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在共生和低磷胁迫下,对低磷水平敏感和耐受的玉米基因型表现出不同的转录组谱。

Maize Genotypes Sensitive and Tolerant to Low Phosphorus Levels Exhibit Different Transcriptome Profiles under Symbiosis and Low-Phosphorous Stress.

机构信息

Shandong Provincial Key Laboratory of Dryland Farming Technology, College of Agronomy, Qingdao Agricultural University, Qingdao 266109, China.

出版信息

Int J Mol Sci. 2023 Jul 26;24(15):11941. doi: 10.3390/ijms241511941.

Abstract

, an endophytic fungus, exhibits beneficial effects on plants during plant-fungus interactions. However, the molecular mechanisms underlying plants' responses to under low-phosphorous (P) stress are not fully understood. In this study, we investigated the transcriptomic changes in maize with low-P-sensitive (31778) and -tolerant (CCM454) genotypes under low-P stress and its symbiotic interaction with . Its colonization enhanced plant growth and facilitated P uptake, particularly in 31778. Transcriptome sequencing revealed that 135 DEGs from CCM454 and 389 from 31778 were identified, and that only 6 DEGs were common. This suggested that CCM454 and 31778 exhibited distinct molecular responses to inoculation. GO and KEGG analysis revealed that DEGs in 31778 were associated with nicotianamine biosynthesis, organic acid metabolic process, inorganic anion transport, biosynthesis of various secondary metabolites and nitrogen metabolism. In CCM454, DEGs were associated with anthocyanin biosynthesis, diterpenoid biosynthesis and metabolic process. After inoculation, the genes associated with phosphate transporter, phosphatase, peroxidase and high-affinity nitrate transporter were upregulated in 31778, whereas AP2-EREBP-transcription factors were detected at significantly higher levels in CCM454. This study provided insights on the molecular mechanisms underlying plant-endophytic fungus symbiosis and low-P stress in maize with low-P-sensitive and -tolerant genotypes.

摘要

内生真菌在植物-真菌相互作用过程中对植物表现出有益的影响。然而,在低磷(P)胁迫下,植物对 的响应的分子机制尚不完全清楚。在这项研究中,我们研究了低磷敏感(31778)和耐低磷(CCM454)基因型玉米在低磷胁迫及其与 共生互作下的转录组变化。其定殖增强了植物的生长并促进了 P 的吸收,特别是在 31778 中。转录组测序表明,CCM454 中有 135 个 DEGs,31778 中有 389 个 DEGs,只有 6 个 DEGs是共同的。这表明 CCM454 和 31778 对 接种表现出不同的分子响应。GO 和 KEGG 分析表明,31778 中的 DEGs 与尼克酰胺生物合成、有机酸代谢过程、无机阴离子运输、各种次生代谢物和氮代谢合成有关。在 CCM454 中,DEGs 与类黄酮生物合成、二萜类生物合成和代谢过程有关。接种后,与磷酸盐转运体、磷酸酶、过氧化物酶和高亲和力硝酸盐转运体相关的基因在 31778 中上调,而 CCM454 中检测到的 AP2-EREBP 转录因子水平明显更高。本研究为低磷敏感和耐低磷基因型玉米中植物-内生真菌共生和低磷胁迫的分子机制提供了新的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fbfa/10418897/91600972597e/ijms-24-11941-g001.jpg

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