Literature DB >> 21986486

Plasmalemmal VDAC controversies and maxi-anion channel puzzle.

Ravshan Z Sabirov1, Petr G Merzlyak.   

Abstract

The maxi-anion channel has been observed in many cell types from the very beginning of the patch-clamp era. The channel is highly conductive for chloride and thus can modulate the resting membrane potential and play a role in fluid secretion/absorption and cell volume regulation. A wide nanoscopic pore of the maxi-anion channel permits passage of excitatory amino acids and nucleotides. The channel-mediated release of these signaling molecules is associated with kidney tubuloglomerular feedback, cardiac ischemia/hypoxia, as well as brain ischemia/hypoxia and excitotoxic neurodegeneration. Despite the ubiquitous expression and physiological/pathophysiological significance, the molecular identity of the maxi-anion channel is still obscure. VDAC is primarily a mitochondrial protein; however several groups detected it on the cellular surface. VDAC in lipid bilayers reproduced the most important biophysical properties of the maxi-anion channel, such as a wide nano-sized pore, closure in response to moderately high voltages, ATP-block and ATP-permeability. However, these similarities turned out to be superficial, and the hypothesis of plasmalemmal VDAC as the maxi-anion channel did not withstand the test by genetic manipulations of VDAC protein expression. VDAC on the cellular surface could also function as a ferricyanide reductase or a receptor for plasminogen kringle 5 and for neuroactive steroids. These ideas, as well as the very presence of VDAC on plasmalemma, remain to be scrutinized by genetic manipulations of the VDAC protein expression. This article is part of a Special Issue entitled: VDAC structure, function, and regulation of mitochondrial metabolism.
Copyright © 2011 Elsevier B.V. All rights reserved.

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Year:  2011        PMID: 21986486     DOI: 10.1016/j.bbamem.2011.09.024

Source DB:  PubMed          Journal:  Biochim Biophys Acta        ISSN: 0006-3002


  17 in total

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Authors:  Ravshan Z Sabirov; Petr G Merzlyak; Md Rafiqul Islam; Toshiaki Okada; Yasunobu Okada
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3.  P2X7R large pore is partially blocked by pore forming proteins antagonists in astrocytes.

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4.  ACBD2/ECI2-Mediated Peroxisome-Mitochondria Interactions in Leydig Cell Steroid Biosynthesis.

Authors:  Jinjiang Fan; Xinlu Li; Leeyah Issop; Martine Culty; Vassilios Papadopoulos
Journal:  Mol Endocrinol       Date:  2016-05-11

5.  The organic anion transporter SLCO2A1 constitutes the core component of the Maxi-Cl channel.

Authors:  Ravshan Z Sabirov; Petr G Merzlyak; Toshiaki Okada; Md Rafiqul Islam; Hiromi Uramoto; Tomoko Mori; Yumiko Makino; Hiroshi Matsuura; Yu Xie; Yasunobu Okada
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Authors:  Maria I Georgi; Julia Rosendahl; Franziska Ernst; Dorothee Günzel; Jörg R Aschenbach; Holger Martens; Friederike Stumpff
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Review 7.  Voltage-Dependent Anion Channel 1 As an Emerging Drug Target for Novel Anti-Cancer Therapeutics.

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8.  Evolution of Voltage-Dependent Anion Channel Function: From Molecular Sieve to Governator to Actuator of Ferroptosis.

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Review 9.  The ATP-Releasing Maxi-Cl Channel: Its Identity, Molecular Partners and Physiological/Pathophysiological Implications.

Authors:  Ravshan Z Sabirov; Md Rafiqul Islam; Toshiaki Okada; Petr G Merzlyak; Ranokhon S Kurbannazarova; Nargiza A Tsiferova; Yasunobu Okada
Journal:  Life (Basel)       Date:  2021-05-31

Review 10.  Pore forming channels as a drug delivery system for photodynamic therapy in cancer associated with nanoscintillators.

Authors:  Luiz Anastacio Alves; Leonardo Braga Ferreira; Paulo Furtado Pacheco; Edith Alejandra Carreño Mendivelso; Pedro Celso Nogueira Teixeira; Robson Xavier Faria
Journal:  Oncotarget       Date:  2018-05-18
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