The complexity of mitochondrial outer membrane permeability and VDAC regulation by associated proteins

J Bioenerg Biomembr. 2018 Oct;50(5):339-354. doi: 10.1007/s10863-018-9765-9. Epub 2018 Jul 12.

Abstract

Previous studies have shown that class II β-tubulin plays a key role in the regulation of oxidative phosphorylation (OXPHOS) in some highly differentiated cells, but its role in malignant cells has remained unclear. To clarify these aspects, we compared the bioenergetic properties of HL-1 murine sarcoma cells, murine neuroblastoma cells (uN2a) and retinoic acid - differentiated N2a cells (dN2a). We examined the expression and possible co-localization of mitochondrial voltage dependent anion channel (VDAC) with hexokinase-2 (HK-2) and βII-tubulin, the role of depolymerized βII-tubuline and the effect of both proteins in the regulation of mitochondrial outer membrane (MOM) permeability. Our data demonstrate that neuroblastoma and sarcoma cells are prone to aerobic glycolysis, which is partially mediated by the presence of VDAC bound HK-2. Microtubule destabilizing (colchicine) and stabilizing (taxol) agents do not affect the MOM permeability for ADP in N2a and HL-1 cells. The obtained results show that βII-tubulin does not regulate the MOM permeability for adenine nucleotides in these cells. HL-1 and NB cells display comparable rates of ADP-activated respiration. It was also found that differentiation enhances the involvement of OXPHOS in N2a cells due to the rise in their mitochondrial reserve capacity. Our data support the view that the alteration of mitochondrial affinity for ADNs is one of the characteristic features of cancer cells. It can be concluded that the binding sites for tubulin and hexokinase within the large intermembrane protein supercomplex Mitochondrial Interactosome, could be different between muscle and cancer cells.

Keywords: Adenylate kinase; Glycolysis; Mitochondria; OXPHOS; Tubulin; Warburg effect.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Animals
  • Glycolysis / physiology*
  • Humans
  • Mice
  • Mitochondrial Membranes / metabolism
  • Permeability
  • Proteins / metabolism*
  • Voltage-Dependent Anion Channels / metabolism*

Substances

  • Proteins
  • Voltage-Dependent Anion Channels