Das IK, Rakshit S (2016) Millets, their importance, and production constraints. In: Biotic stress
resistance in millets. Academic Press, Cambridge, MA, pp 3–19
de Tenório DA, de Medeiros EV, Lima CS, da Silva JM, de Barros JA, Neves RP, Laranjeira D
(2019) Biological control of Rhizoctonia solani in cowpea plants using yeast. Trop Plant Pathol
44:113–119
De Vleesschauwer D, Hofte M (2009) Rhizobacteria–induced systemic resistance. Adv Bot Res
51:223–281
De Vleesschauwer D, Djavaheri M, Bakker PAHM, Hofte M (2008) Pseudomonas fluorescens
WCS374r–induced systemic resistance in rice against Magnaporthe oryzae is based on
pseudobactin–mediated priming for a salicylic acid–repressible multifaceted defense response.
Plant Physiol 148:1996–2012
Deleu M, Paquot M, Nylander T (2008) Effect of fengycin, a lipopeptide produced by Bacillus
subtilis, on model biomembranes. Biophys J 94:2667–2679
Dhouib H, Zouari I, Abdallah DB, Belbahri L, Taktak W, Triki MA, Tounsi S (2019) Potential of a
novel endophytic Bacillus velezensis in tomato growth promotion and protection against
Verticillium wilt disease. Biol Control 139:104092. https://doi.org/10.1016/j.biocontrol.2019.
104092
Diallo S, Crépin A, Barbey C, Orange N, Burini JF, Latour X (2011) Mechanisms and recent
advances in biological control mediated through the potato rhizosphere. FEMS Microbiol Ecol
75:351–364
Dicke M, Baldwin IT (2010) The evolutionary context for herbivore–induced plant volatiles:
beyond the “cry for help”. Trends Plant Sci 15:167–175
Djavaheri M, Mercado-Blanco J, Versluis C, Meyer JM, Van Loon LC, Bakker PAHM (2012) Iron
regulated metabolites produced by Pseudomonas fluorescens WCS374r are not required for
eliciting induced systemic resistance (ISR) against Pseudomonas syringae pv. tomato in
Arabidopsis. Microbiology 1:311–325
Djonovic S, Vargas WA, Kolomiets MV, Horndeski M, Wiest A, Kenerley CM (2007) A proteinaceous elicitor Sm1 from the beneficial fungus Trichoderma virens is required for induced
systemic resistance in maize. Plant Physiol 145:875–889
Dodds PN, Rathjen JP (2010) Plant immunity: towards an integrated view of plant–pathogen
interactions. Nat Rev Genet 11:539–548
Doffkay Z, Dömötör D, Kovács T, Rákhely G (2015) Bacteriophage therapy against plant, animal
and human pathogens. Acta Biol Szeged 59:291–302
Dohroo A, Sharma DR (2012) The role of plant growth promoting rhizobacteria, arbuscular
mycorrhizal fungi and their helper bacteria on growth parameters and root rot of apple. Walailak
J Sci Technol 2:35–38
Dong X (2004) NPR1, all things considered. Curr Opin Plant Biol 7:547–552
Drogue B, Combes-Meynet E, Moënne-Loccoz Y, Wisniewski-Dyé F, Prigent-Comaret C (2013)
Control of the cooperation between plant growth–promoting rhizobacteria and crops by rhizosphere signals. In: de Bruijn FJ (ed) Molecular microbial ecology of the rhizosphere, vol 1 and
2. Wiley, Hoboken, pp 281–294
Durner J, Shah J, Klessig DF (1997) Salicylic acid and disease resistance in plants. Trends Plant Sci
2:266–274
Durrent WE, Dong X (2004) Systemic acquired resistance. Annu Rev Phytopathol 42:185–209
Elamathi E, Malathi P, Viswanathan R, Sundar AR (2018) Expression analysis on mycoparasitism
related genes during antagonism of Trichoderma with Colletotrichum falcatum causing red rot
in sugarcane. J Plant Biochem Biotechnol 27:351–361
El-Rahman AA, Shaheen HA, El-Aziz RMA, Ibrahim DS (2019) Influence of hydrogen cyanide–
producing rhizobacteria in controlling the crown gall and root–knot nematode, Meloidogyne
incognita. Egypt J Biol Pest Control 29:41
El-Sharkawy HHA, Abo-El-Wafa TSA, Ibrahim SA (2018a) Biological control agents improve the
productivity and induce the resistance against downy mildew of grapevine. J Plant Pathol
100:33–42
10 Microbe-Mediated Biotic Stress Signaling and Resistance Mechanisms in Plants
325
resistance in millets. Academic Press, Cambridge, MA, pp 3–19
de Tenório DA, de Medeiros EV, Lima CS, da Silva JM, de Barros JA, Neves RP, Laranjeira D
(2019) Biological control of Rhizoctonia solani in cowpea plants using yeast. Trop Plant Pathol
44:113–119
De Vleesschauwer D, Hofte M (2009) Rhizobacteria–induced systemic resistance. Adv Bot Res
51:223–281
De Vleesschauwer D, Djavaheri M, Bakker PAHM, Hofte M (2008) Pseudomonas fluorescens
WCS374r–induced systemic resistance in rice against Magnaporthe oryzae is based on
pseudobactin–mediated priming for a salicylic acid–repressible multifaceted defense response.
