Konappa N, Krishnamurthy S, Siddaiah CN, Ramachandrappa NS, Chowdappa S (2018) Evaluation of biological efficacy of Trichoderma asperellum against tomato bacterial wilt caused by
Ralstonia solanacearum. Egypt J Biol Pest Control 28:63. https://doi.org/10.1186/s41938-0180069-5
Korolev N, David DR, Elad Y (2008) The role of phytohormones in basal resistance and
Trichoderma induced systemic resistance to Botrytis cinerea in Arabidopsis thaliana. BioControl 53:667–683
Kumar AS, Lakshmanan V, Caplan JL, Powell D, Czymmek KJ et al (2012) Rhizobacteria Bacillus
subtilis restricts foliar pathogen entry through stomata. Plant J 72:694–706
Laborde MCF, Botelho DMDS, Rodriguez GAA, Resende MLVD, Queiroz MVD, Batista AD,
Medeiros FHVD (2019) Phialomyces macrosporus reduces Cercospora coffeicola survival on
symptomatic coffee leaves. https://doi.org/10.25186/cs.v14i1
Lakshmanan V, Castaneda R, Rudrappa T, Bais HP (2013) Root transcriptome analysis of
Arabidopsis thaliana exposed to beneficial Bacillus subtilis FB17 rhizobacteria revealed
genes for bacterial recruitment and plant defense independent of malate efflux. Planta
238:657–668
Lee B, Farag MA, Park HB, Kloepper JW, Lee SH, Ryu CM (2012) Induced resistance by a long
chain bacterial volatile: elicitation of plant systemic defense by a C13 volatile produced by
Paenibacillus polymyxa. PLoS One 7:e48744
Leeman M, Den OFM, van Pelt JA, Dirkx FPM, Steijl H, Bakker PAHM, Schippers B (1996) Iron
availability affects induction of SR against Fusarium wilt of radish P. fluorescens. Phytopathology 86:149–155
Li Y, Héloir MC, Zhang X, Geissler M, Trouvelot S, Jacquens L, Adrian M (2019) Surfactin and
fengycin contribute to the protection of a Bacillus subtilis strain against grape downy mildew by
both direct effect and defence stimulation. Mol Plant Pathol 20:1037–1050
Lim P, Gansau JA, Chong KP (2018) Streptomyces spp. a potential biocontrol agent against
Ganoderma boninense of basal stem rot. J Oil Palm Res 30:265–275
Liu J, Maldonado-Mendoza I, Lopez-Meyer M, Cheung F, Town CD, Harrison MJ (2007)
Arbuscular mycorrhizal symbiosis is accompanied by local and systemic alterations in gene
expression and an increase in disease resistance in the shoots. Plant J 50:529–544
Liu X, Qiu X, Duan Z, Ping D, Zhou X, Yang J, Wan Y (2018) A novel strain of Pseudozyma
aphidis from mulberry parasitises the conidia of mulberry powdery mildew fungus Phyllactinia
sp. and its biocontrol effect in the fields. Biocontrol Sci Tech 28:62–76
Loc-Carrillo C, Abedon ST (2011) Pros and cons of phage therapy. Bacteriophage 1:111–114
Lugtenberg B, Kamilova F (2009) Plant–growth–promoting rhizobacteria. Annu Rev Microbiol
63:541–556
Ma L, Zhang HY, Zhou XK, Yang CG, Zheng SC, Duo JL, Mo MH (2018) Biological control
tobacco bacterial wilt and black shank and root colonization by bio–organic fertilizer containing
bacterium Pseudomonas aeruginosa NXHG29. Appl Soil Ecol 129:136–144
Maffei ME, Mithöfer A, Boland W (2007) Before gene expression: early events in plant–insect
interaction. Trends Plant Sci 12:310–316
Malamy J, Carr JP, Klessig DF, Raskin I (1990) Salicylic acid: a likely endogenous signal in the
resistance of tobacco to viral infection. Science 250:1002–1004
Maldonado AM, Doerner P, Dixon RA, Lamb CJ, Cameron RK (2002) A putative lipid transfer
protein involved in systemic resistance signaling in Arabidopsis. Nature 419:399–403
Marian M, Nishioka T, Koyama H, Suga H, Shimizu M (2018) Biocontrol potential of Ralstonia
sp. TCR112 and Mitsuaria sp. TWR114 against tomato bacterial wilt. Appl Soil Ecol 128:71–80
Marin VR, Ferrarezi JH, Vieira G, Sass DC (2019) Recent advances in the biocontrol of
Xanthomonas spp. World J Microbiol Biotechnol 35:72. https://doi.org/10.1007/s11274-0192646-5
Mark GL, Cassells AC (1996) Genotype–dependence in the interaction between Glomus fistulosum,
