镉胁迫对水稻生长、生理特性和代谢特性的影响使用HPLC-QTOF /女士

IF 3.7 3区 工程技术 Q2 CHEMISTRY, ANALYTICAL Chemosensors Pub Date : 2023-11-07 DOI:10.3390/chemosensors11110558
Zhenni Lan, Qing He, Mingxia Zhang, Huahong Liu, Liusen Fang, Jinfang Nie
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引用次数: 0

摘要

镉污染是一个重要的环境问题,因为它很容易被植物吸收,并通过食物链逐渐积累在人体内。本研究旨在阐明水稻品种“潭两优215”在Cd胁迫下代谢响应的变化。水稻在0(对照)、2(低组)和10(高组)mg/kg CdCl2的土壤栽培中生长90 d。分析了水稻不同组织的超微结构、Cd含量、抗氧化活性和代谢变化。表型表征和超微结构显示,高剂量组对水稻根系和叶片造成明显损伤,抑制植株生长,低剂量组促进植株生长。总体而言,Cd表现出“低促高抑”的规律。生理指标表明,镉胁迫对水稻有显著影响。与对照相比,Cd胁迫导致抗氧化酶活性升高,且低镉处理组的氧化损伤小于高镉处理组。代谢组学研究表明,镉胁迫显著改变了水稻植株的代谢谱。水稻对镉胁迫的响应是通过上调氨基酸和调节相关途径,包括丙氨酸、天冬氨酸和谷氨酸代谢,以及精氨酸和脯氨酸代谢。具有抗氧化特性的黄酮类化合物的显著表达有助于水稻抵抗Cd在根组织积累引起的氧化损伤;Cd胁迫显著下调茎叶组织甘油磷脂代谢,影响水稻茎叶组织细胞活性。研究了Cd胁迫对水稻品种TLY215超微结构、抗氧化活性和不同组织代谢变化的影响。此外,TLY215的不同组织可以调节这些代谢途径来抵抗Cd胁迫,这为TLY215对不同浓度Cd的响应提供了有价值的见解。
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Assessing the Effects of Cadmium Stress on the Growth, Physiological Characteristics, and Metabolic Profiling of Rice (Oryza sativa L.) Using HPLC-QTOF/MS
Cadmium (Cd) pollution is an important environmental problem, as it is easily absorbed by plants and gradually accumulates in the human body through the food chain. This study aimed to elucidate the changes in the metabolic response of the rice cultivar “TanLiangYou215” under Cd stress. Rice was grown in soil culture at 0 (Control), 2 (Low group), and 10 (High group) mg/kg CdCl2 for 90 days. The ultrastructural, Cd content, antioxidant activity, and metabolic changes to the rice in different tissues were analyzed. Phenotypic characterization and ultrastructure showed that the rice roots and leaves were significantly damaged and plant growth was inhibited in the High group, while plant growth was promoted in the Low group. Overall, Cd showed a regularity of “low promotion and high inhibition”. Physiological indices revealed that rice was significantly affected by Cd stress. Compared to the Control, Cd stress resulted in higher antioxidant enzyme activities, and the Low group suffered less oxidative damage than the High group. Metabolomic studies revealed that Cd stress significantly altered the metabolic profiles of rice plants. Rice responded to Cd stress by upregulating amino acids and regulating related pathways, including alanine, aspartate and glutamate metabolism, and arginine and proline metabolism. The significant expression of flavonoids with antioxidant properties helped rice resist the oxidative damage caused by Cd accumulation in the root tissue; Cd stress significantly downregulated glycerophospholipid metabolism in the stem and leaf tissues, which affected the cellular activities in rice stem and leaf tissues. We investigated the effects of Cd stress on ultrastructure, antioxidant activity, and metabolic changes in different tissues of the rice variety TLY215. Moreover, the different tissues of TLY215 can regulate these metabolic pathways to resist Cd stress, which provides valuable insights into the response of TLY215 to different concentrations of Cd.
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来源期刊
Chemosensors
Chemosensors Chemistry-Analytical Chemistry
CiteScore
5.00
自引率
9.50%
发文量
450
审稿时长
11 weeks
期刊介绍: Chemosensors (ISSN 2227-9040; CODEN: CHEMO9) is an international, scientific, open access journal on the science and technology of chemical sensors published quarterly online by MDPI.
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