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11.
TianTian Xiong Annabelle Austruy Antoine Pierart Muhammad Shahi Eva Schreck Stéphane Mombo Camille Dumat 《环境科学学报(英文版)》2016,28(8):16-27
At the global scale, foliar metal transfer occurs for consumed vegetables cultivated in numerous urban or industrial areas with a polluted atmosphere. However, the kinetics of metal uptake, translocation and involved phytotoxicity was never jointly studied with vegetables exposed to micronic and sub-micronic particles (PM). Different leafy vegetables (lettuces and cabbages) cultivated in RHIZOtest® devices were, therefore, exposed in a greenhouse for 5, 10 and 15 days to various PbO PM doses. The kinetics of transfer and phytotoxicity was assessed in relation to lead concentration and exposure duration. A significant Pb accumulation in leaves (up to 7392 mg/kg dry weight (DW) in lettuce) with translocation to roots was observed. Lead foliar exposure resulted in significant phytotoxicity, lipid composition change, a decrease of plant shoot growth (up to 68.2% in lettuce) and net photosynthesis (up to 58% in lettuce). The phytotoxicity results indicated plant adaptation to Pb and a higher sensitivity of lettuce in comparison with cabbage. Air quality needs, therefore, to be considered for the health and quality of vegetables grown in polluted areas, such as certain megacities (in China, Pakistan, Europe, etc.) and furthermore, to assess the health risks associated with their consumption. 相似文献
12.
生物炭早期植物毒性评估培养方法研究 总被引:2,自引:0,他引:2
为更加科学地评估生物炭潜在植物毒性,采用生物炭(B)、生物炭+土壤(B+S)、生物炭水浸提液+土壤(AE+S)、生物炭+石英砂(B+Q)、生物炭水浸提液+石英砂(AE+Q)5种不同的培养方法进行早期植物毒性效应实验。比较分析不同培养方法中西红柿种子发芽率、根长、芽长对生物炭的响应。结果表明:在5种培养方法中,随生物炭剂量增加,西红柿种子发芽率、根长、芽长呈现先增后降的变化趋势。虽在低剂量生物炭处理下(10.0 g·kg~(-1)),种子萌发表现出促进作用。但随剂量增加,除B+S和AE+S外,均表现出一定的抑制作用,且当剂量为160.0 g·kg~(-1)时,抑制作用达到最大。对比有土和无土培养方法中种子萌发情况发现,在高剂量下,无土培养方法中种子发芽率,根、芽生长所受抑制作用显著高于有土培养方法。无土方法中,尤其AE+Q方法中,高剂量生物炭对种子发芽率、根长、芽长表现出最大的抑制作用,其中发芽率抑制率为91.1%,根长抑制率为77.7%,芽长抑制率为93.7%。综合比较分析,生物炭水浸提液+石英砂(AE+Q)的培养方法干扰因子少,可提高毒性响应灵敏度。因此,在生物炭早期植物毒性效应评估中,该法可作为推荐的培养方法。 相似文献
13.
石墨烯对高等植物幼苗的毒性及机理探究 总被引:1,自引:0,他引:1
随着石墨烯产品的广泛应用和潜在的环境释放,其对生态环境的影响已引起广泛关注。为探讨石墨烯对高等植物生长的影响,探究了其对黄瓜幼苗和玉米幼苗生长的影响及其致毒机理。结果表明,水培条件下,不同浓度的石墨烯(10、50、100、500、1 000和2 000 mg·L~(-1))处理植物幼苗15 d后,对植物幼苗的生长具有抑制作用。且随着处理时间和石墨烯浓度的增加,植物幼苗生长的所有指标,包括根/地上部鲜重和干重、根长、根尖数、株高和叶面积均相应降低。另外,黄瓜幼苗比玉米幼苗对石墨烯更加的敏感。进一步研究发现,石墨烯与黄瓜幼苗根部直接接触导致的物理损伤、氧化损伤,以及营养耗竭是其致毒机理。而石墨烯对玉米幼苗的致毒机理包括物理损伤和营养耗竭。本研究为石墨烯的环境风险评价提供了基础数据。 相似文献
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16.
刺芹侧耳对孔雀石绿的脱色降解及其产物分析 总被引:2,自引:0,他引:2
以白腐真菌刺芹侧耳(Pleurotus eryngii-Co007)为染料脱色菌株,研究三苯甲烷染料孔雀石绿的浓度、脱色p H、脱色温度及脱色时间对染料脱色的影响,并对降解产物进行紫外-可见吸收光谱分析、红外光谱分析、GC-MS分析和植物毒性实验,以揭示孔雀石绿可能的降解路径及其产物毒性.结果表明:在p H 6、30℃条件下,P.eryngii-Co007脱色降解200 mg·L-1孔雀石绿,9 h脱色率可达98.22%;孔雀石绿的降解产物主要包括4-(二甲氨基)二苯甲酮、4-(甲氨基)二苯甲酮和4-氨基二苯甲酮;推测孔雀石绿可能的降解路径为孔雀石绿中心碳的羟基化反应,随后中心碳迅速发生碳-碳键断裂,产生4-(二甲氨基)二苯甲酮,4-(二甲氨基)二苯甲酮经过两个连续的N-去甲基化过程,分别产生4-(甲氨基)二苯甲酮和4-氨基二苯甲酮;植物毒性实验表明,P.eryngii-Co007对孔雀石绿有较好的脱毒作用.综上,P.eryngii-Co007能高效脱色降解高浓度的孔雀石绿,同时可显著降低染料对植物的毒害作用. 相似文献
17.
