Literature DB >> 17969706

Greatly enhanced arsenic shoot assimilation in rice leads to elevated grain levels compared to wheat and barley.

Paul N Williams1, Antia Villada, Claire Deacon, Andrea Raab, Jordi Figuerola, Andrew J Green, Jörg Feldmann, Andrew A Meharg.   

Abstract

Paired grain, shoot, and soil of 173 individual sample sets of commercially farmed temperate rice, wheat, and barley were surveyed to investigate variation in the assimilation and translocation of arsenic (As). Rice samples were obtained from the Carmargue (France), Doñana (Spain), Cadiz (Spain), California, and Arkansas. Wheat and barleywere collected from Cornwall and Devon (England) and the east coast of Scotland. Transfer of As from soil to grain was an order of magnitude greater in rice than for wheat and barley, despite lower rates of shoot-to-grain transfer. Rice grain As levels over 0.60 microg g(-1) d. wt were found in rice grown in paddy soil of around only 10 microg g(-1) As, showing that As in paddy soils is problematic with respect to grain As levels. This is due to the high shoot/soil ratio of approximately 0.8 for rice compared to 0.2 and 0.1 for barley and wheat, respectively. The differences in these transfer ratios are probably due to differences in As speciation and dynamics in anaerobic rice soils compared to aerobic soils for barley and wheat. In rice, the export of As from the shoot to the grain appears to be under tight physiological control as the grain/shoot ratio decreases by more than an order of magnitude (from approximately 0.3 to 0.003 mg/kg) and as As levels in the shoots increase from 1 to 20 mg/kg. A down regulation of shoot-to-grain export may occur in wheat and barley, but it was not detected at the shoot As levels found in this survey. Some agricultural soils in southwestern England had levels in excess of 200 microg g(-1) d. wt, although the grain levels for wheat and barley never breached 0.55 microg g(-1) d. wt. These grain levels were achieved in rice in soils with an order of magnitude lower As. Thus the risk posed by As in the human food-chain needs to be considered in the context of anaerobic verses aerobic ecosystems.

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Year:  2007        PMID: 17969706     DOI: 10.1021/es070627i

Source DB:  PubMed          Journal:  Environ Sci Technol        ISSN: 0013-936X            Impact factor:   9.028


  89 in total

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Journal:  Environ Monit Assess       Date:  2017-08-02       Impact factor: 2.513

2.  Concentrations of urinary arsenic species in relation to rice and seafood consumption among children living in Spain.

Authors:  Antonio J Signes-Pastor; Jesus Vioque; Eva M Navarrete-Muñoz; Manus Carey; Manoli García de la Hera; Jordi Sunyer; Maribel Casas; Isolina Riaño-Galán; Adonina Tardón; Sabrina Llop; Rubén Amorós; Pilar Amiano; José R Bilbao; Margaret R Karagas; Andrew A Meharg
Journal:  Environ Res       Date:  2017-08-01       Impact factor: 6.498

3.  A vacuolar arsenite transporter necessary for arsenic tolerance in the arsenic hyperaccumulating fern Pteris vittata is missing in flowering plants.

Authors:  Emily Indriolo; GunNam Na; Danielle Ellis; David E Salt; Jo Ann Banks
Journal:  Plant Cell       Date:  2010-06-08       Impact factor: 11.277

4.  An assessment of arsenic hazard in groundwater-soil-rice system in two villages of Nadia district, West Bengal, India.

Authors:  Munish Kumar Upadhyay; Arnab Majumdar; Anil Barla; Sutapa Bose; Sudhakar Srivastava
Journal:  Environ Geochem Health       Date:  2019-04-08       Impact factor: 4.609

5.  Contamination status of arsenic in fish and shellfish from three river basins in Ghana.

Authors:  Francis Gbogbo; Samuel Darlynton Otoo; Obed Asomaning; Robert Quaye Huago
Journal:  Environ Monit Assess       Date:  2017-07-17       Impact factor: 2.513

6.  Arsenic speciation in phloem and xylem exudates of castor bean.

Authors:  Wen-Ling Ye; B Alan Wood; Jacqueline L Stroud; P John Andralojc; Andrea Raab; Steve P McGrath; Jörg Feldmann; Fang-Jie Zhao
Journal:  Plant Physiol       Date:  2010-09-24       Impact factor: 8.340

7.  High-resolution secondary ion mass spectrometry reveals the contrasting subcellular distribution of arsenic and silicon in rice roots.

Authors:  Katie L Moore; Markus Schröder; Zhongchang Wu; Barry G H Martin; Chris R Hawes; Steve P McGrath; Malcolm J Hawkesford; Jian Feng Ma; Fang-Jie Zhao; Chris R M Grovenor
Journal:  Plant Physiol       Date:  2011-04-13       Impact factor: 8.340

Review 8.  Understanding arsenic dynamics in agronomic systems to predict and prevent uptake by crop plants.

Authors:  Tracy Punshon; Brian P Jackson; Andrew A Meharg; Todd Warczack; Kirk Scheckel; Mary Lou Guerinot
Journal:  Sci Total Environ       Date:  2016-12-30       Impact factor: 7.963

9.  Effects of modified biochar on rhizosphere microecology of rice (Oryza sativa L.) grown in As-contaminated soil.

Authors:  Shusi Liu; Yixin Lu; Chen Yang; Chuanping Liu; Lin Ma; Zhi Dang
Journal:  Environ Sci Pollut Res Int       Date:  2017-09-02       Impact factor: 4.223

10.  Arsenic Intake through Consumed Rice in Iran: Markets Role or Government Responsibility.

Authors:  Sepideh Nemati; Mohammad Mosaferi; Alireza Ostadrahimi; Amir Mohammadi
Journal:  Health Promot Perspect       Date:  2014-12-30
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