| Literature DB >> 28298917 |
Yanshan Chen1, Yong-He Han1, Yue Cao1, Yong-Guan Zhu2, Bala Rathinasabapathi3, Lena Q Ma4.
Abstract
Rice (Oryza sativa L.) feeds ∼3 billion people. Due to the wide occurrence of arsenic (As) pollution in paddy soils and its efficient plant uptake, As in rice grains presents health risks. Genetic manipulation may offer an effective approach to reduce As accumulation in rice grains. The genetics of As uptake and metabolism have been elucidated and target genes have been identified for genetic engineering to reduce As accumulation in grains. Key processes controlling As in grains include As uptake, arsenite (AsIII) efflux, arsenate (AsV) reduction and AsIII sequestration, and As methylation and volatilization. Recent advances, including characterization of AsV uptake transporter OsPT8, AsV reductase OsHAC1;1 and OsHAC1;2, rice glutaredoxins, and rice ABC transporter OsABCC1, make many possibilities to develop low-arsenic rice.Entities:
Keywords: Oryza sativa; arsenate reduction; arsenic uptake; arsenite efflux; methylation; sequestration
Year: 2017 PMID: 28298917 PMCID: PMC5331031 DOI: 10.3389/fpls.2017.00268
Source DB: PubMed Journal: Front Plant Sci ISSN: 1664-462X Impact factor: 5.753
Critical gene families and representative genes from different species involved in As uptake, transport and metabolism.
| Gene category | Gene name | Source | Manipulation | Consequence | Reference |
|---|---|---|---|---|---|
| Phosphate transporter (AsV transport) | Knockout | Increased AsV tolerance | |||
| Knockout | Decreased AsV uptake; Increased AsV tolerance | ||||
| Aquaporins (AsIII transport) | Knockout | Decreased As accumulation in straw of field-grown rice | |||
| Knockout | Increased AsIII tolerance; Decreased As accumulation | ||||
| Knockout | Increased shoot As tolerance; Decreased shoot As | ||||
| Overexpression ( | AsIII sensitivity; Increased As accumulation | ||||
| Arsenate reductase | Knockout or overexpression | No effect on As accumulation | |||
| Knockout | AsV sensitivity; Decreased As efflux from roots; Increased As accumulation in the shoots | ||||
| Overexpression (rice) | Increased AsIII efflux into the external medium; Decrease As accumulation in rice grain | ||||
| Glutaredoxin | Overexpression ( | Increased As tolerance; Decreased As in leaves | |||
| Overexpression ( | Increased As tolerance; Decreased As accumulation | ||||
| Phytochelatin synthase | Overexpression (rice) | Decreased As accumulation in grain | |||
| NRAMP transporter (Fe/Mn/Cd/As transport) | Overexpression (rice) | Increased As tolerance and accumulation | |||
| ABC transporter (Cd/Pb/As transport) | Overexpression ( | Increased As tolerance and accumulation | |||
| Overexpression ( | Increased As tolerance | ||||
| Overexpression ( | Increased As tolerance | ||||
| ACR3 transporter (AsIII efflux) | Overexpression (rice) | Increased As efflux; Decreased As in grain | |||
| Overexpression ( | Increased As efflux; Decreased As accumulation under AsIII in short-term exposure; Increased shoot As accumulation in soil in long-term cultivation | ||||
| ArsB/NhaD permease (AsIII efflux) | Knockout | As sensitivity and As accumulation | |||
| Knockout | Decreased As accumulation | ||||
| ArsM/AS3MT family (As methylation) | Overexpression (rice) | Produced methylated volatile arsenic | |||
| Expression ( | Conferred resistance to AsIII | ||||
| Overexpression ( | As methylation to DMAV and As sensitivity | ||||
| Inositol transporters (As transport) | Knockout | Lower shoot As accumulation | |||
| CRT-like transporter (Glutathione homeostasis) | Knockout | Lower As accumulation in roots but higher or similar As accumulation in shoots | |||