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J Biol Chem. 2013 Mar 8;288(10):7351-62. doi: 10.1074/jbc.M112.406645. Epub 2013 Jan 15.
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本文引用的文献

1
Studies on spatial distribution of nickel in leaves and stems of the metal hyperaccumulator Stackhousia tryonii Bailey using nuclear microprobe (micro-PIXE) and EDXS techniques.运用核微探针(微束质子激发X射线发射分析技术)和能谱仪技术对金属超积累植物贝利氏澳石竹叶片和茎中镍的空间分布进行研究。
Funct Plant Biol. 2004 Dec;31(11):1061-1074. doi: 10.1071/FP03192.
2
Nickel hyperaccumulation by Thlaspi montanum var. montanum (Brassicaceae): a constitutive trait.贯叶连翘(苦苣苔科)对镍的超积累:一种组成型特性。
Am J Bot. 1998 Feb;85(2):259.
3
The hyperaccumulator Alyssum murale uses complexation with nitrogen and oxygen donor ligands for Ni transport and storage.超积累植物 Alyssum murale 通过与氮和氧供体配体的络合作用来运输和储存镍。
Phytochemistry. 2010 Feb;71(2-3):188-200. doi: 10.1016/j.phytochem.2009.10.023. Epub 2009 Dec 1.
4
Difference in the distribution and speciation of cellular nickel between nickel-tolerant and non-tolerant Nicotiana tabacum L. cv. BY-2 cells.镍耐受和非耐受烟草 BY-2 细胞中细胞镍的分布和形态差异。
Plant Cell Environ. 2010 Feb;33(2):174-87. doi: 10.1111/j.1365-3040.2009.02068.x. Epub 2009 Nov 11.
5
The interaction of biological and noxious transition metals with the zinc probes FluoZin-3 and Newport Green.生物及有害过渡金属与锌探针FluoZin-3和纽波特绿的相互作用。
Anal Biochem. 2009 Jan 1;384(1):34-41. doi: 10.1016/j.ab.2008.09.019. Epub 2008 Sep 18.
6
Building the cell: design principles of cellular architecture.构建细胞:细胞结构的设计原理
Nat Rev Mol Cell Biol. 2008 Aug;9(8):593-602. doi: 10.1038/nrm2460.
7
Identification of nickel chelators in three hyperaccumulating plants: an X-ray spectroscopic study.三种超积累植物中镍螯合剂的鉴定:一项X射线光谱学研究。
Phytochemistry. 2008 May;69(8):1695-709. doi: 10.1016/j.phytochem.2008.02.009. Epub 2008 Mar 26.
8
Characterization of AtALMT1 expression in aluminum-inducible malate release and its role for rhizotoxic stress tolerance in Arabidopsis.拟南芥中AtALMT1在铝诱导苹果酸释放中的特性及其对根际毒性胁迫耐受性的作用
Plant Physiol. 2007 Nov;145(3):843-52. doi: 10.1104/pp.107.102335. Epub 2007 Sep 20.
9
Improved understanding of hyperaccumulation yields commercial phytoextraction and phytomining technologies.对超积累的深入了解催生了商业性植物提取和植物采矿技术。
J Environ Qual. 2007 Aug 31;36(5):1429-43. doi: 10.2134/jeq2006.0514. Print 2007 Sep-Oct.
10
LC-MS and GC-MS metabolite profiling of nickel(II) complexes in the latex of the nickel-hyperaccumulating tree Sebertia acuminata and identification of methylated aldaric acid as a new nickel(II) ligand.镍超积累树种尖叶塞贝榈(Sebertia acuminata)乳胶中镍(II)配合物的液相色谱-质谱联用(LC-MS)和气相色谱-质谱联用(GC-MS)代谢物谱分析以及甲基化醛糖二酸作为一种新的镍(II)配体的鉴定。
Phytochemistry. 2008 Jan;69(1):240-51. doi: 10.1016/j.phytochem.2007.07.001. Epub 2007 Sep 4.

镍在 Alyssum murale 根线粒体中的瞬时涌入调节有机酸和活性氧物质的产生。

Transient Influx of nickel in root mitochondria modulates organic acid and reactive oxygen species production in nickel hyperaccumulator Alyssum murale.

机构信息

Department of Plant and Soil Sciences, University of Delaware, Newark, Delaware 19716, USA.

出版信息

J Biol Chem. 2013 Mar 8;288(10):7351-62. doi: 10.1074/jbc.M112.406645. Epub 2013 Jan 15.

DOI:10.1074/jbc.M112.406645
PMID:23322782
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3591643/
Abstract

Mitochondria are important targets of metal toxicity and are also vital for maintaining metal homeostasis. Here, we examined the potential role of mitochondria in homeostasis of nickel in the roots of nickel hyperaccumulator plant Alyssum murale. We evaluated the biochemical basis of nickel tolerance by comparing the role of mitochondria in closely related nickel hyperaccumulator A. murale and non-accumulator Alyssum montanum. Evidence is presented for the rapid and transient influx of nickel in root mitochondria of nickel hyperaccumulator A. murale. In an early response to nickel treatment, substantial nickel influx was observed in mitochondria prior to sequestration in vacuoles in the roots of hyperaccumulator A. murale compared with non-accumulator A. montanum. In addition, the mitochondrial Krebs cycle was modulated to increase synthesis of malic acid and citric acid involvement in nickel hyperaccumulation. Furthermore, malic acid, which is reported to form a complex with nickel in hyperaccumulators, was also found to reduce the reactive oxygen species generation induced by nickel. We propose that the interaction of nickel with mitochondria is imperative in the early steps of nickel uptake in nickel hyperaccumulator plants. Initial uptake of nickel in roots results in biochemical responses in the root mitochondria indicating its vital role in homeostasis of nickel ions in hyperaccumulation.

摘要

线粒体是金属毒性的重要靶点,对于维持金属内稳态也至关重要。在这里,我们研究了线粒体在镍超积累植物 Alyssum murale 根中维持镍内稳态中的潜在作用。我们通过比较密切相关的镍超积累植物 Alyssum murale 和非积累植物 Alyssum montanum 中线粒体在镍耐受性中的作用,评估了镍耐受性的生化基础。有证据表明镍超积累植物 Alyssum murale 的根线粒体中镍的快速和短暂内流。在对镍处理的早期反应中,与非积累植物 Alyssum montanum 相比,镍超积累植物 Alyssum murale 的根线粒体中观察到大量镍在液泡中螯合之前就大量流入。此外,线粒体三羧酸循环被调节以增加参与镍超积累的苹果酸和柠檬酸的合成。此外,据报道,在超积累植物中与镍形成复合物的苹果酸也被发现可以减少镍诱导的活性氧的产生。我们提出,镍与线粒体的相互作用对于镍超积累植物中镍吸收的早期步骤是必要的。镍在根部的初始吸收导致根线粒体中的生化反应,表明其在镍离子内稳态中的重要作用。