Rhizophagus Irregularis regulates flavonoids metabolism in paper mulberry roots under cadmium stress.

IF 3.3 2区 生物学 Q2 MYCOLOGY
Mycorrhiza Pub Date : 2024-07-01 Epub Date: 2024-06-05 DOI:10.1007/s00572-024-01155-7
Shuiqing Deng, Lan Pan, Tong Ke, Jingwei Liang, Rongjing Zhang, Hui Chen, Ming Tang, Wentao Hu
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引用次数: 0

Abstract

Broussonetia papyrifera is widely found in cadmium (Cd) contaminated areas, with an inherent enhanced flavonoids metabolism and inhibited lignin biosynthesis, colonized by lots of symbiotic fungi, such as arbuscular mycorrhizal fungi (AMF). However, the physiological and molecular mechanisms by which Rhizophagus irregularis, an AM fungus, regulates flavonoids and lignin in B. papyrifera under Cd stress remain unclear. Here, a pot experiment of B. papyrifera inoculated and non-inoculated with R. irregularis under Cd stress was carried out. We determined flavonoids and lignin concentrations in B. papyrifera roots by LC-MS and GC-MS, respectively, and measured the transcriptional levels of flavonoids- or lignin-related genes in B. papyrifera roots, aiming to ascertain the key components of flavonoids or lignin, and key genes regulated by R. irregularis in response to Cd stress. Without R. irregularis, the concentrations of eriodictyol, quercetin and myricetin were significantly increased under Cd stress. The concentrations of eriodictyol and genistein were significantly increased by R. irregularis, while the concentration of rutin was significantly decreased. Total lignin and lignin monomer had no alteration under Cd stress or with R. irregularis inoculation. As for flavonoids- or lignin-related genes, 26 genes were co-regulated by Cd stress and R. irregularis. Among these genes, BpC4H2, BpCHS8 and BpCHI5 were strongly positively associated with eriodictyol, indicating that these three genes participate in eriodictyol biosynthesis and were involved in R. irregularis assisting B. papyrifera to cope with Cd stress. This lays a foundation for further research revealing molecular mechanisms by which R. irregularis regulates flavonoids synthesis to enhance tolerance of B. papyrifera to Cd stress.

Abstract Image

无规根虫调节镉胁迫下纸桑根的类黄酮代谢
纸莎草(Broussonetia papyrifera)广泛分布于镉(Cd)污染地区,其黄酮类物质代谢增强,木质素生物合成受到抑制,并有大量共生真菌(如丛枝菌根真菌(AMF))定植。然而,AM真菌Rhizophagus irregularis在镉胁迫下调节纸莎草黄酮类化合物和木质素的生理和分子机制仍不清楚。在此,我们对镉胁迫下接种和未接种不规则根瘤菌的纸莎草进行了盆栽实验。我们分别用LC-MS和GC-MS测定了纸莎草根中黄酮类化合物和木质素的浓度,并测定了纸莎草根中黄酮类化合物或木质素相关基因的转录水平,旨在确定黄酮类化合物或木质素的关键成分,以及R. irregularis在镉胁迫下调控的关键基因。在没有 R. irregularis 的情况下,镉胁迫下麦饭石酚、槲皮素和杨梅素的浓度显著增加。不规则酵母菌能显著提高玉米赤霉醇和染料木素的浓度,而降低芦丁的浓度。总木质素和木质素单体在镉胁迫下和接种不规则酵母菌后都没有变化。在类黄酮或木质素相关基因方面,有 26 个基因受镉胁迫和不规则褐斑病菌共同调控。在这些基因中,BpC4H2、BpCHS8和BpCHI5与eriodictyol呈强正相关,表明这三个基因参与了eriodictyol的生物合成,并参与了R. irregularis协助纸莎草应对镉胁迫的过程。这为进一步研究 R. irregularis 调节黄酮类化合物合成以提高纸莎草对镉胁迫的耐受性的分子机制奠定了基础。
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来源期刊
Mycorrhiza
Mycorrhiza 生物-真菌学
CiteScore
8.20
自引率
2.60%
发文量
40
审稿时长
6-12 weeks
期刊介绍: Mycorrhiza is an international journal devoted to research into mycorrhizas - the widest symbioses in nature, involving plants and a range of soil fungi world-wide. The scope of Mycorrhiza covers all aspects of research into mycorrhizas, including molecular biology of the plants and fungi, fungal systematics, development and structure of mycorrhizas, and effects on plant physiology, productivity, reproduction and disease resistance. The scope also includes interactions between mycorrhizal fungi and other soil organisms and effects of mycorrhizas on plant biodiversity and ecosystem structure. Mycorrhiza contains original papers, short notes and review articles, along with commentaries and news items. It forms a platform for new concepts and discussions, and is a basis for a truly international forum of mycorrhizologists from all over the world.
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