Adam M, Westphal A, Hallmann J, Heuer H (2014) Specific microbial attachment to root knot nematodes in suppressive soil. Appl Environ Microbiol 80:2679–2686. https://doi.org/10.1128/aem.03905-13
Article
PubMed
PubMed Central
Google Scholar
Almaghrabi OA, Massoud SI, Abdelmoneim TS (2013) Influence of inoculation with plant growth promoting rhizobacteria (PGPR) on tomato plant growth and nematode reproduction under greenhouse conditions. Saudi J Biol Sci 20:57–61. https://doi.org/10.1016/j.sjbs.2012.10.004
Article
PubMed
Google Scholar
Badri DV, Zolla G, Bakker MG, Manter DK, Vivanco JM (2013a) Potential impact of soil microbiomes on the leaf metabolome and on herbivore feeding behavior. New Phytol 198:264–273. https://doi.org/10.1111/nph.12124
Article
CAS
PubMed
Google Scholar
Badri DV, Chaparro JM, Zhang RF, Shen QR, Vivanco JM (2013b) Application of natural blends of phytochemicals derived from the root exudates of Arabidopsis to the soil reveal that phenolic-related compounds predominantly modulate the soil microbiome. J Biol Chem 288:4502–4512. https://doi.org/10.1074/jbc.M112.433300
Article
CAS
PubMed
PubMed Central
Google Scholar
Badri DV, Vivanco JM (2009) Regulation and function of root exudates. Plant Cell Environ 32:666–681. https://doi.org/10.1111/j.1365-3040.2009.01926.x
Bent E, Loffredo A, McKenry MV, Becker JO, Borneman J (2008) Detection and investigation of soil biological activity against Meloidogyne incognita. J Nematol 40:109–118
CAS
PubMed
PubMed Central
Google Scholar
Bhatia CR (2008) Role of microbial diversity for soil, health and plant nutrition. In: Nautiyal CS, Dion P (eds) Molecular mechanisms of plant and microbe coexistence. Springer, Berlin, Heidelberg, pp 53–74
Chapter
Google Scholar
Bull CT, Shetty KG, Subbarao KV (2002) Interactions between myxobacteria, plant pathogenic fungi, and biocontrol agents. Plant Dis 86:889–896. https://doi.org/10.1094/Pdis.2002.86.8.889
Article
CAS
PubMed
Google Scholar
Cao Y, Tian BY, Ji XL, Shang SH, Lu CJ, Zhang KQ (2015) Associated bacteria of different life stages of Meloidogyne incognita using pyrosequencing-based analysis. J Basic Microbiol 55:950–960. https://doi.org/10.1002/jobm.201400816
Article
CAS
PubMed
Google Scholar
Castillo JD, Lawrence KS, Morgan-Jones G, Ramirez CA (2010) Identification of fungi associated with Rotylenchulus reniformis. J Nematol 42:313–318
PubMed
PubMed Central
Google Scholar
Castillo JD, Vivanco JM, Manter DK (2017) Bacterial microbiome and nematode occurrence in different potato agricultural soils. Microb Ecol 74:888–900. https://doi.org/10.1007/s00248-017-0990-2
Article
PubMed
Google Scholar
Chaparro JM, Badri DV, Bakker MG, Sugiyama A, Manter DK, Vivanco JM (2013) Root exudation of phytochemicals in Arabidopsis follows specific patterns that are developmentally programmed and correlate with soil microbial functions. PLoS One 8(2):e55731. https://doi.org/10.1371/journal.pone.0055731
Article
CAS
PubMed
PubMed Central
Google Scholar
Chinheya CC, Yobo KS, Laing MD (2017) Biological control of the root knot nematode, Meloidogyne javanica (Chitwood) using Bacillus isolates, on soybean. Biol Control 109:37–41. https://doi.org/10.1016/j.biocontrol.2017.03.009
Article
Google Scholar
Ciancio A, Colagiero M, Pentimone I, Rosso L (2016) Soil microbial communities and their potential for root-knot nematodes management: a review. Environ Eng Manag J 15:1833–1839
