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利用蓝色非变性聚丙烯酰胺凝胶电泳对植物线粒体呼吸链复合物进行组织化学染色和定量分析。

Histochemical staining and quantification of plant mitochondrial respiratory chain complexes using blue-native polyacrylamide gel electrophoresis.

作者信息

Sabar Mohammed, Balk Janneke, Leaver Christopher J

机构信息

Department of Plant Sciences, University of Oxford, UK.

出版信息

Plant J. 2005 Dec;44(5):893-901. doi: 10.1111/j.1365-313X.2005.02577.x.


DOI:10.1111/j.1365-313X.2005.02577.x
PMID:16297078
Abstract

Our knowledge of the respiratory chain and associated defects depends on the study of the multisubunit protein complexes in the inner mitochondrial membrane. Functional analysis of the plant mitochondrial respiratory chain has been successfully achieved by a combination of blue-native polyacrylamide gel electrophoresis (BN-PAGE) for separation of the protein complexes, and in-gel histochemical staining of the enzyme activities. We have optimized this powerful technique by determining linear ranges of amount of protein and enzyme activity for each respiratory complex. Time courses of the in-gel enzyme activities were also performed to determine optimal reaction times. Using the in-gel activity staining method we have previously shown decreased activity of complex V (F(1)F(0)-ATPase) in male-sterile sunflowers (Sabar et al., 2003). Here we have identified unique supercomplexes comprising complex IV (cytochrome c oxidase) in sunflower mitochondria. This method therefore represents a reliable tool for the diagnosis of respiratory dysfunction. In addition, the wider application of BN-PAGE in combination with enzyme activity staining is discussed.

摘要

我们对呼吸链及相关缺陷的了解依赖于对线粒体内膜中多亚基蛋白质复合物的研究。通过结合用于分离蛋白质复合物的蓝色非变性聚丙烯酰胺凝胶电泳(BN-PAGE)和凝胶内酶活性的组织化学染色,已成功实现对植物线粒体呼吸链的功能分析。我们通过确定每种呼吸复合物的蛋白质含量和酶活性的线性范围,对这项强大的技术进行了优化。还进行了凝胶内酶活性的时间进程研究,以确定最佳反应时间。使用凝胶内活性染色方法,我们之前已表明雄性不育向日葵中复合物V(F₁F₀-ATP酶)的活性降低(萨巴尔等人,2003年)。在此,我们在向日葵线粒体中鉴定出了包含复合物IV(细胞色素c氧化酶)的独特超级复合物。因此,该方法是诊断呼吸功能障碍的可靠工具。此外,还讨论了BN-PAGE与酶活性染色相结合的更广泛应用。

相似文献

[1]
Histochemical staining and quantification of plant mitochondrial respiratory chain complexes using blue-native polyacrylamide gel electrophoresis.

Plant J. 2005-12

[2]
[Application of "blue native" electrophoresis in the studies of mitochondrial respiratory chain complexes in physiology and pathology].

Postepy Biochem. 2008

[3]
Measuring the quantity and activity of mitochondrial electron transport chain complexes in tissues of central nervous system using blue native polyacrylamide gel electrophoresis.

Anal Biochem. 2000-11-15

[4]
Analysis of mitochondrial subunit assembly into respiratory chain complexes using Blue Native polyacrylamide gel electrophoresis.

Anal Biochem. 2007-5-15

[5]
Two-dimensional blue native/blue native polyacrylamide gel electrophoresis for the characterization of mitochondrial protein complexes and supercomplexes.

Methods Mol Biol. 2007

[6]
Blue native polyacrylamide gel electrophoresis: a powerful tool in diagnosis of oxidative phosphorylation defects.

Pediatr Res. 2001-11

[7]
Resolving and identifying protein components of plant mitochondrial respiratory complexes using three dimensions of gel electrophoresis.

J Proteome Res. 2008-2

[8]
Separation by blue native and colorless native polyacrylamide gel electrophoresis of the oxidative phosphorylation complexes of yeast mitochondria solubilized by different detergents: specific staining of the different complexes.

Anal Biochem. 1996-11-15

[9]
Blue native electrophoresis to study mitochondrial complex I in C. elegans.

Anal Biochem. 2010-8-10

[10]
Quantification of muscle mitochondrial oxidative phosphorylation enzymes via histochemical staining of blue native polyacrylamide gels.

Electrophoresis. 1997-10

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