Manganese toxicity elicits the degradation of auxin transport carriers to restrain arabidopsis root growth

IF 4.5 2区 生物学 Q2 ENVIRONMENTAL SCIENCES
Lin Tao , Hu Zhu , Xinyi Luo , Jing Li , Yanqi Ru , Junhuan Lv , Wenyi Pan , Yalin Li , Xuewen Li , Yinglong Chen , Jan Jasik , František Baluška , Sergey Shabala , Xin Huang , Lei Shi , Min Yu
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Abstract

Manganese (Mn) is an essential microelement for plant growth but can be toxic when in excessive. Mn toxicity-inhibited root growth possible involves in auxin biosynthesis and transport in plants, but the mechanism remains elusive. Our results have suggested that Mn-inhibited root growth was possible associated with a reduced auxin levels in roots, as shown in experiments with (1) transgenic DII-VENUS and DR5rev::GFP; (2) the application of L-kynurenine (an inhibitor of TAA1 activity), 1-naphthylacetic acid (NAA), 1-naphthylphthalamic acid (NPA) to manipulate auxin levels; (3) using taa1 (defection in auxin biosynthesis) mutants; and (4) determining IAA by enzyme-linked immunosorbent assay. Those results were explained via down-regulated transcriptional levels of auxin biosynthesis-related genes in plants, and reduced abundance of PM-localized auxin transport carriers in roots. Combination of auxin transport-related transgenic pPINs-GFP or pAUX1::AUX1-YFP lines and a real-time in vitro observation of PM-localized PIN2/3/4 carriers using transgenic Dendra2 lines have revealed that excessive Mn induced degradation of these proteins, which might involve in Mn toxicity-elicited up-regulation of partially ubiquitin-, clathrin-meidiated endocytosis (CME)-, and endosomal sorting complex required for transport (ESCRT)-related genes. Overall, our results suggest that Mn toxicity reduces auxin level in the root apex possible via down-regulation of auxin biosynthesis-related genes and post-translational stimulation of the degradation of auxin transport proteins, leading to root growth inhibition caused by Mn toxicity.

锰毒性会导致辅助素运输载体降解,从而抑制拟南芥根系的生长
锰(Mn)是植物生长所必需的微量元素,但过量时会产生毒性。锰毒性抑制根系生长可能与植物体内的辅助素生物合成和运输有关,但其机理仍不明确。我们的研究结果表明,锰抑制根系生长可能与根系中的辅素水平降低有关,如(1)转基因 DII-VENUS 和 DR5rev::GFP;(2) 应用 L-犬尿氨酸(TAA1 活性抑制剂)、1-萘乙酸(NAA)、1-萘酞胺酸(NPA)来调节辅酶水平;(3) 使用 taa1(辅酶生物合成缺陷)突变体;(4) 通过酶联免疫吸附试验测定 IAA。这些结果可通过植物中与辅素生物合成相关的基因转录水平下调以及根中PM定位的辅素运输载体丰度降低来解释。将辅助素转运相关的转基因 pPINs-GFP 或 pAUX1::AUX1-YFP株系,并利用转基因Dendra2株系对PM定位的PIN2/3/4载体进行实时体外观察,发现过量的锰诱导了这些蛋白的降解,这可能与锰毒引起的部分泛素、凝集素介导的内吞(CME)和运输所需的内体分选复合物(ESCRT)相关基因的上调有关。总之,我们的研究结果表明,锰毒性可能通过下调辅助素生物合成相关基因和翻译后刺激辅助素转运蛋白降解来降低根尖的辅助素水平,从而导致锰毒性引起的根系生长抑制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Environmental and Experimental Botany
Environmental and Experimental Botany 环境科学-环境科学
CiteScore
9.30
自引率
5.30%
发文量
342
审稿时长
26 days
期刊介绍: Environmental and Experimental Botany (EEB) publishes research papers on the physical, chemical, biological, molecular mechanisms and processes involved in the responses of plants to their environment. In addition to research papers, the journal includes review articles. Submission is in agreement with the Editors-in-Chief. The Journal also publishes special issues which are built by invited guest editors and are related to the main themes of EEB. The areas covered by the Journal include: (1) Responses of plants to heavy metals and pollutants (2) Plant/water interactions (salinity, drought, flooding) (3) Responses of plants to radiations ranging from UV-B to infrared (4) Plant/atmosphere relations (ozone, CO2 , temperature) (5) Global change impacts on plant ecophysiology (6) Biotic interactions involving environmental factors.
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