Eaglesham ARJ (1989) Global importance of Rhizobium as an inoculant. In: Microbial inoculation
of crop plants, Chapter 3 (Campbell R and Macdonald R eds.). Oxford University Press, Oxford
Eevers N, Gielen M, Sánchez- López A, Jaspers S, White J, Vangronsveld J, Weyens N (2015)
Optimization of isolation and cultivation of bacterial endophytes through addition of plant extract
to nutrient media. Microbiol Biotechnol 8:707–715
Ezawa T, Smith SE, Smith FA (2002) P metabolism and transport in AM fungi. Plant Soil 244:221–
230
Fakhro A, Andrade-Linares DR, von Bargen S, Bandte M, Büttner C, Grosch R, Schwarz D, Franken
P (2010) Impact of Piriformospora indica on tomato growth and on interaction with fungal and
viral pathogens. Mycorrhiza 20(3):191–200
Fankem H, Nwaga D, Deubel A, Dieng L, Merbach W, Etoa FX (2006) Occurrence and functioning
of phosphate solubilizing microorganisms from oil palm tree (Elaeis guineensis) rhizosphere in
Cameroon. Afr J Biotechnol 5:2450–2460
Fankem HT, Chakounte GVT, Ngonkot L, Mafokoua HL, Dondjou DT, Simo C (2015) Common
bean (Phaseolus vulgaris L.) and soybean (Glycine max) growth and nodulation as influenced by
rock phosphate solubilizing bacteria under pot grown conditions. Int J Agric Policy Res 5:242–250
Forchetti G, Masciarelli O, Alemano S, Alvarez D, Abdala G (2007) Endophytic bacteria in
sunflower (Helianthus annuus L.): isolation, characterization, and production of jasmonates and
abscisic acid in culture medium. Appl Microbiol Biotechnol 76:1145–1152
Foster RC (1988) Microenvironments of soil microorganisms. Biol Fertil Soils 6:189–203. https://
doi.org/10.1007/BF00260816
Fraga R, Rodriguez H, Gonzalez T (2001) Transfer of the gene encoding the NapA acid phosphatase
of Morganella morganii to a Burkholderia cepacia strain. Acta Biotechnol 21(4):359–369
Franken F (2012) The plant strengthening root endophyte Piriformospora indica: potential
application and the biology behind. Appl Microbiol Biotechnol 96:1455–1464
Gagné S, Richard C, Rouseau H, Antoun H (1987) Xylem-residing bacteria in alfalfa roots. Can J
Microbiol 33:996–1000
Gagne-Bourgue F, Aliferis KA, Seguin P, Rani M, Samson R, Jabaji S (2013) Isolation and characterization of indigenous endophytic bacteria associated with leaves of switchgrass (Panicum
virgatum L.) cultivars. J Appl Microbiol 114(3):836–853
Gaiero JR, McCall CA, Thompson KA, Day NJ, Best AS, Dunfield KE (2013) Inside the root
microbiome: Bacterial root endophytes and plant growth promotion. Am J Bot 100:1738–1750
Gamalero E, Lingua G, Berta G, Lemanceau P (2003) Methods for studying root colonization by
introduced beneficial bacteria. Agron J 23:407–418
Gardner JM, Feldman AW, Zablotowicz RM (1982) Identity and behavior of xylem-residing bacteria
in rough lemon roots of Florida citrus trees. Appl Environ Microbiol 43:1335–1342
Gaur AC (1990) Phosphate solubilizing microorganisms as biofertilizers. In: Gaur AC (eds), Omega
Scientific Publishers. New Delhi, pp 16–72
Germida JJ, Siciliano SD, Renato de Freitas J, Seib AM (1998) Diversity of root associated bacteria
associated with field-grown canola (Brassica napus L.) and wheat (Triticum aestivum L.). FEMS
Microbiol Ecol 26:43–50
Glick BR (2010) Using soil bacteria to facilitate phytoremediation. Biotechnol Adv 28:367–374
Glick BR (2012) Plant growth-promoting bacteria: mechanisms and applications. Scientifica. http://
sci-hub.tw/10.6064/2012/963401
Glick BR (2014) Bacteria with ACC deaminase can promote plant growth and help to feed the
world. Microbiol Res 169(1):30–39
Glick BR (2015) Beneficial plant-bacterial interactions. Springer, Heidelberg, pp 123–157. https://
doi.org/10.1007/978-3-319-13921-0
Goldstein AH (1995) Recent progress in understanding the molecular genetics and biochemistry of
calcium phosphate solubilization by Gram-negative bacteria. Biol Agric Hortic 12:185–193
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