An efflux transporter of silicon in rice

被引:678
作者
Ma, Jian Feng
Yamaji, Naoki
Mitani, Namiki
Tamai, Kazunori
Konishi, Saeko
Fujiwara, Toru
Katsuhara, Maki
Yano, Masahiro
机构
[1] Okayama Univ, Bioresources Res Inst, Kurashiki, Okayama 7100046, Japan
[2] Inst Soc Technoinnovat Agr Forestry & Fisheries, Tsukuba, Ibaraki 3050854, Japan
[3] Univ Tokyo, Biotechnol Res Ctr, Bunkyo Ku, Tokyo 1138657, Japan
[4] Japan Sci & Technol Agcy, Solut Oriented Res Sci & Technol, Tokyo 1030027, Japan
[5] Natl Inst Agrobiol Sci, QTL Genom Res Ctr, Tsukuba, Ibaraki 3058602, Japan
关键词
PLANTS; ROOTS; RESISTANCE;
D O I
10.1038/nature05964
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Silicon is an important nutrient for the optimal growth and sustainable production of rice(1-4). Rice accumulates up to 10% silicon in the shoot, and this high accumulation is required to protect the plant from multiple abiotic and biotic stresses(1-5). A gene, Lsi1, that encodes a silicon influx transporter has been identified in rice(6). Here we describe a previously uncharacterized gene, low silicon rice 2 (Lsi2), which has no similarity to Lsi1. This gene is constitutively expressed in the roots. The protein encoded by this gene is localized, like Lsi1, on the plasma membrane of cells in both the exodermis and the endodermis, but in contrast to Lsi1, which is localized on the distal side, Lsi2 is localized on the proximal side of the same cells. Expression of Lsi2 in Xenopus oocytes did not result in influx transport activity for silicon, but preloading of the oocytes with silicon resulted in a release of silicon, indicating that Lsi2 is a silicon efflux transporter. The identification of this silicon transporter revealed a unique mechanism of nutrient transport in plants: having an influx transporter on one side and an efflux transporter on the other side of the cell to permit the effective transcellular transport of the nutrients.
引用
收藏
页码:209 / U12
页数:5
相关论文
共 28 条
[1]   Silicon [J].
Epstein, E .
ANNUAL REVIEW OF PLANT PHYSIOLOGY AND PLANT MOLECULAR BIOLOGY, 1999, 50 :641-664
[2]  
EPSTEIN E, 2005, MINERAL NUTR PLANTS, P227
[3]   Silicon and plant disease resistance against pathogenic fungi [J].
Fauteux, F ;
Rémus-Borel, W ;
Menzies, JG ;
Bélanger, RR .
FEMS MICROBIOLOGY LETTERS, 2005, 249 (01) :1-6
[4]  
Fuse T., 2001, PLANT BIOTECHNOL, V18, P219, DOI DOI 10.5511/PLANTBI0TECHN0L0GY.18.219
[5]   Silicon deposition in the root reduces sodium uptake in rice (Oryza sativa L.) seedlings by reducing bypass flow [J].
Gong, H. J. ;
Randall, D. P. ;
Flowers, T. J. .
PLANT CELL AND ENVIRONMENT, 2006, 29 (10) :1970-1979
[6]   EFFICIENT TRANSFORMATION OF RICE (ORYZA-SATIVA L) MEDIATED BY AGROBACTERIUM AND SEQUENCE-ANALYSIS OF THE BOUNDARIES OF THE T-DNA [J].
HIEI, Y ;
OHTA, S ;
KOMARI, T ;
KUMASHIRO, T .
PLANT JOURNAL, 1994, 6 (02) :271-282
[7]   SILICON-RESPONSIVE CDNA CLONES ISOLATED FROM THE MARINE DIATOM CYLINDROTHECA-FUSIFORMIS [J].
HILDEBRAND, M ;
HIGGINS, DR ;
BUSSER, K ;
VOLCANI, BE .
GENE, 1993, 132 (02) :213-218
[8]   A gene family of silicon transporters [J].
Hildebrand, M ;
Volcani, BE ;
Gassmann, W ;
Schroeder, JI .
NATURE, 1997, 385 (6618) :688-689
[9]   Phylogenetic variation in the silicon composition of plants [J].
Hodson, MJ ;
White, PJ ;
Mead, A ;
Broadley, MR .
ANNALS OF BOTANY, 2005, 96 (06) :1027-1046
[10]   Cellular dissection of the degradation pattern of cortical cell death during aerenchyma formation of rice roots [J].
Kawai, M ;
Samarajeewa, PK ;
Barrero, RA ;
Nishiguchi, M ;
Uchimiya, H .
PLANTA, 1998, 204 (03) :277-287