Page 124 - Plant-Based Remediation Processes
P. 124
6 Metal Remediation via In Vitro Root Cultures 113
Khan AG, Kuek C, Chaudhary TM, Khaoo CS, Hayes WJ (2000) Role of plants, mycorrhizae and
phytochelators in heavy metal contaminated land remediation. Chemosphere 41:197–207
Kim J, Wyskiyzuk BE, Weathers PJ (2002) Secondary metabolism of hairy root cultures in
bioreactors. In Vitro Cell Dev Biol Plant 38:1–10
Kusakari K, Yokoyama M, Inomata S (2000) Enhanced production of saikosaponins by root
culture of Bupleurum falcatum L. using two-step control of sugar concentration. Plant Cell
Rep 19:1115–1120
Lasat MM (2002) Phytoextraction of toxic metals: a review of biological mechanisms. J Environ
Qual 31:109–120
Lee M, Phillips RL (1988) The chromosomal basis of somaclonal variation. Annu Rev Plant
Physiol Plant Mol Biol 39:413–437
Lynch JM (1982) Limits to microbial growth in soil. J Gen Microbiol 128:405–410
Macek T, Kotrba P, Suchova M, Skacel F, Demmerova K, Rumi T (1994) Accumulation of
cadmium by hairy root cultures of Solanum niger. Biotechnol Lett 16:621–624
Maitani T, Kubota H, Sato K, Yamada T (1996) The composition of metals bound to class III
metallothionein (phytochelatin and its desglycyl peptide) induced by various metals in root
cultures of Rubia tinctorum. Plant Physiol 110:1145–1150
Manios T, Stentiford E, Millner P (2003) The effect of heavy metals accumulation on the
chlorophyll concentration of Typha latifolia plants, growing in a substrate containing sewage
sludge compost and watered with metaliferus water. Ecol Eng 20:65–74
Marmiroli N (2007) Genetic variability and genetic engineering in phytoremediation. In:
Marmiroli N, Samotokin B, Marmiroli M (eds) Advanced science and technology for
biological decontamination of sites affected by chemical and radiological nuclear agents.
Springer, New York
Mason CF (1991) Biology of fresh water pollution. Longman, London
McLaughlin MJ, Singh BR (1999) Cadmium in soils and plants. Kluwers Academic, Dordrecht
Memon AR, Schro ¨der P (2009) Implications of metal accumulation mechanisms to
phytoremediation. Environ Sci Pollut Res Int 16:162–175
Metzger L, Fouchault I, Glad C, Prost R, Tepfer D (1992) Estimation of cadmium availability
using transformed roots. Plant Soil 143:249–257
Meyer A, Tempe J, Costantino P (2000) Hairy root: a molecular overview functional analysis of
Agrobacterium rhizogenes T-DNA genes. In: Stacey G, Keen N (eds) Plant-microbe
interactions, vol 5. APS Press, St. Paul, MN
Murashige T, Skoog FA (1962) A revised medium for rapid growth and bioassays with tobacco
tissue cultures. Physiol Plant 15:473–497
Nandagopal S, Ranjitha Kumari BD (2007) Effectiveness of auxin induced in vitro root culture in
chicory. J Cent Eur Agric 8:73–80
Nedelkoska T, Doran PM (2000a) Hyperaccumulation of cadmium by hairy roots of Thlaspi
caerulescens. Biotechnol Bioeng 67:607–615
Nedelkoska T, Doran PM (2000b) Characteristics of heavy metal uptake by plant species with
potential for phytoremediation and phytomining. Miner Eng 13:549–561
Nedelkoska T, Doran PM (2001) Hyperaccumulation of nickel by hairy roots of Alyssum species:
comparison with whole regenerated plants. Biotechnol Prog 17:752–759
Nedelkoska T, Doran PM (2003a) Cadmium tolerance and antioxidative defenses in hairy roots of
the cadmium hyperaccumulator Thlaspi caerulescens. Biotechnol Bioeng 83:158–167
Nehnevajova E, Herzig R, Erismann KH, Schwitzgue ´bel JP (2007) In vitro breeding of Brassica
juncea L. to enhance metal accumulation and extraction properties. Plant Cell Rep 26:429–437
Nilsson O, Moritz T, Imbault N, Sandberg G, Olsson O (1993) Hormonal characterization of
transgenic tobacco plants expressing the rolC gene of Agrobacterium rhizogenes TL-DNA.
Plant Physiol 102:363–371
Padmavathiamma PK, Li LY (2007) Phytoremediation technology: hyper-accumulation metals in
plants. Water Air Soil Pollut 184:105–126