Analyzing Supercomplexes of the Mitochondrial Electron Transport Chain with Native Electrophoresis, In-gel Assays, and Electroelution

被引:7
|
作者
Beutner, Gisela [1 ]
Porter, George Arthur, Jr. [1 ]
机构
[1] Univ Rochester, Dept Pediat, Div Cardiol, Rochester, NY 14627 USA
来源
JOVE-JOURNAL OF VISUALIZED EXPERIMENTS | 2017年 / 124期
关键词
Biochemistry; Issue; 124; Mitochondria; electron transport chain; respirasomes; synthasomes; clear native electrophoresis; in-gel assays; electroelution; PERMEABILITY TRANSITION PORE; MEMBRANE-PROTEIN COMPLEXES; ATP SYNTHASE; RESPIRATORY-CHAIN; OXIDATIVE-PHOSPHORYLATION; SUPRAMOLECULAR ORGANIZATION; FUNCTIONAL ASSAYS; RAT;
D O I
10.3791/55738
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
The mitochondrial electron transport chain (ETC) transduces the energy derived from the breakdown of various fuels into the bioenergetic currency of the cell, ATP. The ETC is composed of 5 massive protein complexes, which also assemble into supercomplexes called respirasomes (C-I, C-III, and C-IV) and synthasomes (C-V) that increase the efficiency of electron transport and ATP production. Various methods have been used for over 50 years to measure ETC function, but these protocols do not provide information on the assembly of individual complexes and supercomplexes. This protocol describes the technique of native gel polyacrylamide gel electrophoresis (PAGE), a method that was modified more than 20 years ago to study ETC complex structure. Native electrophoresis permits the separation of ETC complexes into their active forms, and these complexes can then be studied using immunoblotting, in-gel assays (IGA), and purification by electroelution. By combining the results of native gel PAGE with those of other mitochondrial assays, it is possible to obtain a completer picture of ETC activity, its dynamic assembly and disassembly, and how this regulates mitochondrial structure and function. This work will also discuss limitations of these techniques. In summary, the technique of native PAGE, followed by immunoblotting, IGA, and electroelution, presented below, is a powerful way to investigate the functionality and composition of mitochondrial ETC supercomplexes.
引用
收藏
页数:10
相关论文
共 50 条
  • [31] Cholinesterase inhibitor rivastigmine enhance the mitochondrial electron transport chain in lymphocytes of patients with Alzheimer's disease
    Casademont, J
    Miró, O
    Rodriguez-Santiago, B
    Viedma, P
    Blesa, R
    Cardellach, F
    JOURNAL OF THE NEUROLOGICAL SCIENCES, 2003, 206 (01) : 23 - 26
  • [32] Supercomplex Assembly Determines Electron Flux in the Mitochondrial Electron Transport Chain
    Lapuente-Brun, Esther
    Moreno-Loshuertos, Raquel
    Acin-Perez, Rebeca
    Latorre-Pellicer, Ana
    Colas, Carmen
    Balsa, Eduardo
    Perales-Clemente, Ester
    Quiros, Pedro M.
    Calvo, Enrique
    Rodriguez-Hernandez, M. A.
    Navas, Placido
    Cruz, Raquel
    Carracedo, Angel
    Lopez-Otin, Carlos
    Perez-Martos, Acisclo
    Fernandez-Silva, Patricio
    Fernandez-Vizarra, Erika
    Antonio Enriquez, Jose
    SCIENCE, 2013, 340 (6140) : 1567 - 1570
  • [33] Mitochondrial Function and Parkinson's Disease: From the Perspective of the Electron Transport Chain
    Li, Jeng-Lin
    Lin, Tai-Yi
    Chen, Po-Lin
    Guo, Ting-Ni
    Huang, Shu-Yi
    Chen, Chun-Hong
    Lin, Chin-Hsien
    Chan, Chih-Chiang
    FRONTIERS IN MOLECULAR NEUROSCIENCE, 2021, 14
  • [34] Mitochondrial pharmacology: Electron transport chain bypass as strategies to treat mitochondrial dysfunction
    Atamna, Hani
    Mackey, Jeanette
    Dhahbi, Joseph M.
    BIOFACTORS, 2012, 38 (02) : 158 - 166
  • [35] ATP depletion does not account for apoptosis induced by inhibition of mitochondrial electron transport chain in human dopaminergic cells
    Watabe, Masahiko
    Nakaki, Toshio
    NEUROPHARMACOLOGY, 2007, 52 (02) : 536 - 541
  • [36] Electron transport chain complex II sustains high mitochondrial membrane potential in hematopoietic stem and progenitor cells
    Morganti, Claudia
    Bonora, Massimo
    Ito, Kyoko
    Ito, Keisuke
    STEM CELL RESEARCH, 2019, 40
  • [37] Inactivation of brain mitochondrial Lon protease by peroxynitrite precedes electron transport chain dysfunction
    Stanyer, Lee
    Jorgensen, Wenche
    Hori, Osamu
    Clark, John B.
    Heales, Simon J. R.
    NEUROCHEMISTRY INTERNATIONAL, 2008, 53 (3-4) : 95 - 101
  • [38] Bisphenol B: An inhibitor of mitochondrial electron transport chain protein
    Gupta, Shivani
    Pinjari, Dastagiri
    Yadav, Deepak
    Kumar, Deepak
    Bhattacharyya, Rajasri
    Banerjee, Dibyajyoti
    INDIAN JOURNAL OF BIOCHEMISTRY & BIOPHYSICS, 2025, 62 (04) : 426 - 430
  • [39] Genes Involved in Maintaining Mitochondrial Membrane Potential Upon Electron Transport Chain Disruption
    Vasan, Karthik
    Clutter, Matt
    Fernandez Dunne, Sara
    George, Mariam D.
    Luan, Chi-Hao
    Chandel, Navdeep S.
    Martinez-Reyes, Inmaculada
    FRONTIERS IN CELL AND DEVELOPMENTAL BIOLOGY, 2022, 10
  • [40] Interaction of genistein with the mitochondrial electron transport chain results in opening of the membrane transition pore
    Salvi, M
    Brunati, AM
    Clari, G
    Toninello, A
    BIOCHIMICA ET BIOPHYSICA ACTA-BIOENERGETICS, 2002, 1556 (2-3): : 187 - 196