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External application of nitrogen alleviates toxicity of cadmium on poplars via starch and sucrose metabolism

蔗糖磷酸合酶 蔗糖合成酶 蔗糖 转录组 磷酸蛋白质组学 生物化学 化学 磷酸化 蛋白质磷酸化 生物 蛋白激酶A 基因表达 基因 转化酶
作者
Fang He,Qian Zhao,Jin‐Liang Huang,Meng‐Xue Niu,Hua-Cong Feng,Yujie Shi,Kuangji Zhao,Xinglei Cui,Xiaolu Wu,Jia‐Xuan Mi,Yu Zhong,Qinglin Liu,Lianghua Chen,Xueqin Wan,Fan Zhang
出处
期刊:Tree Physiology [Oxford University Press]
卷期号:41 (11): 2126-2141 被引量:35
标识
DOI:10.1093/treephys/tpab065
摘要

Abstract Phytoremediation technology can help achieve moderate cost and considerable effect with respect to the remediation of heavy metal (HM) pollution in soil and water. Many previous studies have suggested the role of nitrogen (N) in the alleviation of effects of HM on plants. Herein, we sought to determine the molecular mechanisms by which additional N supplementation mitigates cadmium (Cd) toxicity in poplars using a combination of physiological, transcriptomic and phosphoproteomic analyses. The application of N can alleviate the toxicity of Cd to Populus by reducing chlorophyll degradation, maintaining the stability of ions inside and outside the cell membrane and increasing the soluble sugar content. Plant samples from the control, Cd stress and Cd_N treatments were used for an integrated analysis of the transcriptome, as well as for phosphoproteomics analysis. Moreover, 1314 differentially expressed genes and 119 differentially expressed kinase genes were discovered. Application of additional N under Cd stress promoted the phosphorylation process. Furthermore, 51 significantly enriched phosphorylated protein sites and 23 differentially expressed kinases were identified using phosphoproteomic and proteomic analyses. Importantly, transcriptomic and phosphoproteomic analyses jointly determined that the application of N could activate corresponding gene expression [UDP-glucose-dehydrogenase (UGD), GAUT, PME, pectin lyase, UDP-glucose-pyrophosphorylase 2 (UGP2), sucrose phosphate synthase (SPS), SUS and SPP2] and protein phosphorylation (UGP2 and SPS) in the sugar and starch synthesis pathways, which promoted the synthesis of sucrose and soluble sugar and subsequently alleviated the damage caused by Cd.
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