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Analyses of Mitochondrial Calcium Influx in Isolated Mitochondria and Cultured Cells
Published on: April 27, 2018
Kinetic model for Ca2+-induced permeability transition in energized liver mitochondria discriminates between
Sergei V Baranov1, Irina G Stavrovskaya, Abraham M Brown
1Department of Neurosurgery, Brigham and Women's Hospital, Boston, Massachusetts 02115, USA.
Abstract:
Cytotoxicity associated with pathophysiological Ca(2+) overload (e.g. in stroke) appears mediated by an event termed the mitochondrial permeability transition (mPT). We built and solved a kinetic model of the mPT in populations of isolated rat liver mitochondria that quantitatively describes Ca(2+)-induced mPT as a two-step sequence of pre-swelling induction followed by Ca(2+)-driven, positive feedback, autocatalytic propagation. The model was formulated as two differential equations, each directly related to experimental parameters (Ca(2+) flux/mitochondrial swelling). These parameters were simultaneously assessed using a spectroscopic approach to monitor multiple mitochondrial properties. The derived kinetic model correctly identifies a correlation between initial Ca(2+) concentration and delay interval prior to mPT induction. Within the model's framework, Ru-360 (a ruthenium complex) and Mg(2+) were shown to compete with the Ca(2+)-stimulated initiation phase of mPT induction, consistent with known inhibition at the phenomenological level of the Ca(2+) uniporter. The model further reveals that Mg(2+), but not Ru-360, inhibits Ca(2+)-induced effects on a downstream stage of mPT induction at a site distinct from the uniporter. The analytical approach was then applied to promethazine, an FDA-approved drug previously shown to inhibit both mPT and ischemia-reperfusion injury. Kinetic analysis revealed that promethazine delayed mPT induction in a manner qualitatively distinct from that of lower concentrations of Mg(2+). In summary, we have developed a kinetic model to aid in the quantitative characterization of mPT induction. This model is consistent with/informative about the biochemistry of several mPT inhibitors, and its success suggests that this kinetic approach can aid in the classification of agents or targets that modulate mPT induction.
Insights
We developed a kinetic model for mitochondrial permeability transition (mPT) induction, crucial in conditions like stroke. This model quantizes calcium-induced mPT, aiding in understanding and classifying mPT inhibitors.
Area of Science:
- Mitochondrial Physiology
- Biochemical Kinetics
- Cellular Toxicology
Background:
- Pathophysiological calcium (Ca2+) overload contributes to cytotoxicity, particularly in conditions like stroke.
- This cytotoxicity is often mediated by the mitochondrial permeability transition (mPT), a critical event in cell death pathways.
Purpose of the Study:
- To develop and validate a quantitative kinetic model for Ca2+-induced mPT in isolated rat liver mitochondria.
- To use the model to elucidate the mechanisms of action of known mPT inhibitors and classify potential new modulators.
Main Methods:
- Formulation of a two-step kinetic model using differential equations based on Ca2+ flux and mitochondrial swelling.
- Simultaneous monitoring of mitochondrial properties using a spectroscopic approach.
- Application of the kinetic model to analyze the effects of Ru-360, Mg2+, and promethazine on mPT induction.
Main Results:
- The kinetic model accurately describes Ca2+-induced mPT as a two-step process involving pre-swelling and autocatalytic propagation.
- The model correlates initial Ca2+ concentration with the delay before mPT induction.
- It differentiates the inhibitory mechanisms of Ru-360 and Mg2+ on mPT initiation and progression, and characterizes promethazine's distinct inhibitory effects.
Conclusions:
- A novel kinetic model provides a quantitative framework for understanding mPT induction.
- The model offers insights into the biochemical mechanisms of mPT inhibitors, distinguishing their actions.
- This kinetic approach can be valuable for classifying agents and targets that modulate mPT, with implications for treating Ca2+-related pathologies.
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