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本文引用的文献

1
Calcium delivery and storage in plant leaves: exploring the link with water flow.植物叶片中的钙传递和储存:探究与水流的联系。
J Exp Bot. 2011 Apr;62(7):2233-50. doi: 10.1093/jxb/err111.
2
Moving magnesium in plant cells.植物细胞中的镁离子转运
New Phytol. 2011 May;190(3):510-3. doi: 10.1111/j.1469-8137.2011.03724.x.
3
TPC1-SV channels gain shape.TPC1-SV 通道获得形态。
Mol Plant. 2011 May;4(3):428-41. doi: 10.1093/mp/ssr017. Epub 2011 Mar 31.
4
Glutamate receptor-like genes form Ca2+ channels in pollen tubes and are regulated by pistil D-serine.谷氨酸受体样基因在花粉管中形成 Ca2+通道,并受雌蕊 D-丝氨酸调控。
Science. 2011 Apr 22;332(6028):434-7. doi: 10.1126/science.1201101. Epub 2011 Mar 17.
5
Magnesium transporters, MGT2/MRS2-1 and MGT3/MRS2-5, are important for magnesium partitioning within Arabidopsis thaliana mesophyll vacuoles.镁转运蛋白 MGT2/MRS2-1 和 MGT3/MRS2-5 对于拟南芥叶肉液泡内镁的分配很重要。
New Phytol. 2011 May;190(3):583-94. doi: 10.1111/j.1469-8137.2010.03619.x. Epub 2011 Jan 24.
6
Cell-specific vacuolar calcium storage mediated by CAX1 regulates apoplastic calcium concentration, gas exchange, and plant productivity in Arabidopsis.CAX1 介导的细胞特异性液泡钙储存调节拟南芥质外体钙浓度、气体交换和植物生产力。
Plant Cell. 2011 Jan;23(1):240-57. doi: 10.1105/tpc.109.072769. Epub 2011 Jan 21.
7
Disruption of the vacuolar calcium-ATPases in Arabidopsis results in the activation of a salicylic acid-dependent programmed cell death pathway.拟南芥液泡钙 ATP 酶的破坏导致依赖水杨酸的程序性细胞死亡途径的激活。
Plant Physiol. 2010 Nov;154(3):1158-71. doi: 10.1104/pp.110.159038. Epub 2010 Sep 13.
8
Leaf senescence signaling: the Ca2+-conducting Arabidopsis cyclic nucleotide gated channel2 acts through nitric oxide to repress senescence programming.叶片衰老信号转导:钙导拟南芥环核苷酸门控通道 2 通过一氧化氮发挥作用,抑制衰老程序。
Plant Physiol. 2010 Oct;154(2):733-43. doi: 10.1104/pp.110.161356. Epub 2010 Aug 10.
9
Calcium storage in plants and the implications for calcium biofortification.植物中的钙储存及其对钙生物强化的意义。
Protoplasma. 2010 Dec;247(3-4):215-31. doi: 10.1007/s00709-010-0182-0. Epub 2010 Jul 24.
10
Guard cell-specific calcium sensitivity of high density and activity SV/TPC1 channels.保卫细胞中高密度和高活性 SV/TPC1 通道的钙敏感性。
Plant Cell Physiol. 2010 Sep;51(9):1548-54. doi: 10.1093/pcp/pcq102. Epub 2010 Jul 14.

矿质养分的细胞特异性区室化是植物生产力最优化的一个必要机制——TPC1 的又一作用?

Cell-specific compartmentation of mineral nutrients is an essential mechanism for optimal plant productivity--another role for TPC1?

机构信息

School of Agriculture, Food, and Wine & Waite Research Institute, University of Adelaide, Glen Osmond, South Australia, Australia.

出版信息

Plant Signal Behav. 2011 Nov;6(11):1656-61. doi: 10.4161/psb.6.11.17797. Epub 2011 Nov 1.

DOI:10.4161/psb.6.11.17797
PMID:22067997
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3329329/
Abstract

Vacuoles of different leaf cell-types vary in their capacity to store specific mineral elements. In Arabidopsis thaliana potassium (K) accumulates preferentially in epidermal and bundle sheath cells whereas calcium (Ca) and magnesium (Mg) are stored at high concentrations only in mesophyll cells. Accumulation of these elements in a particular vacuole can be reciprocal, i.e. as [K]vac increases [Ca]vac decreases. Mesophyll-specific Ca-storage involves CAX1 (a Ca2+/H+ antiporter) and Mg-storage involves MRS2-1/MGT2 and MRS2-5/MGT3 (both Mg2+-transporters), all of which are preferentially expressed in the mesophyll and encode tonoplast-localised proteins. However, what controls leaf-cell [K]vac is less well understood. TPC1 encodes the two-pore Ca2+ channel protein responsible for the tonoplast-localised SV cation conductance, and is highly expressed in cell-types that not preferentially accumulate Ca. Here, we evaluate evidence that TPC1 has a role in maintaining differential K and Ca storage across the leaf, and propose a function for TPC1 in releasing Ca2+ from epidermal and bundle sheath cell vacuoles to maintain low [Ca]vac. Mesophyll-specific Ca storage is essential to maintain apoplastic free Ca concentration at a level that does not perturb a range of physiological parameters including leaf gas exchange, cell wall extensibility and growth. When plants are grown under serpentine conditions (high Mg/Ca ratio), MGT2/MRS2-1 and MGT3/MRS2-5 are required to sequester additional Mg2+ in vacuoles to replace Ca2+ as an osmoticum to maintain growth. An updated model of Ca2+ and Mg2+ transport in leaves is presented as a reference for future interrogation of nutritional flows and elemental storage in plant leaves.

摘要

不同叶细胞类型的液泡在储存特定矿物质元素的能力上有所不同。在拟南芥中,钾(K)优先积累在表皮细胞和束鞘细胞中,而钙(Ca)和镁(Mg)仅在叶肉细胞中以高浓度储存。这些元素在特定液泡中的积累可以是相互的,即随着[K]vac 的增加,[Ca]vac 减少。叶肉细胞特异性的 Ca 储存涉及 CAX1(一种 Ca2+/H+反向转运蛋白)和 Mg 储存涉及 MRS2-1/MGT2 和 MRS2-5/MGT3(两者都是 Mg2+转运蛋白),它们都优先在叶肉细胞中表达,并编码液泡膜定位蛋白。然而,控制叶细胞[K]vac 的机制还不太清楚。TPC1 编码负责液泡膜定位 SV 阳离子电导的双孔 Ca2+通道蛋白,在不优先积累 Ca 的细胞类型中高度表达。在这里,我们评估了 TPC1 在维持叶片中 K 和 Ca 差异储存中的作用的证据,并提出了 TPC1 在从表皮细胞和束鞘细胞液泡中释放 Ca2+以维持低[Ca]vac 的作用。叶肉细胞特异性的 Ca 储存对于维持细胞外自由 Ca2+浓度在不干扰一系列生理参数的水平是至关重要的,包括叶片气体交换、细胞壁伸展性和生长。当植物在蛇纹石条件下(高 Mg/Ca 比)生长时,需要 MGT2/MRS2-1 和 MGT3/MRS2-5 将额外的 Mg2+螯合到液泡中,以取代 Ca2+作为渗透压来维持生长。提出了一个更新的叶片 Ca2+和 Mg2+转运模型,作为未来对植物叶片营养流动和元素储存进行探究的参考。