Header menu link for other important links
X
Modulation of the voltage-dependent anion channel of mitochondria by elaidic acid
Published in Elsevier B.V.
2016
PMID: 27318085
Volume: 477
   
Issue: 3
Pages: 490 - 494
Abstract
Dietary trans fatty acids (TFAs) are known to increase the risk of cardiovascular diseases by altering plasma lipid profile and activating various inflammatory signaling pathways. Here we show that elaidic acid (EA), the most abundant TFA in diet, alters the electrophysiological properties of voltage-dependent anion channel (VDAC) of mitochondria. Purified bovine brain VDAC, when incorporated in the planar lipid bilayer (PLB) composed of 1,2-diphytanoyl-sn-glycero-3 phosphatidyl choline (DPhPC) and EA in a 9 to 1 ratio (wt/wt), exhibited complete closing events at different voltages. The closing events were observed at even −10 mV, a voltage at which VDAC usually remains fully open all the time. Additionally, the voltage sensitivity of VDAC was lost in presence of EA; the channel conductance did not decrease with increasing voltages. In identical experimental conditions, membrane containing oleic acid (OA), the cis isomer of EA did not produce any such effect. We propose that EA possibly exerts its adverse effect by modulating VDAC. © 2016 Elsevier Inc.
About the journal
JournalData powered by TypesetBiochemical and Biophysical Research Communications
PublisherData powered by TypesetElsevier B.V.
ISSN0006291X
Open AccessNo
Concepts (29)
  •  related image
    ELAIDIC ACID
  •  related image
    Oleic acid
  •  related image
    Phosphatidylcholine
  •  related image
    VOLTAGE DEPENDENT ANION CHANNEL
  •  related image
    ELAIDIC ACID
  •  related image
    VOLTAGE DEPENDENT ANION CHANNEL
  •  related image
    Animal tissue
  •  related image
    Apoptosis
  •  related image
    Article
  •  related image
    Bovine
  •  related image
    Brain
  •  related image
    Cis isomer
  •  related image
    Controlled study
  •  related image
    Electric conductance
  •  related image
    Electric potential
  •  related image
    Lipid bilayer
  •  related image
    MEMBRANE ELECTROPHYSIOLOGY
  •  related image
    Mitochondrion
  •  related image
    Molecular weight
  •  related image
    Nonhuman
  •  related image
    Priority journal
  •  related image
    PROTEIN ISOLATION
  •  related image
    Protein purification
  •  related image
    Animal
  •  related image
    Drug effects
  •  related image
    Physiology
  •  related image
    Animals
  •  related image
    Mitochondria
  •  related image
    VOLTAGE-DEPENDENT ANION CHANNELS