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在受砷污染土壤中生长的磁引发大豆根系结构的同步辐射断层扫描

Synchrotron tomography of magnetoprimed soybean plant root system architecture grown in arsenic-polluted soil.

作者信息

Fatima Anis, Kataria Sunita, Jain Meeta, Prajapati Rajkumar, Mahawar Lovely

机构信息

Technical Physics Division, Bhabha Atomic Research Centre, Mumbai, India.

School of Biochemistry, Devi AhilyaVishwavidyalaya, Indore, MP, India.

出版信息

Front Plant Sci. 2024 Jul 2;15:1391846. doi: 10.3389/fpls.2024.1391846. eCollection 2024.

Abstract

The present study evaluated the repercussions of magnetopriming on the root system architecture of soybean plants subjected to arsenic toxicity using synchrotron radiation source based micro-computed tomography (SR-µCT). This will be used evey where as abbreviation for the technique for three-dimensional imaging. Seeds of soybean were exposed to the static magnetic field (SMF) of strength (200 mT) for 1h prior to sowing. Magnetoprimed and non-primed seeds were grown for 1 month in a soil-sand mixture containing four different levels of sodium arsenate (0, 5, 10, and 50 mg As kg soil). The results showed that arsenic adversely affects the root growth in non-primed plants by reducing their root length, root biomass, root hair, size and number of root nodules, where the damaging effect of As was observed maximum at higher concentrations (10 and 50 mg As kg soil). However, a significant improvement in root morphology was detected in magnetoprimed plants where SMF pretreatment enhanced the root length, root biomass, pore diameter of cortical cells, root hair formation, lateral roots branching, and size of root nodules and girth of primary roots. Qualitative analysis of x-ray micro-CT images showed that arsenic toxicity damaged the epidermal and cortical layers of the root as well as reduced the pore diameter of the cortical cells. However, the diameter of cortical cells pores in magnetoprimed plants was observed higher as compared to plants emerged from non-primed seeds at all level of As toxicity. Thus, the study suggested that magnetopriming has the potential to attenuate the toxic effect of As and could be employed as a pre-sowing treatment to reduce the phytotoxic effects of metal ions in plants by improving root architecture and root tolerance index. This study is the very first exploration of the potential benefits of magnetopriming in mitigating the toxicity of metals (As) in plant roots utilizing the micro-CT technique.

摘要

本研究使用基于同步辐射源的微型计算机断层扫描技术(SR-µCT),评估了磁引发对遭受砷毒性的大豆植株根系结构的影响。此技术将在所有地方用作三维成像技术的缩写。大豆种子在播种前暴露于强度为200 mT的静磁场(SMF)中1小时。经磁引发和未经引发处理的种子在含有四种不同水平砷酸钠(0、5、10和50 mg As kg土壤)的土壤-沙子混合物中生长1个月。结果表明,砷通过减少未引发处理植株的根长、根生物量、根毛、根瘤大小和数量,对其根系生长产生不利影响,其中在较高浓度(10和50 mg As kg土壤)下观察到砷的破坏作用最大。然而,在经磁引发处理的植株中检测到根系形态有显著改善,其中SMF预处理增加了根长、根生物量、皮层细胞孔径、根毛形成、侧根分支、根瘤大小和主根周长。X射线微型CT图像的定性分析表明,砷毒性破坏了根的表皮和皮层,并减小了皮层细胞的孔径。然而,在所有砷毒性水平下,与未经引发处理的种子长成的植株相比,经磁引发处理的植株中皮层细胞孔隙的直径更高。因此,该研究表明磁引发有减轻砷毒性作用的潜力,并且可以用作播种前处理,通过改善根系结构和根系耐受指数来降低植物中金属离子的植物毒性作用。本研究是首次利用微型CT技术探索磁引发在减轻植物根系中金属(砷)毒性方面潜在益处的研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9b0c/11249557/ff3e7ef79453/fpls-15-1391846-g001.jpg

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