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  1. Biochemistry (Moscow) Supplement Series A: Membrane and Cell Biology
  2. Biochemistry (Moscow) Supplement Series A: Membrane and Cell Biology : Volume 5
  3. Biochemistry (Moscow) Supplement Series A: Membrane and Cell Biology : Volume 5, Issue 1, March 2011
  4. Vimentin intermediate filaments increase mitochondrial membrane potential
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Biochemistry (Moscow) Supplement Series A: Membrane and Cell Biology : Volume 11
Biochemistry (Moscow) Supplement Series A: Membrane and Cell Biology : Volume 10
Biochemistry (Moscow) Supplement Series A: Membrane and Cell Biology : Volume 9
Biochemistry (Moscow) Supplement Series A: Membrane and Cell Biology : Volume 8
Biochemistry (Moscow) Supplement Series A: Membrane and Cell Biology : Volume 7
Biochemistry (Moscow) Supplement Series A: Membrane and Cell Biology : Volume 6
Biochemistry (Moscow) Supplement Series A: Membrane and Cell Biology : Volume 5
Biochemistry (Moscow) Supplement Series A: Membrane and Cell Biology : Volume 5, Issue 4, December 2011
Biochemistry (Moscow) Supplement Series A: Membrane and Cell Biology : Volume 5, Issue 3, September 2011
Biochemistry (Moscow) Supplement Series A: Membrane and Cell Biology : Volume 5, Issue 2, June 2011
Biochemistry (Moscow) Supplement Series A: Membrane and Cell Biology : Volume 5, Issue 1, March 2011
First messengers. Methods and approaches for assaying their release
Role of phosphorylation of porin (VDAC) in regulation of mitochondrial outer membrane under normal conditions and alcohol intoxication
Vimentin intermediate filaments increase mitochondrial membrane potential
Inhibitor of inflammation, peptide fragment (65–76) of monocyte chemotactic protein-1 (MCP-1), inhibits binding of MCP-1 to heparin
Clotrimazole as an amplifier of hemin-induced damage to human erythrocytes. Antioxidant-independent protective effects of flavonoids
Cytotoxic effect of dihydroquercetin and its derivatives in liposomal form and in the form of fat nanoscale emulsions
Photometric and fluorimetric studies of protomitochondria from liver of young and adult rats
Affinity of PIP-aquaporins to sterol-enriched domains in plasma membrane of the cells of etiolated pea seedlings
The effect of low temperatures on fatty acid composition of crops with different cold resistance
Stabilization of non-histone proteins by copper ions does not alter chromatin properties of polythene chromosomes of Chironomus plumosus
Dynamics of ultrastructural transformations of paired biological membranes in the nervous system
β-Adrenoreceptor agonists and antagonists modulate the activity of α$_{2}$-adrenoreceptors in rat cortex cerebral membranes
Mechanisms of heterogeneity of calcium response to kainate and neuronal types in rat cortical primary culture
Biochemistry (Moscow) Supplement Series A: Membrane and Cell Biology : Volume 4
Biochemistry (Moscow) Supplement Series A: Membrane and Cell Biology : Volume 3
Biochemistry (Moscow) Supplement Series A: Membrane and Cell Biology : Volume 2
Biochemistry (Moscow) Supplement Series A: Membrane and Cell Biology : Volume 1

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Vimentin intermediate filaments increase mitochondrial membrane potential

Content Provider Springer Nature Link
Author Cherivanenko, I. S. Matveeva, E. A. Minin, A. A.
Copyright Year 2011
Abstract Mitochondria are the main source of energy in eukaryotic cells. They also play an important role in the number of other processes, such as regulation of calcium concentration and sequestration of apoptotic factors. Almost all functions of mitochondria depend on their ability to generate and maintain membrane potential by means of aerobic respiration. The level of mitochondrial potential is under the control of different inner and outer factors. However, mechanisms of this regulation are still poorly understood. In the present study we answer the question of how membrane potential of mitochondria depends on their motility. Using the potential-dependent dye MitoTracker Red, fluorescent microscopy of live cells, and the analysis of mitochondrial motility, two sub-populations of mitochondria were determined: (1) moving mitochondria transported along microtubules and (2) stationary mitochondria. We have shown that stationary mitochondria have higher membrane potential than moving mitochondria. It was also found that the level of potential of mitochondria is regulated by their interaction with vimentin intermediate filaments.
Starting Page 21
Ending Page 28
Page Count 8
File Format PDF
ISSN 19907478
Journal Biochemistry (Moscow) Supplement Series A: Membrane and Cell Biology
Volume Number 5
Issue Number 1
e-ISSN 19907494
Language English
Publisher SP MAIK Nauka/Interperiodica
Publisher Date 2011-03-05
Publisher Place Dordrecht
Access Restriction One Nation One Subscription (ONOS)
Subject Keyword intermediate filaments vimentin mitochondria membrane potential Cell Biology
Content Type Text
Resource Type Article
Subject Cell Biology Biochemistry Biophysics
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