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在盐胁迫和渗透胁迫下,欧洲油橄榄中海藻糖运输和甘露醇脱氢酶活性相协调。

Mannitol transport and mannitol dehydrogenase activities are coordinated in Olea europaea under salt and osmotic stresses.

机构信息

Centro de Investigação e de Tecnologias Agro-Ambientais e Biológicas (CITAB), Portugal.

出版信息

Plant Cell Physiol. 2011 Oct;52(10):1766-75. doi: 10.1093/pcp/pcr121. Epub 2011 Sep 4.

Abstract

The intracellular accumulation of organic compatible solutes functioning as osmoprotectants, such as polyols, is an important response mechanism of several plants to drought and salinity. In Olea europaea a mannitol transport system (OeMaT1) was previously characterized as a key player in plant response to salinity. In the present study, heterotrophic sink models, such as olive cell suspensions and fruit tissues, and source leaves were used for analytical, biochemical and molecular studies. The kinetic parameters of mannitol dehydrogenase (MTD) determined in cells growing in mannitol, at 25°C and pH 9.0, were as follows: K(m), 54.5 mM mannitol; and V(max), 0.47 μmol h⁻¹ mg⁻¹ protein. The corresponding cDNA was cloned and named OeMTD1. OeMTD1 expression was correlated with MTD activity, OeMaT1 expression and carrier-mediated mannitol transport in mannitol- and sucrose-grown cells. Furthermore, sucrose-grown cells displayed only residual OeMTD activity, even though high levels of OeMTD1 transcription were observed. There is evidence that OeMTD is regulated at both transcriptional and post-transcriptional levels. MTD activity and OeMTD1 expression were repressed after Na+, K+ and polyethylene glycol (PEG) treatments, in both mannitol- and sucrose-grown cells. In contrast, salt and drought significantly increased mannitol transport activity and OeMaT1 expression. Taken together, these studies support that olive trees cope with salinity and drought by coordinating mannitol transport with intracellular metabolism.

摘要

有机相容性溶质(如多元醇)在细胞内的积累是几种植物对干旱和盐度的重要响应机制之一。在油橄榄中,先前已经鉴定出一种甘露醇转运系统(OeMaT1),作为植物对盐度响应的关键因子。在本研究中,利用非共生汇模型(如橄榄细胞悬浮液和果实组织)和源叶进行分析、生化和分子研究。在 25°C 和 pH 值 9.0 下,在甘露醇中生长的细胞中测定甘露醇脱氢酶(MTD)的动力学参数如下:K(m),54.5 mM 甘露醇;V(max),0.47 μmol h⁻¹ mg⁻¹ 蛋白。克隆并命名相应的 cDNA 为 OeMTD1。OeMTD1 的表达与 MTD 活性、OeMaT1 的表达以及甘露醇和蔗糖生长细胞中的载体介导的甘露醇转运相关。此外,蔗糖生长的细胞仅显示出残留的 OeMTD 活性,尽管观察到高水平的 OeMTD1 转录。有证据表明 OeMTD 在转录和转录后水平受到调节。在甘露醇和蔗糖生长的细胞中,Na+、K+和聚乙二醇(PEG)处理后,MTD 活性和 OeMTD1 的表达均受到抑制。相比之下,盐和干旱显著增加了甘露醇转运活性和 OeMaT1 的表达。总之,这些研究支持橄榄树通过协调甘露醇转运与细胞内代谢来应对盐度和干旱。

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