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拟南芥中铜转运的调控:生化振荡器?

Regulation of copper transport in Arabidopsis thaliana: a biochemical oscillator?

机构信息

Departament de Bioquímica i Biologia Molecular, Universitat de València, Spain.

出版信息

J Biol Inorg Chem. 2010 Jan;15(1):29-36. doi: 10.1007/s00775-009-0591-8. Epub 2009 Oct 2.

Abstract

Plants are among the most versatile higher eukaryotes in accommodating environmental copper availability to largely variable demands. In particular, copper deficiency in soils is a threat for plant survival since it mostly affects reproductive structures. One of the strategies that plant cells use to overcome this situation is to increase copper levels by expressing high-affinity copper transporters delivering the metal to the cytosol. In this minireview, we discuss recent advances in the structure, function, and regulation of the CTR/COPT family of copper transporters, and pay special attention to the Arabidopsis thaliana counterparts. These are constituted by transmembrane polypeptides, containing several copper-binding sequences of functional and/or regulatory value, and assembling as trimers. Copper deficiency activates the expression of some members of the COPT family via the interaction of the SPL7 transcription factor with reiterative GTAC motifs present in their promoters. Interestingly, the regulation of the synthesis of these transporters by copper itself constitutes a negative-feedback loop that could cause a sustained oscillation in the cytosolic copper levels. We analyze the theoretical conditions required for this hypothetical copper oscillation and the potential advantages of synchronization with other cycles. Diverse data in other organisms point to the relationship between copper homeostasis and circadian cycles.

摘要

植物是适应环境中铜可用性的最高等真核生物之一,以满足广泛变化的需求。特别是,土壤中的铜缺乏对植物的生存是一种威胁,因为它主要影响生殖结构。植物细胞用来克服这种情况的策略之一是通过表达高亲和力的铜转运蛋白将金属输送到细胞质中来增加铜水平。在这篇综述中,我们讨论了铜转运蛋白 CTR/COPT 家族的结构、功能和调节的最新进展,并特别关注拟南芥的对应物。这些由跨膜多肽组成,包含几个具有功能和/或调节价值的铜结合序列,并组装成三聚体。铜缺乏通过 SPL7 转录因子与它们启动子中存在的重复 GTAC 基序的相互作用,激活 COPT 家族的一些成员的表达。有趣的是,铜本身对这些转运蛋白合成的调节构成了负反馈循环,这可能导致细胞质铜水平的持续振荡。我们分析了这种假设的铜振荡所需的理论条件,以及与其他周期同步的潜在优势。其他生物体的大量数据表明铜动态平衡与昼夜节律周期之间存在关系。

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