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Loffredo E, Senesi N (2009) In vitro and in vivo assessment of the potential of compost and its
humic acid fraction to protect ornamental plants from soilborne pathogenic fungi. Sci Hort
122:432-439
Loffredo E, Berloco M, Casulli F, Senesi N (2007) In vitro assessment of the inhibition of humic
substances on the growth of two strains of Fusarium oxysporum . Biol Fert Soils 43:759-769
Loffredo E, Berloco M, Senesi N (2008) The role of humic fractions from soil and compost in
controlling the growth in vitro of phytopathogenic and antagonistic soil-borne fungi. Ecotox
Environ Safe 69:350-357
Loschinkohl C, Boehm MJ (2001) Composted biosolids incorporation improves turfgrass estab-
lishment on disturbed urban soil and reduces leaf rust severity. HortScience 36:790-794
Malandraki I, Tjamos SE, Pantelides IS, Paplomatas EJ (2008) Thermal inactivation of compost
suppressiveness implicates possible biological factors in disease management. Biol Cont
44:180-187
Mathur SP (1991) Composting process. In: Martin AM (ed) Bioconversion of waste materials to
industrial products. Elsevier, New York, pp 147-186
Mazzola M (2002) Mechanisms of natural soil suppressiveness to soilborne diseases. Antonie van
Leeuwenhock 81:557-564
Moliszewska E, Pisarek I (1996) Influence of humic substances on the growth of two phytopatho-
genic soil fungi. Environ Int 22:579-584
Noble R, Coventry E (2005) Suppression of soil-borne plant diseases with composts: a review.
Biocontrol Sci Technol 15:3-20
Nor Qhairul Izzreen MN, Mohd Fadzelly AB (2013) Phytochemicals and antioxidant properties
of different parts of Camellia sinensis leaves from Sabah tea plantation in Sabah, Malaysia. Int
Food Res J 20:307-312
Pal KK, McSpadden GB (2006) Biological control of plant pathogens. The plant health instructor.
APSnet, pp 1-25
Pal Bais H, Fall R, Vivanco JM (2004) Biocontrol of Bacillus subtilis against infection of Arabi-
dopsis roots by Pseudomonas syringae is facilitated by biofilm formation and surfactin produc-
tion. Plant Physiol 134:307-319
Pane C, Spaccini R, Piccolo A, Scala F, Bonanomi G (2011) Compost amendments enhance peat
suppressiveness to Pythium ultimum , Rhizoctonia solani and Sclerotinia minor . Biol Cont
56:115-124
Pane C, Villecco D, Campanile F, Zaccardelli M (2012a) Novel strains of Bacillus , isolated from
compost and compost-amended soils, as biological control agents against soil-borne phyto-
pathogenic fungi. Biocontrol Sci Tech 22:1373-1388
Pane C, Celano G, Villecco D, Zaccardelli M (2012b) Control of Botrytis cinerea , Alternaria
alternata and Pyrenochaeta lycopersici on tomato with whey compost-tea applications. Crop
Prot 38:80-86
Pane C, Piccolo A, Spaccini R, Celano G, Villecco D, Zaccardelli M (2013) Agricultural waste-
based composts exhibiting suppressivity to diseases caused by the phytopathogenic soil-borne
fungi Rhizoctonia solani and Sclerotinia minor. Appl Soil Ecol 65:43-51
Paplomatas EJ, Tjamos SE, Malandrakis AA, Kafka AL, Zouvelou SV (2005) Evaluation of com-
post amendments for suppressiveness against Verticillium wilt of eggplant and study of mode
of action using a novel Arabidopsis pathosystem. Eur J Plant Pathol 112:183-189
Parr JF, Hornick SB (1992) Agricultural use of organic amendments: a historical perspective. Am
J Alt Agr 7:181-189
Pascual JA, Garcia C, Hernandez T, Lerma S, Lynch JM (2002) Effectiveness of municipal waste
compost and its humic fraction in suppressing Pythium ultimum . Microb Ecol 44:59-68
PĂ©rez-Piqueres A, Edel-Hermann V, Alabouvette C, Steinberg C (2006) Response of soil microbial
communities to compost amendments. Soil Biol Biochem 38:460-470
Postma J, Montanari M, van den Boogert P (2003) Microbial enrichment to enhance the disease
suppressive activity of compost. Eur J Soil Biol 39:157-163
Pugliese M, Liu BP, Gullino ML, Garibaldi A (2008) Selection of antagonists from compost to
control soil-borne pathogens. J Plant Dis Prot 115:220-228
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