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类囊体膜的蛋白质组学图谱及对缺铁的响应变化

Proteomic profiles of thylakoid membranes and changes in response to iron deficiency.

作者信息

Andaluz Sofía, López-Millán Ana-Flor, De las Rivas Javier, Aro Eva-Mari, Abadía Javier, Abadía Anunciación

机构信息

Department of Plant Nutrition, Estación Experimental de Aula Dei, CSIC, Zaragoza, Spain.

出版信息

Photosynth Res. 2006 Sep;89(2-3):141-55. doi: 10.1007/s11120-006-9092-6. Epub 2006 Sep 13.

DOI:10.1007/s11120-006-9092-6
PMID:16969715
Abstract

The proteomic profile of thylakoid membranes and the changes induced in that proteome by iron deficiency have been studied by using thylakoid preparations from Beta vulgaris plants grown in hydroponics. Two different 2-D electrophoresis approaches have been used to study these proteomes: isoelectrical focusing followed by SDS PAGE (IEF-SDS PAGE) and blue-native polyacrylamide gel electrophoresis followed by SDS PAGE (BN-SDS PAGE). These techniques resolved approximately 110-140 and 40 polypeptides, respectively. Iron deficiency induced significant changes in the thylakoid sugar beet proteome profiles: the relative amounts of electron transfer protein complexes were reduced, whereas those of proteins participating in leaf carbon fixation-linked reactions were increased. A set of polypeptides, which includes several enzymes related to metabolism, was detected in thylakoid preparations from Fe-deficient Beta vulgaris leaves by using BN-SDS PAGE, suggesting that they may be associated with these thylakoids in vivo. The BN-SDS PAGE technique has been proven to be a better method than IEF-SDS PAGE to resolve highly hydrophobic integral membrane proteins from thylakoid preparations, allowing for the identification of complexes and determination of their polypeptidic components.

摘要

通过使用水培生长的甜菜植株的类囊体制剂,研究了类囊体膜的蛋白质组概况以及缺铁对该蛋白质组造成的变化。已采用两种不同的二维电泳方法来研究这些蛋白质组:等电聚焦后进行SDS-PAGE(IEF-SDS PAGE)以及蓝色非变性聚丙烯酰胺凝胶电泳后进行SDS-PAGE(BN-SDS PAGE)。这些技术分别解析出了约110 - 140种和40种多肽。缺铁导致类囊体甜菜蛋白质组概况发生显著变化:电子传递蛋白复合物的相对含量减少,而参与叶片碳固定相关反应的蛋白质的相对含量增加。通过使用BN-SDS PAGE,在缺铁甜菜叶片的类囊体制剂中检测到一组多肽,其中包括几种与代谢相关的酶,这表明它们可能在体内与这些类囊体相关联。已证明BN-SDS PAGE技术是一种比IEF-SDS PAGE更好的方法,用于从类囊体制剂中解析高度疏水的整合膜蛋白,从而能够鉴定复合物并确定其多肽成分。

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