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中央生物钟调节器 CCA1 在大豆防御根病原体过程中发挥作用,调节效应触发免疫(ETI)和细胞壁代谢中作用的基因的表达。

The central circadian regulator CCA1 functions in Glycine max during defense to a root pathogen, regulating the expression of genes acting in effector triggered immunity (ETI) and cell wall metabolism.

机构信息

Department of Biological Sciences, Mississippi State University, Mississippi State, MS, 39762, USA.

Department of Computer and Information Sciences, Towson University, Towson, MD, 21252, USA.

出版信息

Plant Physiol Biochem. 2022 Aug 15;185:198-220. doi: 10.1016/j.plaphy.2022.05.028. Epub 2022 May 30.

DOI:10.1016/j.plaphy.2022.05.028
PMID:35704989
Abstract

Expression of the central circadian oscillator components CIRCADIAN CLOCK ASSOCIATED 1 (CCA1), TIMING OF CAB1 (TOC1), GIGANTEA (GI), and CONSTANS (CO) occurs in Glycine max root cells (syncytia) parasitized by the nematode Heterodera glycines while undergoing resistance, indicating a defense role. GmCCA1-1 relative transcript abundance (RTA) in roots experiencing overexpression (OE) or RNA interference (RNAi) is characterized by rhythmic oscillations, compared to a ribosomal protein gene (GmRPS21) control. A GmCCA1-1 RTA change, advancing by 12 h, exists in H. glycines-infected as compared to uninfected controls in wild-type, H. glycines-resistant, G. max. The G. max transgenic controls exhibit the RTA change by 4 h post infection (hpi), not consistently occurring in the H. glycines-susceptible G. max until 56 hpi. GmCCA1-1 expression is observed to be reduced in H. glycines-infected GmCCA1-1-OE roots as compared to non-infected transgenic roots with no significant change observed among RNAi roots. The GmCCA1-1 expression in transgenic GmCCA1-1-OE roots remains higher than control and RNAi roots. Decreased GmCCA1-1 mRNA among infected roots shows the altered expression is targeted by H. glycines. Gene expression of proven defense genes including 9 different mitogen activated protein kinases (GmMAPKs), NON-RACE SPECIFIC DISEASE RESISTANCE 1 (GmNDR1-1), RPM1-INTERACTING PROTEIN 4 (GmRIN4-4), and the secreted xyloglucan endotransglycosylase/hydrolase 43 (GmXTH43) in GmCCA1-1-OE and GmCCA1-1-RNAi roots, compared to controls, reveal a significant role of GmCCA1-1 expression in roots undergoing defense to H. glycines parasitism. The observation that GmCCA1-1 regulates GmXTH43 expression links the central circadian oscillator to the functionality of the secretion system.

摘要

中央生物钟振荡器组件 CIRCADIAN CLOCK ASSOCIATED 1 (CCA1)、TIMING OF CAB1 (TOC1)、GIGANTEA (GI) 和 CONSTANS (CO) 的表达发生在被线虫大豆胞囊线虫寄生的大豆根细胞(合胞体)中,同时表现出抗性,表明其具有防御作用。与核糖体蛋白基因 (GmRPS21) 对照相比,经历过表达 (OE) 或 RNA 干扰 (RNAi) 的大豆根中的 GmCCA1-1 相对转录丰度 (RTA) 表现出节律性波动。与未感染对照相比,在野生型、大豆胞囊线虫抗性大豆中,感染大豆胞囊线虫的大豆中存在 GmCCA1-1 RTA 变化,提前 12 小时。大豆转基因对照在感染后 4 小时 (hpi) 表现出 RTA 变化,而在感染的大豆中并不一致,直到 56 hpi 才会发生。与未感染的转基因根相比,感染大豆胞囊线虫的 GmCCA1-1-OE 根中的 GmCCA1-1 表达减少,而在 RNAi 根中没有观察到显著变化。在转基因 GmCCA1-1-OE 根中的 GmCCA1-1 表达仍然高于对照和 RNAi 根。感染根中的 GmCCA1-1 mRNA 减少表明该表达受到大豆胞囊线虫的靶向改变。包括 9 种不同的丝裂原激活蛋白激酶 (GmMAPKs)、非种族特异性疾病抗性 1 (GmNDR1-1)、RPM1 相互作用蛋白 4 (GmRIN4-4) 和分泌木葡聚糖内切糖基转移酶/水解酶 43 (GmXTH43) 在内的已证明的防御基因的基因表达在 GmCCA1-1-OE 和 GmCCA1-1-RNAi 根中与对照相比,揭示了 GmCCA1-1 表达在根中对大豆胞囊线虫寄生防御的重要作用。观察到 GmCCA1-1 调节 GmXTH43 表达将中央生物钟振荡器与分泌系统的功能联系起来。

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