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Serratia marcescens BM1 Enhances Cadmium Stress Tolerance and Phytoremediation Potential of Soybean Through Modulation of Osmolytes Leaf Gas Exchange Antioxidant Machinery and Stress-Responsive Genes Expression

机译:粘质沙雷氏菌BM1通过调节渗透压叶片气体交换抗氧化机制和胁迫响应基因的表达来增强大豆的镉胁迫耐受性和植物修复潜力。

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摘要

The heavy metal contamination in plant-soil environment has increased manifold recently. In order to reduce the harmful effects of metal stress in plants, the application of beneficial soil microbes is gaining much attention. In the present research, the role of BM1 in enhancing cadmium (Cd) stress tolerance and phytoremediation potential of soybean plants, was investigated. Exposure of soybean plants to two Cd doses (150 and 300 µM) significantly reduced plant growth, biomass, gas exchange attributes, nutrients uptake, antioxidant capacity, and the contents of chlorophyll, total phenolics, flavonoids, soluble sugars, and proteins. Additionally, Cd induced the stress levels of Cd, proline, glycine betaine, hydrogen peroxide, malondialdehyde, antioxidant enzymes (i.e., catalase, CAT; ascorbate peroxidase, APX; superoxide dismutase, SOD; peroxidise, POD), and the expression of stress-related genes (i.e., , - , and ) in soybean leaves. On the other hand, inoculation of Cd-stressed soybean plants with BM1 significantly enhanced the plant growth, biomass, gas exchange attributes, nutrients uptake, antioxidant capacity, and the contents of chlorophyll, total phenolics, flavonoids, soluble sugars, and proteins. Moreover, BM1 inoculation reduced the levels of cadmium and oxidative stress markers, but significantly induced the activities of antioxidant enzymes and the levels of osmolytes and stress-related genes expression in Cd-stressed plants. The application of 300 µM CdCl and triggered the highest expression levels of stress-related genes. Overall, this study suggests that inoculation of soybean plants with BM1 promotes phytoremediation potential and Cd stress tolerance by modulating the photosynthetic attributes, osmolytes biosynthesis, antioxidants machinery, and the expression of stress-related genes.
机译:最近,植物土壤环境中的重金属污染增加了。为了减少金属胁迫对植物的有害影响,有益土壤微生物的应用受到了广泛关注。在本研究中,研究了BM1在增强大豆植物对镉(Cd)的胁迫耐受性和植物修复潜力中的作用。大豆植物暴露于两种Cd剂量(150和300 µM)会显着降低植物的生长,生物量,气体交换属性,养分吸收,抗氧化能力以及叶绿素,总酚,类黄酮,可溶性糖和蛋白质的含量。此外,镉会诱导镉,脯氨酸,甘氨酸甜菜碱,过氧化氢,丙二醛,抗氧化酶(即过氧化氢酶,CAT;抗坏血酸过氧化物酶,APX;超氧化物歧化酶,SOD;过氧化物,POD)的应激水平以及应激的表达大豆叶片中的相关基因(即,-和)。另一方面,用BM1接种镉胁迫的大豆植株可显着提高植株的生长,生物量,气体交换特性,养分吸收,抗氧化能力以及叶绿素,总酚,类黄酮,可溶性糖和蛋白质的含量。此外,接种BM1可以降低镉和氧化胁迫标志物的含量,但可显着诱导镉胁迫植物中抗氧化酶的活性以及渗透压和胁迫相关基因的表达。 300 µM CdCl的应用引发了与应激相关基因的最高表达水平。总体而言,这项研究表明,通过调节光合特性,渗透压生物合成,抗氧化剂机制以及胁迫相关基因的表达,用BM1接种大豆植物可提高植物修复潜力和Cd胁迫耐受性。

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