Some plant growth promoting bacteria (PGPB) are enigmatic in enhancing pla'/> Bacteria–zinc co-localization implicates enhanced synthesis of cysteine-rich peptides in zinc detoxification when Brassica juncea is inoculated with Rhizobium leguminosarum
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Bacteria–zinc co-localization implicates enhanced synthesis of cysteine-rich peptides in zinc detoxification when Brassica juncea is inoculated with Rhizobium leguminosarum

机译:芸苔根瘤菌接种芥菜油后细菌-锌共定位可促进锌解毒过程中富含半胱氨酸的肽的合成

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摘要

class="unordered" style="list-style-type:disc"> Some plant growth promoting bacteria (PGPB) are enigmatic in enhancing plant growth in the face of increased metal accumulation in plants. Since most PGPB colonize the plant root epidermis, we hypothesized that PGPB confer tolerance to metals through changes in speciation at the root epidermis. We employed a novel combination of fluorophore-based confocal laser scanning microscopic imaging and synchrotron based microscopic X-ray fluorescence mapping with X-ray absorption spectroscopy to characterize bacterial localization, zinc (Zn) distribution and speciation in the roots of Brassica juncea grown in Zn contaminated media (400 mg kg−1 Zn) with the endophytic Pseudomonas brassicacearum and rhizospheric Rhizobium leguminosarum. PGPB enhanced epidermal Zn sequestration relative to PGBP-free controls while the extent of endophytic accumulation depended on the colonization mode of each PGBP. Increased root accumulation of Zn and increased tolerance to Zn was associated predominantly with R. leguminosarum and was likely due to the coordination of Zn with cysteine-rich peptides in the root endodermis, suggesting enhanced synthesis of phytochelatins or glutathione. Our mechanistic model of enhanced Zn accumulation and detoxification in plants inoculated with R. leguminosarum has particular relevance to PGPB enhanced phytoremediation of soils contaminated through mining and oxidation of sulphur-bearing Zn minerals or engineered nanomaterials such as ZnS.
机译:class =“ unordered” style =“ list-style-type:disc”> <!-list-behavior = unordered prefix-word = mark-type = disc max-label-size = 0-> 面对植物中金属积累的增加,某些植物生长促进细菌(PGPB)难以为人所知。由于大多数PGPB都定植在植物根表皮上,因此我们假设PGPB通过改变根表皮上的形态来赋予对金属的耐受性。 我们采用了基于荧光团的共聚焦激光扫描显微成像和基于同步加速器的显微X射线荧光映射结合X射线吸收光谱的新型组合,以表征细菌的定位,锌(Zn)分布和形态。芥菜根生长在锌污染的培养基(400 mg −1 Zn)中,内生的铜绿假单胞菌和根际豆科根瘤菌。 PGPB相对于无PGBP的对照增强了表皮锌的固存,而内生积累的程度取决于每个PGBP的定植模式。锌根积累的增加和对锌的耐受性的增加主要与豆类念珠菌有关,这很可能是由于锌与根内胚层中富含半胱氨酸的肽的配位关系,表明植物螯合素或谷胱甘肽的合成得到增强。 我们通过豆科植物豆荚菌接种的植物中增强的Zn积累和排毒的机理模型与PGPB增强了对土壤的植物修复作用有关,该土壤修复了被含硫锌矿物或工程纳米材料如ZnS的开采和氧化所污染的土壤。

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