Martins SJ, Faria AF, Pedroso MP, Cunha MG, Rocha MR, Medeiros FHV (2019) Microbial
volatiles organic compounds control anthracnose (Colletotrichum lindemuthianum) in common
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Mathys J, De Cremer K, Timmermans P, Van Kerckhove S, Lievens B et al (2012) Genome–wide
characterization of ISR induced in Arabidopsis thaliana by Trichoderma hamatum T382 against
Botrytis cinerea infection. Front Plant Sci 3:108. https://doi.org/10.3389/fpls.2012.00108
Melchor RL, Rosales VG, Pérez MC, Fernández SP, Álvarez GO, Mastache JM (2018) Effectiveness of carboxylic acids from Pichia membranifaciens against coffee rust. Ciênc Agrotecnol
42:42–50
Memelink J (2009) Regulation of gene expression by jasmonate hormones. Phytochemistry
70:1560–1570
Meyers BC, Kozik A, Griego A, Kuang H, Michelmore RW (2003) Genome–wide analysis of
NBS–LRR–encoding genes in Arabidopsis. Plant Cell 15:809–834
Meziane H, Vander SI, van Loon LC, Höfte M, Bakker PAHM (2005) Determinants of P. putida
WCS 358 involved in induced systemic resistance in plants. Mol Plant Pathol 6:177–185
Mishina TE, Zeier J (2006) The Arabidopsis flavin–dependent monooxygenase FMO1 is an
essential component of biologically induced systemic acquired resistance. Plant Physiol
141:1666–1675
Mishina TE, Zeier J (2007) Pathogen–associated molecular pattern recognition rather than development of tissue necrosis contributes to bacterial induction of systemic acquired resistance in
Arabidopsis. Plant J 50:500–513
Mishra S, Jagadeesh KS, Krishnaraj PU, Prem S (2014) Biocontrol of tomato leaf curl virus
(ToLCV) in tomato with chitosan supplemented formulations of Pseudomonas sp. under field
conditions. Aust J Crop Sci 8:347–355
Mostafa FAM, Khalil AE, Nour El Deen AH, Ibrahim DS (2014) Induction of systemic resistance
in sugar–beet against root–knot nematode with commercial products. J Plant Pathol Microbiol
5:236–243
Mousavi SAR, Chauvin A, Pascaud F, Kellenberger S, Farmer EE (2013) GLUTAMATE
RECEPTORLIKE genes mediate leaf–to–leaf wound signaling. Nature 500:422–426
Mukherjee PK, Horwitz BA, Herrera-Estrella A, Schmoll M, Kenerley CM (2013) Trichoderma
research in the genome era. Annu Rev Phytopathol 51:105–129
Muñoz-Leoz B, Garbisu C, Charcosset JY, Sánchez-Pérez JM, Antigüedad I, Ruiz-Romera E
(2013) Non–target effects of three formulated pesticides on microbially–mediated processes
in a clay–loam soil. Sci Total Environ 449:345–354
Muthoni JJ, Shimelis H, Melis R (2013) Potato production in Kenya: farming systems and
production constraints. J Agric Sci 5:182–197
Neal AL, Ahmad S, Gordon-Weeks R, Ton J (2012) Benzoxazinoids in root exudates of maize
attract Pseudomonas putida to the rhizosphere. PLoS One 7:e35498
Nejat N, Mantri N (2017) Plant immune system: crosstalk between responses to biotic and abiotic
stresses the missing link in understanding plant defense. Curr Issues Mol Biol 23:1–16
Newman M-A, Sundelin T, Nielsen JT, Erbs G (2013) MAMP (microbe–associated molecular
pattern) triggered immunity in plants. Front Plant Sci 4:1–10
Nicaise V (2014) Crop immunity against viruses: outcomes and future challenges. Front Plant Sci
5:660. https://doi.org/10.3389/fpls.2014.00660
Nion YA, Toyota K (2015) Recent trends in control methods for bacterial wilt diseases caused by
Ralstonia solanacearum. Microbes Environ 30:1–11
Nurnberger T, Kemmerling B (2009) Pathogen–associated molecular patterns (PAMP) and PAMP–
triggered immunity. In: Parker J (ed) Molecular aspects of plant disease resistance. Annual plant
reviews, vol 34. Wiley, Oxford, pp 16–47. https://doi.org/10.1002/9781444301441.ch2
Oldroyd GED, Harrison MJ, Paszkowski U (2009) Reprogramming plant cells for endosymbiosis.