Article
Google Scholar
Dahm H, Brzezinska AJ, Wrotniak-Drzewiecka W, Golinska P, Rozycki H, Rai M (2015) Myxobacteria as a potential biocontrol agent effective against pathogenic fungi of economically important forest trees. Dendrobiology 74:13–24. https://doi.org/10.12657/denbio.074.002
Article
CAS
Google Scholar
Elhady A, Gine A, Topalovic O, Jacquiod S, Sorensen SJ, Sorribas FJ, Heuer H (2017) Microbiomes associated with infective stages of root-knot and lesion nematodes in soil. PLoS One 12:e0177145. https://doi.org/10.1371/journal.pone.0177145
Article
CAS
PubMed
PubMed Central
Google Scholar
Elsas JDV, Garbeva P, Salles J (2002) Effects of agronomical measures on the microbial diversity of soils as related to the suppression of soil-borne plant pathogens. Biodegradation 13:29–40
Article
PubMed
Google Scholar
Galkiewicz JP, Kellogg CA (2008) Cross-kingdom amplification using bacteria-specific primers: complications for studies of coral microbial ecology. Appl Environ Microbiol 74:7828–7831. https://doi.org/10.1128/aem.01303-08
Article
CAS
PubMed
PubMed Central
Google Scholar
Gine A, Carrasquilla M, Martinez-Alonso M, Gaju N, Sorribas FJ (2016) Characterization of soil suppressiveness to root-knot nematodes in organic horticulture in plastic greenhouse. Front Plant Sci 7:164. https://doi.org/10.3389/fpls.2016.00164
Article
PubMed
PubMed Central
Google Scholar
Gschwendtner S, Esperschuetz J, Buegger F, Reichmann M, Muller M, Munch JC, Schloter M (2011) Effects of genetically modified starch metabolism in potato plants on photosynthate fluxes into the rhizosphere and on microbial degraders of root exudates. FEMS Microbiol Ecol 76:564–575. https://doi.org/10.1111/j.1574-6941.2011.01073.x.
Haegeman A, Vanholme B, Jacob J, Vandekerckhove TT, Claeys M, Borgonie G, Gheysen G (2009) An endosymbiotic bacterium in a plant-parasitic nematode: member of a new Wolbachia supergroup. Int J Parasitol 39:1045–1054. https://doi.org/10.1016/j.ijpara.2009.01.006
Article
PubMed
Google Scholar
Harrison KA, Bardgett RD (2010) Influence of plant species and soil conditions on plant-soil feedback in mixed grassland communities. J Ecol 98:384–395
Article
Google Scholar
Huang XF, Zhou D, Lapsansky ER, Reardon KF, Guo J, Andales MJ, Vivanco JM, Manter DK (2017) Mitsuaria sp. and Burkholderia sp. from Arabidopsis rhizosphere enhance drought tolerance in Arabidopsis thaliana and maize (Zea mays L.). Plant Soil 419(17):523–539. https://doi.org/10.1007/s11104-017-3360-4
Article
CAS
Google Scholar
Huang XF, Chaparro JM, Reardon KF, Zhang RF, Shen QR, Vivanco JM (2014) Rhizosphere interactions: root exudates, microbes, and microbial communities. Botany 92:267–275. https://doi.org/10.1139/cjb-2013-0225
Article
Google Scholar
Hunter PJ, Petch GM, Calvo-Bado LA, Pettitt TR, Parsons NR, Morgan JA, Whipps JM (2006) Differences in microbial activity and microbial populations of peat associated with suppression of damping-off disease caused by Pythium sylvaticum. Appl Environ Microbiol 72:6452–6460. https://doi.org/10.1128/AEM.00313-06
Article
CAS
PubMed
PubMed Central
Google Scholar
Jaiswal AK, Elad Y, Paudel I, Graber ER, Cytryn E, Frenkel O (2017) Linking the belowground microbial composition, diversity and activity to soilborne disease suppression and growth promotion of tomato amended with biochar. Sci Rep 7:44382. https://doi.org/10.1038/srep44382
Article
CAS
PubMed
PubMed Central
