Lokhande VH, Kudale S, Nikalje G, Desai N, Suprasanna P (2015) Hairy root induction and
phytoremediation of textile dye, reactive green 19A-HE4BD, in a halophyte, Sesuvium
portulacastrum (L.) L. Biotechnol Rep 8:56–63
Mackova M, Macek T, Kucerova P, Burkhard J, Pazlarova J, Demnerova K (1997) Degradation of
polychlorinated biphenyls by hairy root culture of Solanum nigrum. Biotechnol Lett 19
(8):787–790
Maitani T, Kubota H, Sato K, Takeda M, Yoshihira K (1996) Induction of phytochelatin.(class III
metal loth ionein) and incorporation of copper in transformed hairy roots of Rubia tinctorum
exposed to cadmium. J Plant Physiol 147(6):743–748
Majumder A, Jha S (2012) Hairy roots: a promising tool for phytoremediation. In: Microorganisms
in environmental management. Springer, Dordrecht, pp 607–629
Makhzoum AB, Sharma P, Bernards MA, Trémouillaux-Guiller J (2013) Hairy roots: an ideal
platform for transgenic plant production and other promising applications. In: Phytochemicals,
plant growth, and the environment. Springer, New York, pp 95–142
Malik S, Andrade SA, Mirjalili MH, Arroo RR, Bonfill M, Mazzafera P (2016) Biotechnological
approaches for bioremediation: in vitro hairy root culture. In: Transgenesis and secondary
metabolism, vol 1
Mansour HB, Mosrati R, Ghedira K, Chekir-Ghedira L (2011) Decolorization of textile wastewater
by Pseudomonas putida: toxicity assessment. Environ Eng Sci 28(7):489–495
Mehrotra S, Mishra S, Srivastava V (2020) Hairy roots biotechnology unzipped: a journey of reality
and promises. In: Hairy root cultures based applications. Springer, Singapore, pp 1–10
Moogouei R (2018) Use of terrestrial plants for phytoremediation of pollutants from solutions. Iran
J Sci Technol Trans A: Sci 42(4):1753–1759
Moola AK, Diana RKB (2019) Elicitation as a means for enhanced plant secondary metabolites
through hairy root system. J Adv Sci Res 10(3)
Mukundan U, Hjortso MA (1990) Thiophene content in normal and transformed root cultures of
tagetes erects: A comparison with Thiophene content in roots of intact plants. J Exp Bot
41:1497–1501
Nepovím A, Podlipná R, Soudek P, Schröder P, Vaněk T (2004) Effects of heavy metals and
nitroaromatic compounds on horseradish glutathione S-transferase and peroxidase.
Chemosphere 57(8):1007–1015
Nouri J, Mahvi AH, Babaei A, Ahmadpour E (2006) Regional pattern distribution of groundwater
fluoride in the shush aquifer of Khuzestan County, Iran. Fluoride 39(4):321
Oller ALW, Agostini E, Talano MA, Capozucca C, Milrad SR, Tigier HA, Medina MI (2005)
Overexpression of a basic peroxidase in transgenic tomato (Lycopersicon esculentum mill.
cv. Pera) hairy roots increases phytoremediation of phenol. Plant Sci 169(6):1102–1111
Ontanon OM, González PS, Ambrosio LF, Paisio CE, Agostini E (2014) Rhizoremediation of
phenol and chromium by the synergistic combination of a native bacterial strain and Brassica
napus hairy roots. Int Biodeterior Biodegradation 88:192–198
Paisio CE, Fernandez M, González PS, Talano MA, Medina MI, Agostini E (2018) Simultaneous
phytoremediation of chromium and phenol by Lemna minuta Kunth: a promising biotechnological tool. Int J Environ Sci Technol 15(1):37–48
Patil P, Desai N, Govindwar S, Jadhav JP, Bapat V (2009) Degradation analysis of reactive red
198 by hairy roots of tagetes patula L.(Marigold). Planta 230(4):725–735
Paul R, Campanella B (2000) Use of Alfalfa (Medicago sativa L.) to stimulate biodegradation of
anthracene in dredging sludges. In: Inter-COST workshop on bioremediation, COST Action,
vol 831
Perez-Palacios P (2015) Environmental Biotechnology, development of biotechnological strategies
for the bioremediation of heavy metals. Spain: Doctoral thesis
Perotti R, Paisio CE, Agostini E, Fernandez MI, González PS (2020) CR (VI) phytoremediation by
hairy roots of Brassica napus: assessing efficiency, mechanisms involved, and post-removal
toxicity. Environ Sci Pollut Res:1–10
