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鉴定三磷酸腺苷结合盒转运蛋白的底物。

Towards Identification of the Substrates of ATP-Binding Cassette Transporters.

机构信息

Louvain Institute of Biomolecular Science and Technology, Université catholique de Louvain, 1348 Louvain-la-Neuve, Belgium.

Louvain Institute of Biomolecular Science and Technology, Université catholique de Louvain, 1348 Louvain-la-Neuve, Belgium

出版信息

Plant Physiol. 2018 Sep;178(1):18-39. doi: 10.1104/pp.18.00325. Epub 2018 Jul 9.

Abstract

Most ATP-binding cassette (ABC) proteins function in transmembrane transport, and plant genomes encode a large number of ABC transporters compared with animal or fungal genomes. These transporters have been classified into eight subfamilies according to their topology and phylogenetic relationships. Transgenic plants and mutants with altered ABC transporter expression or function have contributed to deciphering the physiological roles of these proteins, such as in plant development, responses to biotic and abiotic stress, or detoxification activities within the cell. In agreement with the diversity of these functions, a large range of substrates (e.g. hormones and primary and secondary metabolites) have been identified. We review in detail transporters for which substrates have been unambiguously identified. However, some cases are far from clear, because some ABC transporters have the ability to transport several structurally unrelated substrates or because the identification of their substrates was performed indirectly without any flux measurement. Various heterologous or homologous expression systems have been used to better characterize the transport activity and other biochemical properties of ABC transporters, opening the way to addressing new issues such as the particular structural features of plant ABC transporters, the bidirectionality of transport, or the role of posttranslational modifications.

摘要

大多数 ATP 结合盒(ABC)蛋白在跨膜运输中发挥作用,与动物或真菌基因组相比,植物基因组编码了大量的 ABC 转运蛋白。这些转运蛋白根据其拓扑结构和系统发育关系分为八个亚家族。改变 ABC 转运蛋白表达或功能的转基因植物和突变体有助于揭示这些蛋白质的生理功能,例如在植物发育、对生物和非生物胁迫的反应,或细胞内的解毒活性。与这些功能的多样性一致,已经确定了大量的底物(例如激素和初级和次级代谢物)。我们详细回顾了已明确鉴定出底物的转运蛋白。然而,有些情况远非如此,因为一些 ABC 转运蛋白具有运输几种结构上不相关的底物的能力,或者因为鉴定其底物是间接进行的,而没有任何通量测量。已经使用了各种异源或同源表达系统来更好地表征 ABC 转运蛋白的运输活性和其他生化特性,为解决新问题开辟了道路,例如植物 ABC 转运蛋白的特殊结构特征、运输的双向性或翻译后修饰的作用。

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