Google Scholar
Lapsansky ER, Milroy AM, Andales MJ, Vivanco JM (2016) Soil memory as a potential mechanism for encouraging sustainable plant health and productivity. Curr Opin in Biotechol 38:137–142. https://doi.org/10.1016/j.copbio.2016.01.014
Article
CAS
Google Scholar
Lugtenberg B, Kamilova F (2009) Plant-growth-promoting rhizobacteria. Annu Rev Microbiol 63:541–556. https://doi.org/10.1146/annurev.micro.62.081307.162918
Article
CAS
PubMed
Google Scholar
Mendes R, Kruijt M, de Bruijn I, Dekkers E, van der Voort M, Schneider JH, Piceno YM, DeSantis TZ, Andersen GL, Bakker PA, Raaijmakers JM (2011) Deciphering the rhizosphere microbiome for disease-suppressive bacteria. Science 332:1097–1100. https://doi.org/10.1126/science.1203980
Article
CAS
PubMed
Google Scholar
Mendes LW, Tsai SM, Navarrete AA, de Hollander M, van Veen JA, Kuramae EE (2015) Soil-borne microbiome: linking diversity to function. Microb Ecol 70:255–265. https://doi.org/10.1007/s00248-014-0559-2
Article
CAS
PubMed
Google Scholar
Nielsen MN, Winding A (2002) Microorganisms as indicators of soil health. National Environmental Research Institute, Ministry of the Environment, Denmark.
Niu DD, Zheng Y, Zheng L, Jiang CH, Zhou DM, Guo JH (2016) Application of PSX biocontrol preparation confers root-knot nematode management and increased fruit quality in tomato under field conditions. Biocontrol Sci Tech 26:174–180. https://doi.org/10.1080/09583157.2015.1085489
Article
Google Scholar
Norabadi MT, Sahebani N, Etebarian HR (2014) Biological control of root-knot nematode (Meloidogyne javanica) disease by Pseudomonas fluorescens (Chao). Arch Phytopathol Plant Protect 47:615–621. https://doi.org/10.1080/03235408.2013.816102
Article
CAS
Google Scholar
Nour SM, Lawrence JR, Zhu H, Swerhone GDW, Welsh M, Welacky TW, Topp E (2003) Bacteria associated with cysts of the soybean cyst nematode (Heterodera glycines). Appl Environ Microbiol 69:607–615. https://doi.org/10.1128/Aem.69.1.607-615.2003
Article
CAS
PubMed
PubMed Central
Google Scholar
Orion D, Kritzman G, Meyer SL, Erbe EF, Chitwood DJ (2001) A role of the gelatinous matrix in the resistance of root-knot nematode (Meloidogyne spp.) eggs to microorganisms. J Nematol 33:203–207
CAS
PubMed
PubMed Central
Google Scholar
Peng DH, Chai LJ, Wang FS, Zhang FJ, Ruan LF, Sun M (2011) Synergistic activity between Bacillus thuringiensis Cry6Aa and Cry55Aa toxins against Meloidogyne incognita. Microb Biotechnol 4:794–798. https://doi.org/10.1111/j.1751-7915.2011.00295.x.
Pineda A, Zheng SJ, van Loon JJ, Dicke M (2012) Rhizobacteria modify plant-aphid interactions: a case of induced systemic susceptibility. Plant Biol (Stuttg) 14(Suppl 1):83–90. https://doi.org/10.1111/j.1438-8677.2011.00549.x
Pyrowolakis A, Westphal A, Sikora RA, Becker JO (2002) Identification of root-knot nematode suppressive soils. Appl Soil Ecol 19:51–56. https://doi.org/10.1016/S0929-1393(01)00170-6
Article
Google Scholar
Qiao Q, Wang F, Zhang J, Chen Y, Zhang C, Liu G, Zhang H, Ma CL, Zhang JE (2017) The variation in the rhizosphere microbiome of cotton with soil type, genotype and developmental stage. Sci Rep 7:3940. https://doi.org/10.1038/s41598-017-04213-7
Article
CAS
PubMed
PubMed Central
Google Scholar
Raaijmakers JM, Mazzola M (2016) Soil immune responses soil microbiomes may be harnessed for plant health. Science 352:1392–1393. https://doi.org/10.1126/science.aaf3252.