Science 324:753–754
10 Microbe-Mediated Biotic Stress Signaling and Resistance Mechanisms in Plants
329
volatiles organic compounds control anthracnose (Colletotrichum lindemuthianum) in common
bean (Phaseolus vulgaris L.). Biol Control 131:36–42
Mathys J, De Cremer K, Timmermans P, Van Kerckhove S, Lievens B et al (2012) Genome–wide
characterization of ISR induced in Arabidopsis thaliana by Trichoderma hamatum T382 against
Botrytis cinerea infection. Front Plant Sci 3:108. https://doi.org/10.3389/fpls.2012.00108
Melchor RL, Rosales VG, Pérez MC, Fernández SP, Álvarez GO, Mastache JM (2018) Effectiveness of carboxylic acids from Pichia membranifaciens against coffee rust. Ciênc Agrotecnol
42:42–50
Memelink J (2009) Regulation of gene expression by jasmonate hormones. Phytochemistry
70:1560–1570
Meyers BC, Kozik A, Griego A, Kuang H, Michelmore RW (2003) Genome–wide analysis of
NBS–LRR–encoding genes in Arabidopsis. Plant Cell 15:809–834
Meziane H, Vander SI, van Loon LC, Höfte M, Bakker PAHM (2005) Determinants of P. putida
WCS 358 involved in induced systemic resistance in plants. Mol Plant Pathol 6:177–185
Mishina TE, Zeier J (2006) The Arabidopsis flavin–dependent monooxygenase FMO1 is an
essential component of biologically induced systemic acquired resistance. Plant Physiol
141:1666–1675
Mishina TE, Zeier J (2007) Pathogen–associated molecular pattern recognition rather than development of tissue necrosis contributes to bacterial induction of systemic acquired resistance in
Arabidopsis. Plant J 50:500–513
Mishra S, Jagadeesh KS, Krishnaraj PU, Prem S (2014) Biocontrol of tomato leaf curl virus
(ToLCV) in tomato with chitosan supplemented formulations of Pseudomonas sp. under field
conditions. Aust J Crop Sci 8:347–355
Mostafa FAM, Khalil AE, Nour El Deen AH, Ibrahim DS (2014) Induction of systemic resistance
in sugar–beet against root–knot nematode with commercial products. J Plant Pathol Microbiol
5:236–243
Mousavi SAR, Chauvin A, Pascaud F, Kellenberger S, Farmer EE (2013) GLUTAMATE
RECEPTORLIKE genes mediate leaf–to–leaf wound signaling. Nature 500:422–426
Mukherjee PK, Horwitz BA, Herrera-Estrella A, Schmoll M, Kenerley CM (2013) Trichoderma
research in the genome era. Annu Rev Phytopathol 51:105–129
Muñoz-Leoz B, Garbisu C, Charcosset JY, Sánchez-Pérez JM, Antigüedad I, Ruiz-Romera E
(2013) Non–target effects of three formulated pesticides on microbially–mediated processes
in a clay–loam soil. Sci Total Environ 449:345–354
Muthoni JJ, Shimelis H, Melis R (2013) Potato production in Kenya: farming systems and
production constraints. J Agric Sci 5:182–197
Neal AL, Ahmad S, Gordon-Weeks R, Ton J (2012) Benzoxazinoids in root exudates of maize
attract Pseudomonas putida to the rhizosphere. PLoS One 7:e35498
Nejat N, Mantri N (2017) Plant immune system: crosstalk between responses to biotic and abiotic
stresses the missing link in understanding plant defense. Curr Issues Mol Biol 23:1–16
Newman M-A, Sundelin T, Nielsen JT, Erbs G (2013) MAMP (microbe–associated molecular
pattern) triggered immunity in plants. Front Plant Sci 4:1–10
Nicaise V (2014) Crop immunity against viruses: outcomes and future challenges. Front Plant Sci
5:660. https://doi.org/10.3389/fpls.2014.00660
Nion YA, Toyota K (2015) Recent trends in control methods for bacterial wilt diseases caused by
Ralstonia solanacearum. Microbes Environ 30:1–11
Nurnberger T, Kemmerling B (2009) Pathogen–associated molecular patterns (PAMP) and PAMP–
triggered immunity. In: Parker J (ed) Molecular aspects of plant disease resistance. Annual plant
reviews, vol 34. Wiley, Oxford, pp 16–47. https://doi.org/10.1002/9781444301441.ch2
Oldroyd GED, Harrison MJ, Paszkowski U (2009) Reprogramming plant cells for endosymbiosis.
Science 324:753–754
10 Microbe-Mediated Biotic Stress Signaling and Resistance Mechanisms in Plants
329
