Comparative Analysis of Arsenic Transport and Tolerance Mechanisms: Evolution from Prokaryote to Higher Plants

被引:13
作者
Zhang, Jie [1 ]
Liu, Jiayou [1 ]
Zheng, Fubin [1 ]
Yu, Min [1 ]
Shabala, Sergey [1 ,2 ,3 ]
Song, Won-Yong [1 ]
机构
[1] Foshan Univ, Int Ctr Environm Membrane Biol, Sch Food Sci & Engn, Dept Hort, Foshan 528011, Peoples R China
[2] Univ Tasmania, Tasmanian Inst Agr, Hobart, Tas 7001, Australia
[3] Univ Western Australia, Sch Biol Sci, Perth, WA 6009, Australia
基金
中国国家自然科学基金;
关键词
arsenic; arsenic operon; arsenate reductase; arsenite efflux; ATP Binding Cassette transporter; RICE AQUAPORIN LSI1; PHYTOCHELATIN SYNTHASE; PTERIS-VITTATA; MOLECULAR-MECHANISMS; CATALYTIC DOMAIN; GENE ENCODES; ARABIDOPSIS; TRANSLOCATION; ACCUMULATION; REDUCTASE;
D O I
10.3390/cells11172741
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Arsenic (As) is a toxic metalloid for all living organisms and can cause serious harm to humans. Arsenic is also toxic to plants. To alleviate As toxicity, all living organisms (from prokaryotes to higher plants) have evolved comprehensive mechanisms to reduce cytosolic As concentration through the set of As transporters localized at the plasma and tonoplast membranes, which operate either in arsenite As(III) extrusion out of cells (via ArsB, ACR3, and aquaporins) or by sequestering arsenic into vacuoles (by ABC transporters). In addition, a special arsenate resistance mechanism found in some bacterial systems has evolved in an As hyperaccumulating fern Pteris vittata, which involves transforming arsenate As(V) to an As(V) phosphoglycerate derivative by a glyceraldehyde 3-phosphate dehydrogenase and transporting this complex by an efflux transporter. In the present review, we summarize the evolution of these arsenic resistance mechanisms from prokaryotes to eukaryotes and discuss future approaches that could be utilized to better understand and improve As resistance mechanisms in plants.
引用
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页数:14
相关论文
共 48 条
[31]   Comparative analysis of alfalfa (Medicago sativa L.) leaf transcriptomes reveals genotype-specific salt tolerance mechanisms [J].
Lei, Yunting ;
Xu, Yuxing ;
Hettenhausen, Christian ;
Lu, Chengkai ;
Shen, Guojing ;
Zhang, Cuiping ;
Li, Jing ;
Song, Juan ;
Lin, Honghui ;
Wu, Jianqiang .
BMC PLANT BIOLOGY, 2018, 18
[32]   Comparative analysis of growth, physiological and transcriptomic response revealed mechanisms of waterlogging tolerance of hot pepper (Capsicum annuum var. conoides) [J].
Guo, Hao ;
Tian, Hao ;
Wang, Yiqin ;
Xiong, Xingwei ;
Tian, Huaizhi ;
Zhang, Suqin ;
Geng, Guangdong .
PLANT BREEDING, 2022, 141 (06) :807-819
[33]   INVESTIGATING THE POSSIBLE MECHANISMS INVOLVED IN ALUMINUM TOLERANCE THROUGH ANALYSIS OF TRANSCRIPTOME DATA FROM DIFFERENT GENOTYPES OF SOYBEAN [J].
Huang Shoucheng ;
Huang Ping ;
Liu Ziwei ;
Fang Rongjun ;
Wen Zhongling ;
Yang Minkai ;
Fu Jiangyan ;
Zhao Hua ;
Lu Guihua ;
Qian Lisheng ;
Qi Jinliang ;
Yang Yonghua .
PAKISTAN JOURNAL OF BOTANY, 2020, 52 (06) :1891-1897
[34]   Comparative Proteomics of Thellungiella halophila Leaves from Plants Subjected to Salinity Reveals the Importance of Chloroplastic Starch and Soluble Sugars in Halophyte Salt Tolerance [J].
Wang, Xuchu ;
Chang, Lili ;
Wang, Baichen ;
Wang, Dan ;
Li, Pinghua ;
Wang, Limin ;
Yi, Xiaoping ;
Huang, Qixing ;
Peng, Ming ;
Guo, Anping .
MOLECULAR & CELLULAR PROTEOMICS, 2013, 12 (08) :2174-2195
[35]   Comparative Analysis of Physiological, Hormonal and Transcriptomic Responses Reveal Mechanisms of Saline-Alkali Tolerance in Autotetraploid Rice (Oryza sativa L.) [J].
Zhang, Chunying ;
Meng, Weilong ;
Wang, Yingkai ;
Zhou, Yiming ;
Wang, Shiyan ;
Qi, Fan ;
Wang, Ningning ;
Ma, Jian .
INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2022, 23 (24)
[36]   Comparative transcriptome analysis of galls from four different host plants suggests the molecular mechanism of gall development [J].
Takeda, Seiji ;
Yoza, Makiko ;
Amano, Taisuke ;
Ohshima, Issei ;
Hirano, Tomoko ;
Sato, Masa H. ;
Sakamoto, Tomoaki ;
Kimura, Seisuke .
PLOS ONE, 2019, 14 (10)
[37]   Molecular and functional analysis of phosphomannomutase (PMM) from higher plants and genetic evidence for the involvement of PMM in ascorbic acid biosynthesis in Arabidopsis and Nicotiana benthamiana [J].
Qian, Weiqiang ;
Yu, Chunmei ;
Qin, Huanju ;
Liu, Xin ;
Zhang, Aimin ;
Johansen, Ida Elisabeth ;
Wang, Daowen .
PLANT JOURNAL, 2007, 49 (03) :399-413
[38]   Comparative Proteomics Analysis Reveals the Molecular Mechanisms Underlying the Accumulation Difference of Bioactive Constituents in Taxilli Herba from Two Hosts [J].
Yuan, Jiahuan ;
Wu, Nan ;
Yang, Wei ;
Cai, Zhichen ;
Chen, Cuihua ;
Zhou, Yongyi ;
Chen, Haijie ;
Xue, Jia ;
Liu, Xunhong ;
Wang, Wenxin ;
Cheng, Jianming ;
Li, Li .
JOURNAL OF PLANT GROWTH REGULATION, 2024, 43 (02) :563-575
[39]   Comparative Proteomics Analysis Reveals the Molecular Mechanisms Underlying the Accumulation Difference of Bioactive Constituents in Taxilli Herba from Two Hosts [J].
Jiahuan Yuan ;
Nan Wu ;
Wei Yang ;
Zhichen Cai ;
Cuihua Chen ;
Yongyi Zhou ;
Haijie Chen ;
Jia Xue ;
Xunhong Liu ;
Wenxin Wang ;
Jianming Cheng ;
Li Li .
Journal of Plant Growth Regulation, 2024, 43 :563-575
[40]   Common resistance mechanisms are deployed by plants against sap-feeding herbivorous insects: insights from a meta-analysis and systematic review [J].
Leybourne, D. J. ;
Aradottir, G., I .
SCIENTIFIC REPORTS, 2022, 12 (01)