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接种根瘤菌通过影响铜的摄取和调节抗坏血酸-谷胱甘肽循环以及植物螯合肽生物合成相关基因的表达来增强紫花苜蓿幼苗的铜耐受性。

Rhizobium inoculation enhances copper tolerance by affecting copper uptake and regulating the ascorbate-glutathione cycle and phytochelatin biosynthesis-related gene expression in Medicago sativa seedlings.

机构信息

State Key Laboratory of Soil Erosion and Dryland Farming on the Loess Plateau, Northwest A&F University, Yangling, Shaanxi 712100, PR China; School of Life Sciences and State Key Laboratory of Agrobiotechnology, The Chinese University of Hong Kong, Hong Kong.

State Key Laboratory of Soil Erosion and Dryland Farming on the Loess Plateau, Northwest A&F University, Yangling, Shaanxi 712100, PR China.

出版信息

Ecotoxicol Environ Saf. 2018 Oct 30;162:312-323. doi: 10.1016/j.ecoenv.2018.07.001. Epub 2018 Jul 11.

Abstract

Despite numerous reports that legume-rhizobium symbiosis alleviates Cu stress in plants, the possible roles of legume-rhizobium symbiosis and the regulatory mechanisms in counteracting Cu toxicity remain unclear. Here, Sinorhizobium meliloti CCNWSX0020 was used for analyzing the effects of rhizobium inoculation on plant growth in Medicago sativa seedlings under Cu stress. Our results showed that rhizobium inoculation alleviated Cu-induced growth inhibition, and increased nitrogen concentration in M. sativa seedlings. Moreover, the total amount of Cu uptake in inoculated plants was significantly increased compared with non-inoculated plants, and the increase in the roots was much higher than that in the shoots, thus decreasing the transfer coefficient and promoting Cu phytostabilization. Cu stress induced lipid peroxidation and reactive oxygen species production, but rhizobium inoculation reduced these components' accumulation through altering antioxidant enzyme activities and regulating ascorbate-glutathione cycles. Furthermore, legume-rhizobium symbiosis regulated the gene expression involved in antioxidant responses, phytochelatin (PC) biosynthesis, and metallothionein biosynthesis in M. sativa seedlings under Cu stress. Our results demonstrate that rhizobium inoculation enhanced Cu tolerance by affecting Cu uptake, regulating antioxidant enzyme activities and the ascorbate-glutathione cycle, and influencing PC biosynthesis-related gene expression in M. sativa. The results provide an efficient strategy for phytoremediation of Cu-contaminated soils.

摘要

尽管有大量报道表明豆科植物-根瘤菌共生缓解了植物中的铜胁迫,但豆科植物-根瘤菌共生的可能作用及其对抗铜毒性的调节机制仍不清楚。在这里,使用中华根瘤菌 CCNWSX0020 分析了根瘤菌接种对铜胁迫下紫花苜蓿幼苗生长的影响。我们的结果表明,根瘤菌接种缓解了铜诱导的生长抑制,并增加了紫花苜蓿幼苗中的氮浓度。此外,接种植物的总铜吸收量与未接种植物相比显著增加,且根中的增加量明显高于地上部分,从而降低了转移系数,促进了铜的植物稳定化。铜胁迫诱导脂质过氧化和活性氧的产生,但根瘤菌接种通过改变抗氧化酶活性和调节抗坏血酸-谷胱甘肽循环来减少这些成分的积累。此外,豆科植物-根瘤菌共生在铜胁迫下调节与抗氧化反应、植物螯合肽 (PC) 生物合成和金属硫蛋白生物合成相关的基因表达。我们的结果表明,根瘤菌接种通过影响铜吸收、调节抗氧化酶活性和抗坏血酸-谷胱甘肽循环以及影响 PC 生物合成相关基因的表达来增强紫花苜蓿对铜的耐受性。该结果为铜污染土壤的植物修复提供了一种有效的策略。

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