Abstract
Arsenic (As) finds its way into soils used for rice (Oryza sativa) cultivation through polluted irrigation water, and through historic contamination with As-based pesticides. As is known to be present as a number of chemical species in such soils, so we wished to investigate how these species were accumulated by rice. As species found in soil solution from a greenhouse experiment where rice was irrigated with arsenate contaminated water were arsenite, arsenate, dimethylarsinic acid, and monomethylarsonic acid. The short-term uptake kinetics for these four As species were determined in 7-d-old excised rice roots. High-affinity uptake (0-0.0532 mM) for arsenite and arsenate with eight rice varieties, covering two growing seasons, rice var. Boro (dry season) and rice var. Aman (wet season), showed that uptake of both arsenite and arsenate by Boro varieties was less than that of Aman varieties. Arsenite uptake was active, and was taken up at approximately the same rate as arsenate. Greater uptake of arsenite, compared with arsenate, was found at higher substrate concentration (low-affinity uptake system). Competitive inhibition of uptake with phosphate showed that arsenite and arsenate were taken up by different uptake systems because arsenate uptake was strongly suppressed in the presence of phosphate, whereas arsenite transport was not affected by phosphate. At a slow rate, there was a hyperbolic uptake of monomethylarsonic acid, and limited uptake of dimethylarsinic acid.
MeSH Terms
Arsenates/metabolism
Arsenicals/metabolism
Arsenites/metabolism
Cacodylic Acid/metabolism
Kinetics
Oryza/drug effects,metabolism
Pesticides/metabolism
Phosphates/pharmacology
Plant Roots/drug effects,metabolism
Seasons
Soil/analysis
Species Specificity
Water Pollutants, Chemical/metabolism
Chemicals
Arsenates
Arsenicals
Arsenites
Pesticides
Phosphates
Soil
Water Pollutants, Chemical
Cacodylic Acid
monomethylarsonic acid
arsenite
arsenic acid
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Abedin Mohammed Joinal
Department of Plant and Soil Science, University of Aberdeen, St. Machar Drive, Aberdeen AB24 3UU, United Kingdom.
Feldmann Jörg
Meharg Andy A
References (12)
12 references, click to expand
-
Mechanism of arsenate resistance in the ericoid mycorrhizal fungus Hymenoscyphus ericae.
Plant Physiol. 2000 Nov;124(3):1327-34
PMID: 11080308
-
The glycerol channel Fps1p mediates the uptake of arsenite and antimonite in Saccharomyces cerevisiae.
Mol Microbiol. 2001 Jun;40(6):1391-401
PMID: 11442837
-
Arsenic accumulation and metabolism in rice (Oryza sativa L.).
Environ Sci Technol. 2002 Mar 1;36(5):962-8
PMID: 11918027
-
Arsenate uptake and release in relation to the inhibition of transport and glycolysis in yeast.
Biochem Pharmacol. 1965 Jul;14(7):1093-112
PMID: 5854739
-
Plasmid-mediated heavy metal resistances.
Annu Rev Microbiol. 1988;42:717-43
PMID: 3060006
-
Arsenic poisoning in the Ganges delta.
Nature. 1999 Oct 7;401(6753):545-6; discussion 546-7
PMID: 10524620
-
Syndrome of endemic arsenism and fluorosis. A clinical study.
Chin Med J (Engl). 1992 Jul;105(7):586-90
PMID: 1451565
-
Trace element concentration and arsenic speciation in the well water of a Taiwan area with endemic blackfoot disease.
Biol Trace Elem Res. 1995 Jun;48(3):263-74
PMID: 9398946
-
Arsenic poisoning of Bangladesh groundwater.
Nature. 1998 Sep 24;395(6700):338
PMID: 9759723
-
The relationship of arsenic levels in drinking water and the prevalence rate of skin lesions in Bangladesh.
Environ Health Perspect. 1999 Sep;107(9):727-9
PMID: 10464073
-
A market basket survey of inorganic arsenic in food.
Food Chem Toxicol. 1999 Aug;37(8):839-46
PMID: 10506007
-
Cancer risks from arsenic in drinking water.
Environ Health Perspect. 1992 Jul;97:259-67
PMID: 1396465