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根系异戊二烯的形成改变了侧根的发育。

Root isoprene formation alters lateral root development.

机构信息

Research Unit Environmental Simulation, Institute of Biochemical Plant Pathology, Helmholtz Zentrum München, Neuherberg, Germany.

Research Unit Protein Science, Helmholtz Zentrum München, Neuherberg, Germany.

出版信息

Plant Cell Environ. 2020 Sep;43(9):2207-2223. doi: 10.1111/pce.13814. Epub 2020 Jun 27.

Abstract

Isoprene is a C5 volatile organic compound, which can protect aboveground plant tissue from abiotic stress such as short-term high temperatures and accumulation of reactive oxygen species (ROS). Here, we uncover new roles for isoprene in the plant belowground tissues. By analysing Populus x canescens isoprene synthase (PcISPS) promoter reporter plants, we discovered PcISPS promoter activity in certain regions of the roots including the vascular tissue, the differentiation zone and the root cap. Treatment of roots with auxin or salt increased PcISPS promoter activity at these sites, especially in the developing lateral roots (LR). Transgenic, isoprene non-emitting poplar roots revealed an accumulation of O in the same root regions where PcISPS promoter activity was localized. Absence of isoprene emission, moreover, increased the formation of LRs. Inhibition of NAD(P)H oxidase activity suppressed LR development, suggesting the involvement of ROS in this process. The analysis of the fine root proteome revealed a constitutive shift in the amount of several redox balance, signalling and development related proteins, such as superoxide dismutase, various peroxidases and linoleate 9S-lipoxygenase, in isoprene non-emitting poplar roots. Together our results indicate for isoprene a ROS-related function, eventually co-regulating the plant-internal signalling network and development processes in root tissue.

摘要

异戊二烯是一种 C5 挥发性有机化合物,可保护地上植物组织免受非生物胁迫,如短期高温和活性氧物质(ROS)的积累。在这里,我们揭示了异戊二烯在植物地下组织中的新作用。通过分析杨属异戊二烯合酶(PcISPS)启动子报告植物,我们发现 PcISPS 启动子在根的某些区域具有活性,包括维管束组织、分化区和根冠。用生长素或盐处理根会增加这些部位 PcISPS 启动子的活性,尤其是在发育中的侧根(LR)中。非异戊二烯排放的转基因杨树根在 PcISPS 启动子活性定位的相同根区积累了 O。此外,异戊二烯的缺乏会增加 LR 的形成。NAD(P)H 氧化酶活性的抑制抑制了 LR 的发育,表明 ROS 在此过程中起作用。对细根蛋白质组的分析表明,在不排放异戊二烯的杨树根中,几种与氧化还原平衡、信号转导和发育相关的蛋白质,如超氧化物歧化酶、各种过氧化物酶和亚油酸 9S-脂氧合酶,其数量发生了组成性变化。我们的研究结果表明,异戊二烯具有与 ROS 相关的功能,最终共同调节植物内部信号网络和根组织的发育过程。

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