Phytophthora fragariae and the wild strawberry (Fragaria vesca). Plant Soil 185:233–238
328
L. Thomas and I. Singh
Ralstonia solanacearum. Egypt J Biol Pest Control 28:63. https://doi.org/10.1186/s41938-0180069-5
Korolev N, David DR, Elad Y (2008) The role of phytohormones in basal resistance and
Trichoderma induced systemic resistance to Botrytis cinerea in Arabidopsis thaliana. BioControl 53:667–683
Kumar AS, Lakshmanan V, Caplan JL, Powell D, Czymmek KJ et al (2012) Rhizobacteria Bacillus
subtilis restricts foliar pathogen entry through stomata. Plant J 72:694–706
Laborde MCF, Botelho DMDS, Rodriguez GAA, Resende MLVD, Queiroz MVD, Batista AD,
Medeiros FHVD (2019) Phialomyces macrosporus reduces Cercospora coffeicola survival on
symptomatic coffee leaves. https://doi.org/10.25186/cs.v14i1
Lakshmanan V, Castaneda R, Rudrappa T, Bais HP (2013) Root transcriptome analysis of
Arabidopsis thaliana exposed to beneficial Bacillus subtilis FB17 rhizobacteria revealed
genes for bacterial recruitment and plant defense independent of malate efflux. Planta
238:657–668
Lee B, Farag MA, Park HB, Kloepper JW, Lee SH, Ryu CM (2012) Induced resistance by a long
chain bacterial volatile: elicitation of plant systemic defense by a C13 volatile produced by
Paenibacillus polymyxa. PLoS One 7:e48744
Leeman M, Den OFM, van Pelt JA, Dirkx FPM, Steijl H, Bakker PAHM, Schippers B (1996) Iron
availability affects induction of SR against Fusarium wilt of radish P. fluorescens. Phytopathology 86:149–155
Li Y, Héloir MC, Zhang X, Geissler M, Trouvelot S, Jacquens L, Adrian M (2019) Surfactin and
fengycin contribute to the protection of a Bacillus subtilis strain against grape downy mildew by
both direct effect and defence stimulation. Mol Plant Pathol 20:1037–1050
Lim P, Gansau JA, Chong KP (2018) Streptomyces spp. a potential biocontrol agent against
Ganoderma boninense of basal stem rot. J Oil Palm Res 30:265–275
Liu J, Maldonado-Mendoza I, Lopez-Meyer M, Cheung F, Town CD, Harrison MJ (2007)
Arbuscular mycorrhizal symbiosis is accompanied by local and systemic alterations in gene
expression and an increase in disease resistance in the shoots. Plant J 50:529–544
Liu X, Qiu X, Duan Z, Ping D, Zhou X, Yang J, Wan Y (2018) A novel strain of Pseudozyma
aphidis from mulberry parasitises the conidia of mulberry powdery mildew fungus Phyllactinia
sp. and its biocontrol effect in the fields. Biocontrol Sci Tech 28:62–76
Loc-Carrillo C, Abedon ST (2011) Pros and cons of phage therapy. Bacteriophage 1:111–114
Lugtenberg B, Kamilova F (2009) Plant–growth–promoting rhizobacteria. Annu Rev Microbiol
63:541–556
Ma L, Zhang HY, Zhou XK, Yang CG, Zheng SC, Duo JL, Mo MH (2018) Biological control
tobacco bacterial wilt and black shank and root colonization by bio–organic fertilizer containing
bacterium Pseudomonas aeruginosa NXHG29. Appl Soil Ecol 129:136–144
Maffei ME, Mithöfer A, Boland W (2007) Before gene expression: early events in plant–insect
interaction. Trends Plant Sci 12:310–316
Malamy J, Carr JP, Klessig DF, Raskin I (1990) Salicylic acid: a likely endogenous signal in the
resistance of tobacco to viral infection. Science 250:1002–1004
Maldonado AM, Doerner P, Dixon RA, Lamb CJ, Cameron RK (2002) A putative lipid transfer
protein involved in systemic resistance signaling in Arabidopsis. Nature 419:399–403
Marian M, Nishioka T, Koyama H, Suga H, Shimizu M (2018) Biocontrol potential of Ralstonia
sp. TCR112 and Mitsuaria sp. TWR114 against tomato bacterial wilt. Appl Soil Ecol 128:71–80
Marin VR, Ferrarezi JH, Vieira G, Sass DC (2019) Recent advances in the biocontrol of
Xanthomonas spp. World J Microbiol Biotechnol 35:72. https://doi.org/10.1007/s11274-0192646-5
Mark GL, Cassells AC (1996) Genotype–dependence in the interaction between Glomus fistulosum,
Phytophthora fragariae and the wild strawberry (Fragaria vesca). Plant Soil 185:233–238
328
L. Thomas and I. Singh
