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叶绿体 ATP/ADP 转运蛋白 1 的寡聚状态和核苷酸结合特性:对转运机制的分子理解。

Oligomeric status and nucleotide binding properties of the plastid ATP/ADP transporter 1: toward a molecular understanding of the transport mechanism.

机构信息

CEA, Institut de Biologie Structurale Jean-Pierre Ebel, Grenoble, France.

出版信息

PLoS One. 2012;7(3):e32325. doi: 10.1371/journal.pone.0032325. Epub 2012 Mar 16.

Abstract

BACKGROUND

Chloroplast ATP/ADP transporters are essential to energy homeostasis in plant cells. However, their molecular mechanism remains poorly understood, primarily due to the difficulty of producing and purifying functional recombinant forms of these transporters.

METHODOLOGY/PRINCIPAL FINDINGS: In this work, we describe an expression and purification protocol providing good yields and efficient solubilization of NTT1 protein from Arabidopsis thaliana. By biochemical and biophysical analyses, we identified the best detergent for solubilization and purification of functional proteins, LAPAO. Purified NTT1 was found to accumulate as two independent pools of well folded, stable monomers and dimers. ATP and ADP binding properties were determined, and Pi, a co-substrate of ADP, was confirmed to be essential for nucleotide steady-state transport. Nucleotide binding studies and analysis of NTT1 mutants lead us to suggest the existence of two distinct and probably inter-dependent binding sites. Finally, fusion and deletion experiments demonstrated that the C-terminus of NTT1 is not essential for multimerization, but probably plays a regulatory role, controlling the nucleotide exchange rate.

CONCLUSIONS/SIGNIFICANCE: Taken together, these data provide a comprehensive molecular characterization of a chloroplast ATP/ADP transporter.

摘要

背景

叶绿体 ATP/ADP 转运蛋白对于植物细胞的能量稳态至关重要。然而,它们的分子机制仍未被充分理解,主要是因为难以生产和纯化这些转运蛋白的功能重组形式。

方法/主要发现:在这项工作中,我们描述了一种表达和纯化方案,该方案可从拟南芥中提供良好的 NTT1 蛋白产量和有效的可溶性。通过生化和生物物理分析,我们确定了用于可溶性和纯化功能蛋白的最佳去污剂 LAPAO。发现纯化的 NTT1 积累为两个独立的折叠良好、稳定的单体和二聚体池。确定了 ATP 和 ADP 的结合特性,并证实 Pi(ADP 的共底物)对于核苷酸稳态转运是必需的。核苷酸结合研究和 NTT1 突变体的分析使我们提出存在两个不同且可能相互依赖的结合位点。最后,融合和缺失实验表明,NTT1 的 C 末端对于多聚化不是必需的,但可能发挥调节作用,控制核苷酸交换率。

结论/意义:总之,这些数据提供了对叶绿体 ATP/ADP 转运蛋白的全面分子特征描述。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4568/3306366/2105bf249aef/pone.0032325.g001.jpg

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