6 Microbial Endophytes: New Direction to Natural Sources
147
Aviles-Garcia ME, Flores-Cortez I, Hernández-Soberano C, Santoyo G, Valencia-Cantero E (2016)
The plant growth-promoting rhizobacterium Arthrobacter agilis UMCV2 endophytically colonizes Medicago truncatula. Rev Argent Microbiol 48(4):342–346. https://doi.org/10.1016/j.ram.
2016.07.004
Babu AG, Shea PJ, Sudhakar D, Jung IB, Oh BT (2015) Potential use of Pseudomonas koreensis
AGB-1 in association with Miscanthus sinensis to remediate heavy metal(loid)-contaminated
mining site soil. J Environ Manag 151:160–166
Backman PA, Sikora RA (2008) Endophytes: an emerging tool for biological control. Biol Control
46(1):1–3
Bacon CW, White JF, Stone JK (2000) An overview of endophytic microbes: endophytism defined.
In: Bacon CW, White JF (eds) Microbial endophytes. Marcel Dekker, pp 29–33
Bastias DA, Martínez-Ghersa MA, Ballaré CL, Gundel PE (2017) Epichloë fungal endophytes and
plant defenses: not just alkaloids. Trends Plant Sci 22(11):939–948. https://doi.org/10.1016/j.tpl
ants.2017.08.005
Becerra-Castro C, Kidd P, Kuffner M et al (2013) Bacterially induced weathering of ultramafic rock
and its implications for phytoextraction. Appl Environ Microbiol 79:5094–5103
Becerra-Castro C, Monterroso C, Prieto-Fernández A et al (2012) Pseudometallophytes colonizing Pb/Zn mine tailings: a description of the plant-microorganism-rhizosphere soil system
and isolation of metal-tolerant bacteria. J Hazard Mater 217–218:350–359
Belimov AA, Hontzeas N, Safronova VI et al. (2005) Cadmium-tolerant plant growth-promoting
bacteria associated with the roots of Indian mustard (Brassica juncea L. Czern.). Soil Biol
Biochem 37(2): 241–250
Busby PE, Ridout M, Newcombe G (2016) Fungal endophytes: modifiers of plant disease. Plant
Mol Biol 90(6):645–655
Carroll GC (1986) The biology of endophytism in plants with particular reference to woody
perennials. Microbiol Phyll 203–222
Castulo-Rubio DY, Alejandre-Ramírez NA, del Carmen Orozco-Mosqueda M, Santoyo G, MacíasRodríguez LI, Valencia-Cantero E (2015) Volatile organic compounds produced by the rhizobacterium Arthrobacter agilis UMCV2 modulate Sorghum bicolor (strategy II plant) morphogenesis
and SbFRO1 transcription in vitro. J Plant Growth Regul 34(3):611–623. https://doi.org/10.1007/
s00344-015-9495-8
Chamovitz DA (2018) Plants are intelligent; now what? Nat Plants 4:622–623
Chareprasert S, Piapukiew J, Thienhirun S, Whalley AJ, Sihanonth P (2006) Endophytic fungi of
teak leaves Tectona grandis L. and rain tree leaves Samanea saman Merr. World J Microbiol
Biotechnol 22(5):481–486
Chen C, Xin K, Liu H, Cheng J, Shen X, Wang Y et al (2017) Pantoea alhagi, a novel endophytic
bacterium with ability to improve growth and drought tolerance in wheat. Sci Rep 7:41564.
https://doi.org/10.1038/srep41564
Chen L, Luo SL, Li XJ, Wan Y, Chen JL, Liu CB (2014) Interaction of Cd hyperaccumulator
Solanum nigrum L. and functional endophyte Pseudomonas sp. Lk9 on soil heavy metals uptake.
Soil Biol Biochem 68:300–308
Chen L, Shi H, Heng J, Wang D, Bian K (2019) Antimicrobial, plant growth-promoting and genomic
properties of the peanut endophyte Bacillus velezensis LDO2. Microbiol Res 218:41–48. https://
doi.org/10.1016/j.micres.2018.10.002
Chow YY, Rahman S, Ting ASY (2019) Evaluating the host defense responses in oil palm to complex
biocontrol endophyte-pathogen-host plant interaction via Fluidigm® real-time polymerase chain
reaction (RT-PCR). Biol Control 129:148–157. https://doi.org/10.1016/j.biocontrol.2018.10.011
Christina A, Christapher V, Bhore SJ (2013) Endophytic bacteria as a source of novel antibiotics:
an overview. Pharmacog Rev 7:11–16. https://doi.org/10.4103/0973-7847.112833
Clark TN, Bishop AI, McLaughlin M, Calhoun LA, Johnson JA, Gray CA (2014) Isolation of
(−)-avenaciolide as the antifungal and antimycobacterial constituent of a Seimatosporium sp.
