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综合生理、转录组和代谢组分析揭示了碳和类黄酮生物合成在棉花耐低磷中的作用。

Integrative physiological, transcriptome and metabolome analysis reveals the involvement of carbon and flavonoid biosynthesis in low phosphorus tolerance in cotton.

作者信息

Iqbal Asif, Qiang Dong, Xiangru Wang, Huiping Gui, Hengheng Zhang, Xiling Zhang, Meizhen Song

机构信息

State Key Laboratory of Cotton Biology, Institute of Cotton Research of Chinese Academy of Agricultural Sciences, Zhengzhou Research Base, School of Agricultural Sciences, Zhengzhou University, Anyang, Henan, 455000, PR China.

State Key Laboratory of Cotton Biology, Institute of Cotton Research of Chinese Academy of Agricultural Sciences, Zhengzhou Research Base, School of Agricultural Sciences, Zhengzhou University, Anyang, Henan, 455000, PR China; Western Agricultural Research Center of Chinese Academy of Agricultural Sciences, Changji, 831100, Xinjiang, PR China.

出版信息

Plant Physiol Biochem. 2023 Mar;196:302-317. doi: 10.1016/j.plaphy.2023.01.042. Epub 2023 Jan 28.

Abstract

Phosphorus (P) is an essential nutrient controlling plant growth and development through the regulation of basic metabolic processes; however, the molecular details of these pathways remain largely unknown. In this study, physiological, transcriptome, and metabolome analysis were compared for two cotton genotypes with different low P tolerance under P starvation and resupply. The results showed that the glucose, fructose, sucrose, and starch contents increased by 18.2%, 20.4%, 20.2%, and 14.3% in the roots and 18.3%, 23.3%, 11.0%, and 13.6% in the shoot of Jimian169 than DES926, respectively. Moreover, the activities of enzymes related to carbon and phosphorus metabolism were higher in the roots and shoots of Jimian169 than DES926. In addition, transcriptome analysis revealed that the number of differentially expressed genes (DEGs) was higher in both roots (830) and shoots (730) under P starvation and the DEGs drastically reduced upon P resupply. The KEGG analysis indicated that DEGs were mainly enriched in phenylpropanoid biosynthesis, carbon metabolism, and photosynthesis. The metabolome analysis showed the enrichment of phenylpropanoid, organic acids and derivatives, and lipids in all the pairs at a given time point. The combined transcriptome and metabolome analysis revealed that carbon metabolism and flavonoid biosynthesis are involved in the P starvation response in cotton. Moreover, co-expression network analysis identified 3 hub genes in the roots and shoots that regulate the pathways involved in the P starvation response. This study provides the foundation for understanding the mechanisms of low P tolerance and the hub genes as a potential target for the development of low P tolerant genotypes.

摘要

磷(P)是一种必需营养素,通过调节基本代谢过程来控制植物的生长和发育;然而,这些途径的分子细节在很大程度上仍然未知。在本研究中,对两种在磷饥饿和再供应条件下具有不同低磷耐受性的棉花基因型进行了生理、转录组和代谢组分析。结果表明,与DES926相比,冀棉169根系中的葡萄糖、果糖、蔗糖和淀粉含量分别增加了18.2%、20.4%、20.2%和14.3%,地上部则分别增加了18.3%、23.3%、11.0%和13.6%。此外,冀棉169根系和地上部中与碳和磷代谢相关的酶活性均高于DES926。另外,转录组分析显示,在磷饥饿条件下,根系(830个)和地上部(730个)中差异表达基因(DEG)的数量较多,而在磷再供应后,差异表达基因急剧减少。KEGG分析表明,差异表达基因主要富集在苯丙烷生物合成、碳代谢和光合作用中。代谢组分析表明,在给定时间点的所有配对中,苯丙烷类、有机酸及其衍生物和脂质均有富集。转录组和代谢组的联合分析表明,碳代谢和类黄酮生物合成参与了棉花对磷饥饿的响应。此外,共表达网络分析在根系和地上部中鉴定出3个枢纽基因,它们调节参与磷饥饿响应的途径。本研究为理解棉花低磷耐受性机制以及将枢纽基因作为培育低磷耐受性基因型的潜在靶点奠定了基础。

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