Gene limiting cadmium accumulation in rice
Top Cited Papers
- 7 September 2010
- journal article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 107 (38) , 16500-16505
- https://doi.org/10.1073/pnas.1005396107
Abstract
Intake of toxic cadmium (Cd) from rice caused Itai-itai disease in the past and it is still a threat for human health. Therefore, control of the accumulation of Cd from soil is an important food-safety issue, but the molecular mechanism for the control is unknown. Herein, we report a gene ( OsHMA3 ) responsible for low Cd accumulation in rice that was isolated from a mapping population derived from a cross between a high and low Cd-accumulating cultivar. The gene encodes a transporter belonging to the P 1B -type ATPase family, but shares low similarity with other members. Heterologous expression in yeast showed that the transporter from the low-Cd cultivar is functional, but the transporter from the high-Cd cultivar had lost its function, probably because of the single amino acid mutation. The transporter is mainly expressed in the tonoplast of root cells at a similar level in both the low and high Cd-accumulating cultivars. Overexpression of the functional gene from the low Cd-accumulating cultivar selectively decreased accumulation of Cd, but not other micronutrients in the grain. Our results indicated that OsHMA3 from the low Cd-accumulating cultivar limits translocation of Cd from the roots to the above-ground tissues by selectively sequestrating Cd into the root vacuoles.Keywords
This publication has 29 references indexed in Scilit:
- Identification of a Novel Major Quantitative Trait Locus Controlling Distribution of Cd Between Roots and Shoots in RicePlant and Cell Physiology, 2009
- A major quantitative trait locus controlling cadmium translocation in rice (Oryza sativa)New Phytologist, 2009
- Evidence for separate translocation pathways in determining cadmium accumulation in grain and aerial plant parts in riceBMC Plant Biology, 2009
- AtHMA3, a P1B-ATPase Allowing Cd/Zn/Co/Pb Vacuolar Storage in ArabidopsisPlant Physiology, 2008
- Iron deficiency enhances cadmium uptake and translocation mediated by the Fe2+transporters OsIRT1 and OsIRT2 in riceSoil Science and Plant Nutrition, 2006
- P1B-ATPases – an ancient family of transition metal pumps with diverse functions in plantsPublished by Elsevier ,2005
- Chromosomal regions with quantitative trait loci controlling cadmium concentration in brown rice (Oryza sativa)New Phytologist, 2005
- Heavy metal transport by AtHMA4 involves the N‐terminal degenerated metal binding domain and the C‐terminal His11 stretchFEBS Letters, 2005
- Overexpression of AtHMA4 enhances root‐to‐shoot translocation of zinc and cadmium and plant metal toleranceFEBS Letters, 2004
- Engineering tolerance and accumulation of lead and cadmium in transgenic plantsNature Biotechnology, 2003