Article
CAS
PubMed
Google Scholar
Reasoner DJ, Geldreich EE (1985) A new medium for the enumeration and subculture of bacteria from potable water. Appl Environ Microbiol 49: 388–389
Ruby EG (2008) Symbiotic conversations are revealed under genetic interrogation. Nat Rev Microbiol 6:752–762. https://doi.org/10.1038/nrmicro1958
Article
CAS
PubMed
PubMed Central
Google Scholar
R Development Core Team. R: a language and environment for statistical computing. Vienna, Austria: R Foundation for Statistical Computing; 2014. Available from: http://www.R-project.org.
Schäfer K, Fabry CS, Sikora RA, Hauschild R (2006) Molecular investigations of rhizobacteria-induced systemic resistance towards the root-knot nematode Meloidogyne incognita in tomato. In: JM Raaijmakers, RA Sikora (eds) Multitrophic interactions in soil, Wageningen.
Siddiqui IA, Shaukat SS, Sheikh IH, Khan A (2006) Role of cyanide production by Pseudomonas fluorescens CHA0 in the suppression of root-knot nematode, Meloidogyne javanica in tomato. World J Microbiol Biotechnol 22:641–650. https://doi.org/10.1007/s11274-005-9084-2
Article
CAS
Google Scholar
Siddiqui ZA, Qureshi A, Akhtar MS (2009) Biocontrol of root-knot nematode Meloidogyne incognita by Pseudomonas and Bacillus isolates on Pisum sativum. Arch Phytopathol Plant Protect 42:1154–1164. https://doi.org/10.1080/03235400701650890
Article
CAS
Google Scholar
Stirling GR, Mankau R (1978) Parasitism of Meloidogyne eggs by a new fungal parasite. J Nematol 10:236–240
CAS
PubMed
PubMed Central
Google Scholar
Stirling GR, Rames E, Stirling AM, Hamill S (2011) Factors associated with the suppressiveness of sugarcane soils to plant-parasitic nematodes. J Nematol 43:135–148
CAS
PubMed
PubMed Central
Google Scholar
Stirling GR (2014) Biological control of plant-parasitic nematodes: soil ecosystem management in sustainable agriculture, 2nd edition: 1–510. doi: https://doi.org/10.1079/9781780644158.0000.
Tamura K, Peterson D, Peterson N, Stecher G, Nei M, Kumar S (2011) MEGA5: molecular evolutionary genetics analysis using maximum likelihood, evolutionary distance, and maximum parsimony methods. Mol Biol Evol 28:2731–2739. https://doi.org/10.1093/molbev/msr121
Article
CAS
PubMed
PubMed Central
Google Scholar
Tian BY, Cao Y, Zhang KQ (2015) Metagenomic insights into communities, functions of endophytes, and their associates with infection by root-knot nematode, Meloidogyne incognita, in tomato roots. Sci Rep 5. https://doi.org/10.1038/srep17087
van de Mortel JE, de Vos RC, Dekkers E, Pineda A, Guillod L, Bouwmeester K, van Loon JJ, Dicke M, Raaijmakers JM (2012) Metabolic and transcriptomic changes induced in Arabidopsis by the rhizobacterium Pseudomonas fluorescens SS101. Plant Physiol 160:2173–2188. https://doi.org/10.1104/pp.112.207324
Article
CAS
PubMed
PubMed Central
Google Scholar
Venturi V, Keel C (2016) Signaling in the rhizosphere. Trends Plant Sci 21:187–198. https://doi.org/10.1016/j.tplants.2016.01.005
Article
CAS
PubMed
Google Scholar