聚乙烯和聚乳酸微塑料对大豆生长和生理生化及代谢的影响 总被引:1,自引:0,他引:1
为揭示生物可降解性不同的微塑料对农作物的毒性效应,选择聚乳酸(polylactic acid可生物降解)和聚乙烯(polyethylene难生物降解)微塑料(microplastics)为供试材料,以大豆为供试植物,深入探究了不同暴露水平(0.1%,1%,W/W)下两种不同的微塑料对大豆(Glycine max)生长、光合作用、抗氧化性、营养品质以及代谢方面的影响.结果表明,聚乙烯微塑料(PEMPs)对大豆根部鲜重有促进作用,而0.1%聚乳酸微塑料(PLAMPs)则抑制根部长度.大豆的叶绿素含量在0.1% PEMPs作用下能够显著提高.PLAMPs则能够导致大豆过氧化氢酶(CAT)活性显著下降,而过氧化氢(H2O2)含量在0.1% PEMPs和1% PLAMPs下显著升高.此外,微塑料的暴露能够改变大豆根部中锰、铁以及铜的含量,其中0.1% PEMPs的效应最为显著.大豆叶片中的氨基酸代谢在PEMPs的作用下上调,而0.1% PLAMPs则引起有机酸以及糖类代谢下调.综上,微塑料的植物毒性效应与其生物可降解性及浓度密切相关,低浓度可生物降解微塑料的效应最强.这些发现有望为微塑料的植物毒理研究提供新的方向. 相似文献
18.
砷超富集植物蜈蚣草中磷和钙的亚细胞分布及其与耐砷毒的关系 总被引:13,自引:0,他引:13
为了在研究砷超富集植物蜈蚣草中磷和钙的亚细胞分布,并探讨其与蜈蚣草耐砷毒的关系进行了试验研究.结果表明,蜈蚣草吸收的磷主要分布在胞质组分中(平均占各部位总磷含量的44%以上),吸收的钙主要分布在细胞壁组分中(平均占各部位总钙含量的48%以上).与低钙(0.03和2.5 mmol·L-1)处理相比,高钙(5.0 mmol·L-1)处理时,根部的胞质组分和叶柄的细胞器组分中磷含量较高.各器官的亚细胞组分中钙含量随着介质中添加钙浓度的提高而增加.介质钙浓度过高会抑制蜈蚣草的生长.在加砷处理下,根部和叶柄细胞壁组分的磷含量有所减少,但地上部细胞器组分的磷含量及其含磷总量占植株含磷总量的相对比例、根部细胞壁组分的钙含量增加.蜈蚣草自主调节磷和钙的亚细胞水平分布可能是其耐砷毒的机制之一. 相似文献
19.
To evaluate decolorization and detoxification of Azure B dye by a newly isolated Bacillus sp. MZS10 strain, the cultivation medium and decolorization mechanism of the isolate were investigated. The decolorization was discovered to be dependent on cell density of the isolate and reached 93.55%(0.04 g/L) after 14 hr of cultivation in a 5 L stirred-tank fermenter at 2.0 g/L yeast extract and 6.0 g/L soluble starch and a small amount of mineral salts. The decolorization metabolites were identified with ultra performance liquid chromatography-tandem mass spectroscopy(UPLC-MS). A mechanism for decolorization of Azure B was proposed as follows: the C=N in Azure B was initially reduced to –NH by nicotinamide adenine dinucleotide phosphate(NADPH)-dependent quinone dehydrogenase, and then the –NH further combined with –OH derived from glucose to form a stable and colorless compound through a dehydration reaction. The phytotoxicity was evaluated for both Azure B and its related derivatives produced by Bacillus sp. MZS10 decolorization, indicating that the decolorization metabolites were less toxic than original dye. The decolorization efficiency and mechanism shown by Bacillus sp. MZS10 provided insight on its potential application for the bioremediation of the dye Azure B. 相似文献
20.
The present study aims to determine the phytotoxic effects of lead (Pb) on corn (Zea mays), wheat (Triticum aestivum), cucumber (Cucumis sativus), cabbage (Brassica oleracea) and lettuce (Lactuca sativa) and to identify the sensitive crop species and appropriate bioassays for potential use in phytotoxicity assessment of Pb-contaminated soil. In a laboratory experiment, Pb(NO3)2 was added to the background soil to obtain eight Pb treatments. The results indicate that the seed germination rate of lettuce decreases by 14.44%, 30.00% and 40.00% at 2000, 3000 and 4000 mg Pb kg?1 soil, respectively. However, the germination of corn, wheat, cucumber and cabbage is not significantly influenced by the Pb-contaminated soil treated with all the tested concentrations. Furthermore, the root elongation is more sensitive to Pb than is seed germination. The minimum concentrations of adverse effect of maize, wheat, cucumber, cabbage and lettuce are 2000, 3000, 1300, 800 and 300 mg Pb kg?1 soil, respectively. Moreover, dicotyledon species are more sensitive than monocotyledon species. In the genotoxicity study, the mitotic index (MI) fluctuates with an increasing Pb concentration. The micronuclei (MN) frequencies of cucumber, cabbage and lettuce exhibit a dose-dependent effect at concentrations ranging from 1300 to 4000 mg Pb kg?1 soil. It can be concluded that lettuce is a good candidate for indicating the toxicity of Pb in soil. Root elongation and the micronucleus frequency of dicotyledon are appropriate bioassays for potential use in phytotoxicity assessment of Pb-contaminated soil. 相似文献