2 Hairy Roots as a Source for Phytoremediation
45
phytoremediation of textile dye, reactive green 19A-HE4BD, in a halophyte, Sesuvium
portulacastrum (L.) L. Biotechnol Rep 8:56–63
Mackova M, Macek T, Kucerova P, Burkhard J, Pazlarova J, Demnerova K (1997) Degradation of
polychlorinated biphenyls by hairy root culture of Solanum nigrum. Biotechnol Lett 19
(8):787–790
Maitani T, Kubota H, Sato K, Takeda M, Yoshihira K (1996) Induction of phytochelatin.(class III
metal loth ionein) and incorporation of copper in transformed hairy roots of Rubia tinctorum
exposed to cadmium. J Plant Physiol 147(6):743–748
Majumder A, Jha S (2012) Hairy roots: a promising tool for phytoremediation. In: Microorganisms
in environmental management. Springer, Dordrecht, pp 607–629
Makhzoum AB, Sharma P, Bernards MA, Trémouillaux-Guiller J (2013) Hairy roots: an ideal
platform for transgenic plant production and other promising applications. In: Phytochemicals,
plant growth, and the environment. Springer, New York, pp 95–142
Malik S, Andrade SA, Mirjalili MH, Arroo RR, Bonfill M, Mazzafera P (2016) Biotechnological
approaches for bioremediation: in vitro hairy root culture. In: Transgenesis and secondary
metabolism, vol 1
Mansour HB, Mosrati R, Ghedira K, Chekir-Ghedira L (2011) Decolorization of textile wastewater
by Pseudomonas putida: toxicity assessment. Environ Eng Sci 28(7):489–495
Mehrotra S, Mishra S, Srivastava V (2020) Hairy roots biotechnology unzipped: a journey of reality
and promises. In: Hairy root cultures based applications. Springer, Singapore, pp 1–10
Moogouei R (2018) Use of terrestrial plants for phytoremediation of pollutants from solutions. Iran
J Sci Technol Trans A: Sci 42(4):1753–1759
Moola AK, Diana RKB (2019) Elicitation as a means for enhanced plant secondary metabolites
through hairy root system. J Adv Sci Res 10(3)
Mukundan U, Hjortso MA (1990) Thiophene content in normal and transformed root cultures of
tagetes erects: A comparison with Thiophene content in roots of intact plants. J Exp Bot
41:1497–1501
Nepovím A, Podlipná R, Soudek P, Schröder P, Vaněk T (2004) Effects of heavy metals and
nitroaromatic compounds on horseradish glutathione S-transferase and peroxidase.
Chemosphere 57(8):1007–1015
Nouri J, Mahvi AH, Babaei A, Ahmadpour E (2006) Regional pattern distribution of groundwater
fluoride in the shush aquifer of Khuzestan County, Iran. Fluoride 39(4):321
Oller ALW, Agostini E, Talano MA, Capozucca C, Milrad SR, Tigier HA, Medina MI (2005)
Overexpression of a basic peroxidase in transgenic tomato (Lycopersicon esculentum mill.
cv. Pera) hairy roots increases phytoremediation of phenol. Plant Sci 169(6):1102–1111
Ontanon OM, González PS, Ambrosio LF, Paisio CE, Agostini E (2014) Rhizoremediation of
phenol and chromium by the synergistic combination of a native bacterial strain and Brassica
napus hairy roots. Int Biodeterior Biodegradation 88:192–198
Paisio CE, Fernandez M, González PS, Talano MA, Medina MI, Agostini E (2018) Simultaneous
phytoremediation of chromium and phenol by Lemna minuta Kunth: a promising biotechnological tool. Int J Environ Sci Technol 15(1):37–48
Patil P, Desai N, Govindwar S, Jadhav JP, Bapat V (2009) Degradation analysis of reactive red
198 by hairy roots of tagetes patula L.(Marigold). Planta 230(4):725–735
Paul R, Campanella B (2000) Use of Alfalfa (Medicago sativa L.) to stimulate biodegradation of
anthracene in dredging sludges. In: Inter-COST workshop on bioremediation, COST Action,
vol 831
Perez-Palacios P (2015) Environmental Biotechnology, development of biotechnological strategies
for the bioremediation of heavy metals. Spain: Doctoral thesis
Perotti R, Paisio CE, Agostini E, Fernandez MI, González PS (2020) CR (VI) phytoremediation by
hairy roots of Brassica napus: assessing efficiency, mechanisms involved, and post-removal
toxicity. Environ Sci Pollut Res:1–10
2 Hairy Roots as a Source for Phytoremediation
45
