Genetic basis of Cd tolerance and hyperaccumulation in Arabidopsis halleri
- Published:
- Volume 249, pages 9–18, (2003)
- Cite this article
-
829 Accesses
-
192 Citations
-
3 Altmetric
Abstract
The genetic basis of Cd tolerance and hyperaccumulation was investigated in Arabidopsis halleri. The study was conducted in hydroponic culture with a backcross progeny, derived from a cross between A. halleri and a non-tolerant and non-accumulating related species Arabidopsis lyrata ssp. petraea, as well as with the parents of the backcross. The backcross progeny segregates for both cadmium (Cd) tolerance and accumulation. The results support that (i) Cd tolerance may be governed by more than one major gene, (ii) Cd tolerance and Cd accumulation are independent characters, (iii) Cd and Zn tolerances co-segregate suggesting that they are under pleiotropic genetic control, at least to a certain degree, (iv) the same result was obtained for Cd and Zn accumulation.
This is a preview of subscription content, log in via an institution to check access.
Access this article
Subscribe and save
- Starting from 10 chapters or articles per month
- Access and download chapters and articles from more than 300k books and 2,500 journals
- Cancel anytime
Buy Now
Price includes VAT (Japan)
Instant access to the full article PDF.
Similar content being viewed by others
Genotypic differences in cadmium transport in developing barley grains
Natural variation in Arabidopsis thaliana Cd responses and the detection of quantitative trait loci affecting Cd tolerance
Chloride transport at plant-soil Interface modulates barley cd tolerance
Explore related subjects
Discover the latest articles, books and news in related subjects, suggested using machine learning.References
Assunção A G L, da Costa Martins P, de Folter S, Vooijs R, Schat H and Aarts M G M 2001 Elevated expression of metal transporter genes in three accessions of the metal hyperaccumulator Thlaspi caerulescens. Plant Cell Env. 24, 217–226.
Bert V, Macnair M R, de Laguérie P, Saumitou-Laprade P and Petit D 2000 Zinc tolerance and accumulation in metallicolous and non metallicolous populations of Arabidopsis halleri (Brassicaceae). New Phytol. 146, 225–233.
Bert V, Bonnin I, Saumitou-Laprade P, de Laguérie P and Petit D 2002 Do Arabidopsis halleri from non-metallicolous populations accumulate zinc and cadmium more effectively than those from metallicolous populations? New Phytol. 155: 47–57.
Brooks R R 1998 Plants that hyperaccumulate heavy metals Wallingford, UK: CAB international.
Clemens S 2001 Molecular mechanisms of plant metal tolerance and homeostasis. Planta 212, 475–486.
Dahmani-Muller H, van Oort F, Gélie B and Balabane M 1999 Strategies of heavy metal uptake by three plant species growing near a metal smelter. Env. Pollution. 109, 1–8.
Escarré J, Lefèbvre C, Gruber W, Leblanc M, Lepart J, Rivière Y and Delay B 2000 Zinc and cadmium hyperaccumulation by Thlaspi caerulescens from metalliferous and non metalliferous sites in the mediteranean area: Implications for phytoremediation. New Phytol. 145, 429–437.
Korshunova Y O, Eide D, Clark W G, Guerinot M L and Pakrasi H B 1999 The IRT1 protein from Arabidopsis thaliana is a metal transporter with a broad substrate range. Plant Mol. Biol. 40, 37– 44.
Krämer U, Smith R D, Wenzel W W, Raskin I and Salt D E 1997 The role of metal transport and tolerance in nickel hyperaccumulation by Thlaspi goesingense Halacsy. Plant Physiol. 115, 1641–1650.
Küpper H, Lombi E, Zhao F J and McGrath S P 2000 Cellular compartmentation of cadmium and zinc in relation to other elements in the hyperaccumulator Arabidopsis halleri. Planta 212, 75–84.
Lasat M M, Pence N S, Garvin D F, Ebbs S D and Kochian L V 2000 Molecular physiology of zinc transport in the Zn hyperaccumulator Thlaspi caerulescens. J. Exp. Bot. 51, 71–79.
Lombi E, Zhao F J, Dunham S J and McGrath S P 2000 Cadmium accumulation in populations of Thlaspi caerulescens and Thlaspi goesingense. New Phytol. 145, 11–20.
Macnair M R, Bert V, Huitson S B, Saumitou-Laprade P and Petit D 1999 Zinc tolerance and hyperaccumulation are genetically independent characters. Proc. R. Soc. Lond. B 266, 2175–2179.
Meerts P and Van Isacker N 1997 Heavy metal tolerance and accumulation in metallicolous and non-metallicolous populations of Thlaspi caerulescens from continental Europe. Plant Ecol. 133, 221–231.
Pence N S, Larsen P B, Ebbs S D, Letham D L, Lasat M M, Garvin D F, Eide D and Kochian L V 2000 The molecular physiology of heavy metal transport in the Zn/Cd hyperaccumulator Thlaspi caerulescens. Proc. Natl. Acad. Sci. USA 97, 4956–4960.
Sanita di Toppi L and Gabbrielli R 1999 Response to cadmium in higher plants. Envir. Exp. Bot. 41, 105–130.
Schat H and ten Bookum W M 1992 Genetic control of copper tolerance in Silene vulgaris. Heredity 68, 219–229.
Schat H, Kuiper E, Ten Bookum W M and Vooijs R 1993 A general model for the genetic control of copper tolerance in Silene vulgaris: Evidence from crosses between plants from different tolerant populations. Heredity 70, 142–147.
Schat H, Vooijs R and Kuiper E 1996 Identical major gene loci for heavy-metal tolerances that have independently evolved in different local-populations and subspecies of Silene vulgaris. Evolution 50, 1888–1895.
Schat H and Vooijs R 1997 Multiple tolerance and co-tolerance to heavy metals in Silene vulgaris: A co-segregation analysis New Phytol. 136, 489–496.
Smith S E and Macnair M R 1998 Hypostatic modifiers cause variation in degree of copper tolerance in Mimulus guttatus. Heredity 80 760–768.
Thomine S, Wang R, Ward J M, Crawford N M and Schroeder J I 2000 Cadmium and iron transport by members of a plant metal transporter family in Arabidopsis with homology to Nramp genes. Proc. Natl. Acad. Sci. USA 97, 4991–4996.
Tilstone G H Macnair M R and Smith S E 1997 Does copper tolerance give cadmium tolerance in Mimulus guttatus? Heredity 79, 445–452.
Van Hoof N A L M, Hassinen V H, Hakvoort H W J, Ballintijn K F, Schat H, Verkleij J A C, Ernst W H O, Karenlampi S O and Terverhanta A I 2001 Enhanced copper tolerance in Silene vulgaris (Moench) Garcke populations from copper mine is associated with increased transcript levels of a 2b-type metallothionein gene. Plant Physiol. 126, 1519–1526.
Williams L E, Pittman J K and Hall J L 2000 Emerging mechanisms for heavy metal transport in plants. Biochim. Biophys. Acta. 1465, 104–126.
Rights and permissions
About this article
Cite this article
Bert, V., Meerts, P., Saumitou-Laprade, P. et al. Genetic basis of Cd tolerance and hyperaccumulation in Arabidopsis halleri . Plant and Soil 249, 9–18 (2003). https://doi.org/10.1023/A:1022580325301
Issue date:
DOI: https://doi.org/10.1023/A:1022580325301
Share this article
Anyone you share the following link with will be able to read this content:
Sorry, a shareable link is not currently available for this article.
Provided by the Springer Nature SharedIt content-sharing initiative