Plant Physiol 148:1996–2012
Deleu M, Paquot M, Nylander T (2008) Effect of fengycin, a lipopeptide produced by Bacillus
subtilis, on model biomembranes. Biophys J 94:2667–2679
Dhouib H, Zouari I, Abdallah DB, Belbahri L, Taktak W, Triki MA, Tounsi S (2019) Potential of a
novel endophytic Bacillus velezensis in tomato growth promotion and protection against
Verticillium wilt disease. Biol Control 139:104092. https://doi.org/10.1016/j.biocontrol.2019.
104092
Diallo S, Crépin A, Barbey C, Orange N, Burini JF, Latour X (2011) Mechanisms and recent
advances in biological control mediated through the potato rhizosphere. FEMS Microbiol Ecol
75:351–364
Dicke M, Baldwin IT (2010) The evolutionary context for herbivore–induced plant volatiles:
beyond the “cry for help”. Trends Plant Sci 15:167–175
Djavaheri M, Mercado-Blanco J, Versluis C, Meyer JM, Van Loon LC, Bakker PAHM (2012) Iron
regulated metabolites produced by Pseudomonas fluorescens WCS374r are not required for
eliciting induced systemic resistance (ISR) against Pseudomonas syringae pv. tomato in
Arabidopsis. Microbiology 1:311–325
Djonovic S, Vargas WA, Kolomiets MV, Horndeski M, Wiest A, Kenerley CM (2007) A proteinaceous elicitor Sm1 from the beneficial fungus Trichoderma virens is required for induced
systemic resistance in maize. Plant Physiol 145:875–889
Dodds PN, Rathjen JP (2010) Plant immunity: towards an integrated view of plant–pathogen
interactions. Nat Rev Genet 11:539–548
Doffkay Z, Dömötör D, Kovács T, Rákhely G (2015) Bacteriophage therapy against plant, animal
and human pathogens. Acta Biol Szeged 59:291–302
Dohroo A, Sharma DR (2012) The role of plant growth promoting rhizobacteria, arbuscular
mycorrhizal fungi and their helper bacteria on growth parameters and root rot of apple. Walailak
J Sci Technol 2:35–38
Dong X (2004) NPR1, all things considered. Curr Opin Plant Biol 7:547–552
Drogue B, Combes-Meynet E, Moënne-Loccoz Y, Wisniewski-Dyé F, Prigent-Comaret C (2013)
Control of the cooperation between plant growth–promoting rhizobacteria and crops by rhizosphere signals. In: de Bruijn FJ (ed) Molecular microbial ecology of the rhizosphere, vol 1 and
2. Wiley, Hoboken, pp 281–294
Durner J, Shah J, Klessig DF (1997) Salicylic acid and disease resistance in plants. Trends Plant Sci
2:266–274
Durrent WE, Dong X (2004) Systemic acquired resistance. Annu Rev Phytopathol 42:185–209
Elamathi E, Malathi P, Viswanathan R, Sundar AR (2018) Expression analysis on mycoparasitism
related genes during antagonism of Trichoderma with Colletotrichum falcatum causing red rot
in sugarcane. J Plant Biochem Biotechnol 27:351–361
El-Rahman AA, Shaheen HA, El-Aziz RMA, Ibrahim DS (2019) Influence of hydrogen cyanide–
producing rhizobacteria in controlling the crown gall and root–knot nematode, Meloidogyne
incognita. Egypt J Biol Pest Control 29:41
El-Sharkawy HHA, Abo-El-Wafa TSA, Ibrahim SA (2018a) Biological control agents improve the
productivity and induce the resistance against downy mildew of grapevine. J Plant Pathol
100:33–42
10 Microbe-Mediated Biotic Stress Signaling and Resistance Mechanisms in Plants
325
