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Updated: Aug 23, 2026

High-resolution Respirometry to Measure Mitochondrial Function of Intact Beta Cells in the Presence of Natural Compounds
Published on: January 23, 2018
The characterization of mitochondrial permeability transition in clonal pancreatic beta-cells. Multiple modes and
Vasilij Koshkin1, George Bikopoulos, Catherine B Chan
1Departments of Physiology and Medicine, University of Toronto, Toronto M5S 1A8, Canada.
Abstract:
Mitochondrial permeability transition (MPT), which contributes substantially to the regulation of normal mitochondrial metabolism, also plays a crucial role in the initiation of cell death. It is known that MPT is regulated in a tissue-specific manner. The importance of MPT in the pancreatic beta-cell is heightened by the fact that mitochondrial bioenergetics serve as the main glucose-sensing regulator and energy source for insulin secretion. In the present study, using MIN6 and INS-1 beta-cells, we revealed that both Ca(2+)-phosphate- and oxidant-induced MPT is remarkably different from other tissues. Ca(2+)-phosphate-induced transition is accompanied by a decline in mitochondrial reactive oxygen species production related to a significant potential dependence of reactive oxygen species formation in beta-cell mitochondria. Hydroperoxides, which are indirect MPT co-inducers active in liver and heart mitochondria, are inefficient in beta-cell mitochondria, due to the low mitochondrial ability to metabolize them. Direct cross-linking of mitochondrial thiols in pancreatic beta-cells induces the opening of a low conductance ion permeability of the mitochondrial membrane instead of the full scale MPT opening typical for liver mitochondria. Low conductance MPT is independent of both endogenous and exogenous Ca(2+), suggesting a novel type of nonclassical MPT in beta-cells. It results in the conversion of electrical transmembrane potential into DeltapH instead of a decrease in total protonmotive force, thus mitochondrial respiration remains in a controlled state. Both Ca(2+)- and oxidant-induced MPTs are phosphate-dependent and, through the "phosphate flush" (associated with stimulation of insulin secretion), are expected to participate in the regulation in beta-cell glucose-sensing and secretory activity.
Insights
Mitochondrial permeability transition (MPT) in pancreatic beta-cells differs from other tissues. This novel MPT type is phosphate-dependent and regulates glucose sensing and insulin secretion.
Area of Science:
- Mitochondrial Physiology
- Cell Biology
- Endocrinology
Background:
- Mitochondrial permeability transition (MPT) regulates metabolism and cell death.
- MPT is tissue-specific, with unique importance in pancreatic beta-cells due to their role in glucose sensing and insulin secretion.
Purpose of the Study:
- To investigate the distinct characteristics of calcium (Ca2+)-phosphate- and oxidant-induced MPT in pancreatic beta-cells.
- To elucidate the mechanisms and functional implications of MPT in beta-cell bioenergetics and insulin secretion.
Main Methods:
- Utilized MIN6 and INS-1 beta-cell lines.
- Investigated Ca2+-phosphate- and oxidant-induced MPT.
- Assessed mitochondrial reactive oxygen species (ROS) production and membrane potential.
- Examined the effects of thiol cross-linking on mitochondrial membranes.
Main Results:
- Ca2+-phosphate-induced MPT in beta-cells shows reduced ROS production, unlike in other tissues.
- Hydroperoxides are inefficient MPT inducers in beta-cells due to low metabolic capacity.
- Direct thiol cross-linking induces a novel low-conductance MPT, independent of Ca2+.
- This nonclassical MPT converts transmembrane potential to DeltapH, maintaining controlled respiration.
- Both Ca2+- and oxidant-induced MPTs are phosphate-dependent and linked to insulin secretion via "phosphate flush".
Conclusions:
- Pancreatic beta-cell MPT exhibits unique Ca2+-phosphate and oxidant-induced characteristics compared to other tissues.
- A novel, nonclassical low-conductance MPT in beta-cells regulates mitochondrial bioenergetics and is phosphate-dependent.
- This phosphate-dependent MPT likely plays a role in beta-cell glucose sensing and insulin secretion regulation.
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