Endophyte from the medicinal plant Hypericum perforatum. Nat Prod Commun 9:1495–1496
147
Aviles-Garcia ME, Flores-Cortez I, Hernández-Soberano C, Santoyo G, Valencia-Cantero E (2016)
The plant growth-promoting rhizobacterium Arthrobacter agilis UMCV2 endophytically colonizes Medicago truncatula. Rev Argent Microbiol 48(4):342–346. https://doi.org/10.1016/j.ram.
2016.07.004
Babu AG, Shea PJ, Sudhakar D, Jung IB, Oh BT (2015) Potential use of Pseudomonas koreensis
AGB-1 in association with Miscanthus sinensis to remediate heavy metal(loid)-contaminated
mining site soil. J Environ Manag 151:160–166
Backman PA, Sikora RA (2008) Endophytes: an emerging tool for biological control. Biol Control
46(1):1–3
Bacon CW, White JF, Stone JK (2000) An overview of endophytic microbes: endophytism defined.
In: Bacon CW, White JF (eds) Microbial endophytes. Marcel Dekker, pp 29–33
Bastias DA, Martínez-Ghersa MA, Ballaré CL, Gundel PE (2017) Epichloë fungal endophytes and
plant defenses: not just alkaloids. Trends Plant Sci 22(11):939–948. https://doi.org/10.1016/j.tpl
ants.2017.08.005
Becerra-Castro C, Kidd P, Kuffner M et al (2013) Bacterially induced weathering of ultramafic rock
and its implications for phytoextraction. Appl Environ Microbiol 79:5094–5103
Becerra-Castro C, Monterroso C, Prieto-Fernández A et al (2012) Pseudometallophytes colonizing Pb/Zn mine tailings: a description of the plant-microorganism-rhizosphere soil system
and isolation of metal-tolerant bacteria. J Hazard Mater 217–218:350–359
Belimov AA, Hontzeas N, Safronova VI et al. (2005) Cadmium-tolerant plant growth-promoting
bacteria associated with the roots of Indian mustard (Brassica juncea L. Czern.). Soil Biol
Biochem 37(2): 241–250
Busby PE, Ridout M, Newcombe G (2016) Fungal endophytes: modifiers of plant disease. Plant
Mol Biol 90(6):645–655
Carroll GC (1986) The biology of endophytism in plants with particular reference to woody
perennials. Microbiol Phyll 203–222
Castulo-Rubio DY, Alejandre-Ramírez NA, del Carmen Orozco-Mosqueda M, Santoyo G, MacíasRodríguez LI, Valencia-Cantero E (2015) Volatile organic compounds produced by the rhizobacterium Arthrobacter agilis UMCV2 modulate Sorghum bicolor (strategy II plant) morphogenesis
and SbFRO1 transcription in vitro. J Plant Growth Regul 34(3):611–623. https://doi.org/10.1007/
s00344-015-9495-8
Chamovitz DA (2018) Plants are intelligent; now what? Nat Plants 4:622–623
Chareprasert S, Piapukiew J, Thienhirun S, Whalley AJ, Sihanonth P (2006) Endophytic fungi of
teak leaves Tectona grandis L. and rain tree leaves Samanea saman Merr. World J Microbiol
Biotechnol 22(5):481–486
Chen C, Xin K, Liu H, Cheng J, Shen X, Wang Y et al (2017) Pantoea alhagi, a novel endophytic
bacterium with ability to improve growth and drought tolerance in wheat. Sci Rep 7:41564.
https://doi.org/10.1038/srep41564
Chen L, Luo SL, Li XJ, Wan Y, Chen JL, Liu CB (2014) Interaction of Cd hyperaccumulator
Solanum nigrum L. and functional endophyte Pseudomonas sp. Lk9 on soil heavy metals uptake.
Soil Biol Biochem 68:300–308
Chen L, Shi H, Heng J, Wang D, Bian K (2019) Antimicrobial, plant growth-promoting and genomic
properties of the peanut endophyte Bacillus velezensis LDO2. Microbiol Res 218:41–48. https://
doi.org/10.1016/j.micres.2018.10.002
Chow YY, Rahman S, Ting ASY (2019) Evaluating the host defense responses in oil palm to complex
biocontrol endophyte-pathogen-host plant interaction via Fluidigm® real-time polymerase chain
reaction (RT-PCR). Biol Control 129:148–157. https://doi.org/10.1016/j.biocontrol.2018.10.011
Christina A, Christapher V, Bhore SJ (2013) Endophytic bacteria as a source of novel antibiotics:
an overview. Pharmacog Rev 7:11–16. https://doi.org/10.4103/0973-7847.112833
Clark TN, Bishop AI, McLaughlin M, Calhoun LA, Johnson JA, Gray CA (2014) Isolation of
(−)-avenaciolide as the antifungal and antimycobacterial constituent of a Seimatosporium sp.
Endophyte from the medicinal plant Hypericum perforatum. Nat Prod Commun 9:1495–1496
