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.

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.

Related Concept Videos

The Electron Transport Chain01:30

The Electron Transport Chain

The electron transport chain or oxidative phosphorylation is an exothermic process in which free energy released during electron transfer reactions is coupled to ATP synthesis. This process is a significant source of energy in aerobic cells, and therefore inhibitors of the electron transport chain can be detrimental to the cell's metabolic processes.
Inhibitors of the electron transport chain
Rotenone, a widely used pesticide, prevents electron transfer from Fe-S cluster to ubiquinone or Q in...
ATP Synthase: Mechanism01:48

ATP Synthase: Mechanism

In animals, the mitochondrial F1F0 ATP synthase is the key protein that synthesizes ATP molecules through a complex catalytic mechanism. While the nuclear genome encodes the majority of ATP synthase subunits, the mitochondrial genome encodes some of the enzyme's most critical components. The formation of this multi-subunit enzyme is a complex multi-step process regulated at the level of transcription, translation, and assembly. Defects in one or more of these steps can result in decreased ATP...
Induced-fit Model01:13

Induced-fit Model

Most chemical reactions in cells require enzymes—biological catalysts that speed up the reaction without being consumed or permanently changed. They reduce the activation energy needed to convert the reactants into products. Enzymes are proteins, that usually work by binding to a substrate—a reactant molecule that they act upon.
Enzymes exhibit substrate specificity, meaning that they can only bind to certain substrates. This is mainly determined by the shape and chemical characteristics of...
Physiological Pharmacokinetic Models: Incorporating Hepatic Transporter-Mediated Clearance01:07

Physiological Pharmacokinetic Models: Incorporating Hepatic Transporter-Mediated Clearance

Drug transporters are critical in drug absorption, distribution, and excretion processes. They should be included in physiological-based pharmacokinetic (PBPK) models, which help predict human drug disposition. However, predicting this is challenging during drug development, especially when liver transport is involved. However, with a realistic representation of body transport processes, an accurate model may be possible.
A recent model describes pravastatin's hepatobiliary excretion, mediated...
Electron Transport Chain: Complex I and II01:46

Electron Transport Chain: Complex I and II

The mitochondrial electron transport chain (ETC) is the main energy generation system in the eukaryotic cells. However, mitochondria also produce cytotoxic reactive oxygen species (ROS) due to the large electron flow during oxidative phosphorylation. While Complex I is one of the primary sources of superoxide radicals, ROS production by Complex II is uncommon and may only be observed in cancer cells with mutated complexes.
ROS generation is regulated and maintained at moderate levels necessary...
ATP Driven Pumps I: An Overview01:27

ATP Driven Pumps I: An Overview

ATP-driven pumps, also known as transport ATPases, are integral membrane proteins. They have binding sites for ATP located on the membrane's cytosolic side and the ion-conducting domain in the transmembrane region. These pumps use the free energy released from ATP hydrolysis to move the solutes across cell membranes against an electrochemical gradient.
There are four main types of ATP-driven pumps - P-type, V-type, F-type, and ABC transporter. All these pumps are of varying complexities and are...