Weinert N, Piceno Y, Ding GC, Meincke R, Heuer H, Berg G, Schloter M, Andersen G, Smalla K (2011) PhyloChip hybridization uncovered an enormous bacterial diversity in the rhizosphere of different potato cultivars: many common and few cultivar-dependent taxa. FEMS Microbiol Ecol 75:497–506. https://doi.org/10.1111/j.1574-6941.2010.01025.x
Wei L, Shao Y, Wan J, Feng H, Zhu H, Huang H, Zhou Y (2014) Isolation and characterization of a rhizobacterial antagonist of root-knot nematodes. PLoS One 9:e85988. https://doi.org/10.1371/journal.pone.0085988
Article
CAS
PubMed
PubMed Central
Google Scholar
Wei L, Xue Q, Wei B, Wang Y, Li S, Chen L, Guo J. (2010) Screening of Antagonistic Bacterial Strains Against Meloidogyne incognita using protease activity. Biocontrol Sci Techn 20:739–750
Xiang N, Lawrence KS, Kloepper JW, Donald PA, McInroy JA, Lawrence GW (2017) Biological control of Meloidogyne incognita by spore-forming plant growth-promoting rhizobacteria on cotton. Plant Dis 101:774–784. https://doi.org/10.1094/Pdis-09-16-1369-Re
Article
CAS
PubMed
Google Scholar
Xiang Y, Wu XQ, Zhou AD (2015) Bacterial diversity and community structure in the pine wood nematode Bursaphelenchus xylophilus and B. mucronatus with different virulence by high-throughput sequencing of the 16S rDNA. PLoS One 10:e0137386. https://doi.org/10.1371/journal.pone.0137386
Article
CAS
PubMed
PubMed Central
Google Scholar
Yamamoto S, Harayama S (1995) PCR amplification and direct sequencing of gyrb genes with universal primers and their application to the detection and taxonomic analysis of Pseudomonas putida strains. Appl Environ Microbiol 61:1104–1109
CAS
PubMed
PubMed Central
Google Scholar
Yin B, Valinsky L, Gao X, Becker JO, Borneman J (2003a) Bacterial rRNA genes associated with soil suppressiveness against the plant-parasitic nematode Heterodera schachtii. Appl Environ Microbiol 69:1573–1580
Article
CAS
PubMed
PubMed Central
Google Scholar
Yin B, Valinsky L, Gao XB, Becker JO, Borneman J (2003b) Identification of fungal rDNA associated with soil suppressiveness against Heterodera schachtii using oligonucleotide fingerprinting. Phytopathol 93:1006–1013. https://doi.org/10.1094/Phyto.2003.93.8.1006
Article
CAS
Google Scholar
Zeng Y, Baumbach J, Barbosa EG, Azevedo V, Zhang C, Koblizek M (2016) Metagenomic evidence for the presence of phototrophic Gemmatimonadetes bacteria in diverse environments. Environ Microbiol Rep 8:139–149. https://doi.org/10.1111/1758-2229.12363
Article
CAS
PubMed
Google Scholar
Zhou LH, Yuen G, Wang Y, Wei LF, Ji GH (2016) Evaluation of bacterial biological control agents for control of root-knot nematode disease on tomato. Crop Prot 84:8–13. https://doi.org/10.1016/j.cropro.2015.12.009.
Article
CAS
Google Scholar
Zhou DM, Huang XF, Guo JH, Vivanco JM (2018) Trichoderma gamsii changed leaf metabolome in Arabidopsis thaliana and affected herbivore feeding behavior. Microb Biotechnol 11:1195–1206. https://doi.org/10.1111/1751-7915.13310
Article
CAS
PubMed
PubMed Central
Google Scholar
Zolla G, Badri DV, Bakker MG, Manter DK, Viyanco JM (2013) Soil microbiomes vary in their ability to confer drought tolerance to Arabidopsis. Appl Soil Ecol 68:1–9. https://doi.org/10.1016/j.apsoil.2013.03.007
Article
Google Scholar