Chromium phytoextraction and physiological responses of the hyperaccumulator Leersia hexandra Swartz to plant growth-promoting rhizobacterium inoculation

被引:0
作者
Xuehong Zhang
Yuanyuan Zhang
Dan Zhu
Zhiyi Lin
Na Sun
Chang Su
Hua Lin
Junjian Zheng
机构
[1] Guilin University of Electronic Technology,College of Life and Environmental Science
[2] Guilin University of Technology,College of Environmental Science and Engineering
[3] Wuhan Institute of Technology,College of Mathematics and Science
来源
Frontiers of Environmental Science & Engineering | 2023年 / 17卷
关键词
Hexavalent chromium; Hyperaccumulator; Rhizobacteria; Swartz; Consortia;
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中图分类号
学科分类号
摘要
Phytoextraction is a promising option for purifying hexavalent chromium (Cr(VI))-laden wastewater, but the long remediation period incurred by poor growth rate of Cr hyperaccumulators remains a primary hindrance to its large-scale application. In this study, we performed a hydroponic experiment to evaluate the feasibility of promoting the growth and phytoextraction efficiency of Cr hyperaccumulator Leersia hexandra Swartz (L. hexandra) by inoculating plant growth-promoting rhizobacteria (PGPR) Bacillus cereus (B. cereus). In batch tests, the Cr(VI) removal rates of L. hexandra and B. cereus co-culture were greater than the sum of their respective monocultures. This was likely due to the microbial reduction of Cr(VI) to Cr(III), which is amiable to plant uptake. Besides, the PGPR factors of B. cereus, including indoleacetic acid (IAA) production, 1-aminocyclopropane-1-carboxylic acid deamination (ACCd) activity, phosphate solubilization capacity, and siderophore production, were quantified. These PGPR factors helped explain the biomass augmentation, root elongation and enhanced Cr enrichment of the inoculated L. hexandra in pot experiments. Despite the increased Cr uptake, no aggravated oxidative damage to the cell membrane was observed in the inoculated L. hexandra. This was attributed to its capacity to confront the increased intracellular Cr stress by upregulating both the activities of antioxidative enzymes and expression of metal-binding proteins/peptides. Moreover, L. hexandra could always conserve the majority of Cr in the residual and oxalic integrated forms with low mobility and phytotoxicity, irrespective of the B. cereus inoculation. These results highlight the constructed Cr hyperaccumulator-rhizobacteria consortia as an effective candidate for decontaminating Cr(VI)-laden wastewater.
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  • [1] Agar G(2020)Effects of ascorbic acid and copper treatments on metallothionein gene expression and antioxidant enzyme activities in Journal of Plant Growth Regulation 39 897-904
  • [2] Taspinar M S(2020) L. exposed to chromium stress Critical Reviews in Environmental Science and Technology 50 1043-1084
  • [3] Yildirim E(2019)Recent trends on numerical investigations of response surface methodology for pollutants adsorption onto activated carbon materials: a review Chemosphere 217 925-941
  • [4] Aydin M(1989)Integrated phytobial heavy metal remediation strategies for a sustainable clean environment: a review Biorecovery 1 81-126
  • [5] Yuce M(2013)Terrestrial higher plants which hyperaccumulate metallic elements — a review of their distribution, ecology and phytochemistry Chemical Speciation and Bioavailability 25 79-88
  • [6] Anfar Z(2014)Metal accumulation and physiological responses induced by copper and cadmium in Plant and Soil 379 35-50
  • [7] Ait Ahsaine H(2004) and Molecular Microbiology 51 407-417
  • [8] Zbair M(2014)Rhizobacterial inoculants can improve nickel phytoextraction by the hyperaccumulator Chemosphere 96 112-121
  • [9] Amedlous A(2008) requires siderophore biosynthesis for growth in macrophages and mouse virulence Chemosphere 74 19-25
  • [10] Ait El Fakir A(2016)Investigation on mechanism of Cr(VI) reduction and removal by Plant and Soil 399 179-192