Harnessing Rhizobia to Improve Heavy-Metal Phytoremediation by Legumes

被引:72
作者
Fagorzi, Camilla [1 ]
Checcucci, Alice [1 ]
diCenzo, George C. [1 ]
Debiec-Andrzejewska, Klaudia [2 ]
Dziewit, Lukasz [3 ]
Pini, Francesco [4 ]
Mengoni, Alessio [1 ]
机构
[1] Univ Florence, Dept Biol, Via Madonna del Piano 6, I-50019 Sesto Fiorentino, Italy
[2] Univ Warsaw, Fac Biol, Lab Environm Pollut Anal, Miecznikowa 1, PL-02096 Warsaw, Poland
[3] Univ Warsaw, Fac Biol, Dept Bacterial Genet, Inst Microbiol, Miecznikowa 1, PL-02096 Warsaw, Poland
[4] Univ Florence, Dept Agrifood Prod & Environm Sci, I-50144 Florence, Italy
基金
加拿大自然科学与工程研究理事会;
关键词
soil bioremediation; heavy-metals; serpentine soils; serpentine vegetation; genome manipulation; cis-hybrid strains; GROWTH-PROMOTING BACTERIA; METALLIDURANS SP NOV; SINORHIZOBIUM-MELILOTI; ANTHYLLIS-VULNERARIA; COPPER TOLERANCE; PLANT-GROWTH; MEDICAGO-SATIVA; ROBINIA-PSEUDOACACIA; ENDOPHYTIC BACTERIA; CONTAMINATED SOILS;
D O I
10.3390/genes9110542
中图分类号
Q3 [遗传学];
学科分类号
071007 ; 090102 ;
摘要
Rhizobia are bacteria that can form symbiotic associations with plants of the Fabaceae family, during which they reduce atmospheric di-nitrogen to ammonia. The symbiosis between rhizobia and leguminous plants is a fundamental contributor to nitrogen cycling in natural and agricultural ecosystems. Rhizobial microsymbionts are a major reason why legumes can colonize marginal lands and nitrogen-deficient soils. Several leguminous species have been found in metal-contaminated areas, and they often harbor metal-tolerant rhizobia. In recent years, there have been numerous efforts and discoveries related to the genetic determinants of metal resistance by rhizobia, and on the effectiveness of such rhizobia to increase the metal tolerance of host plants. Here, we review the main findings on the metal resistance of rhizobia: the physiological role, evolution, and genetic determinants, and the potential to use native and genetically-manipulated rhizobia as inoculants for legumes in phytoremediation practices.
引用
收藏
页数:16
相关论文
共 101 条
[1]  
Alexander E.B., 2007, Serpentine geoecology of western North America : geology, soils, and vegetation
[2]  
[Anonymous], 2012, Toxicity of heavy metals to legumes and bioremediation
[3]   Functional overlap of the Arabidopsis leaf and root microbiota [J].
Bai, Yang ;
Mueller, Daniel B. ;
Srinivas, Girish ;
Garrido-Oter, Ruben ;
Potthoff, Eva ;
Rott, Matthias ;
Dombrowski, Nina ;
Muench, Philipp C. ;
Spaepen, Stijn ;
Remus-Emsermann, Mitja ;
Huettel, Bruno ;
McHardy, Alice C. ;
Vorholt, Julia A. ;
Schulze-Lefert, Paul .
NATURE, 2015, 528 (7582) :364-+
[4]   LOCALIZATION OF A SYMBIOTIC FIX REGION ON RHIZOBIUM-MELILOTI PSYM MEGAPLASMID MORE THAN 200 KILOBASES FROM THE NOD-NIF REGION [J].
BATUT, J ;
TERZAGHI, B ;
GHERARDI, M ;
HUGUET, M ;
TERZAGHI, E ;
GARNERONE, AM ;
BOISTARD, P ;
HUGUET, T .
MOLECULAR AND GENERAL GENETICS, 1985, 199 (02) :232-239
[5]   Arsenic toxicity in soybean alleviated by a symbiotic species of Bradyrhizobium [J].
Bianucci, Eliana ;
Godoy, Andrea ;
Furlan, Ana ;
Manuel Peralta, Juan ;
Hernandez, Luis E. ;
Carpena-Ruiz, Ramn O. ;
Castro, Stella .
SYMBIOSIS, 2018, 74 (03) :167-176
[6]   PHYTOSTABILIZATION: A GREEN APPROACH TO CONTAMINANT CONTAINMENT [J].
Bolan, Nanthi S. ;
Park, Jin Hee ;
Robinson, Brett ;
Naidu, Ravi ;
Huh, Keun Young .
ADVANCES IN AGRONOMY, VOL 112, 2011, 112 :145-204
[7]  
Bradshaw A.D., 1980, The Restoration of Land: the ecology and reclamation of derelict and degraded land
[8]   Evolutionary ecology of plant adaptation to serpentine soils [J].
Brady, KU ;
Kruckeberg, AR ;
Bradshaw, HD .
ANNUAL REVIEW OF ECOLOGY EVOLUTION AND SYSTEMATICS, 2005, 36 :243-266
[9]   Characterization of an Escherichia coli sulfite oxidase homologue reveals the role of a conserved active site cysteine in assembly and function [J].
Brokx, SJ ;
Rothery, RA ;
Zhang, GJ ;
Ng, DP ;
Weiner, JH .
BIOCHEMISTRY, 2005, 44 (30) :10339-10348
[10]  
Brooks R.R., 1987, SERPENTINE ITS VEGET