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Cardiotoxic local anesthetics increasingly interact with biomimetic membranes under ischemia-like acidic conditions
Hironori Tsuchiya1, Maki Mizogami, Takahiro Ueno
1Department of Dental Basic Education, School of Dentistry, Asahi University, Mizuho, Gifu, Japan. hiro@dent.asahi-u.ac.jp
Abstract:
The cardiotoxic effects of local anesthetics increase in cardiac ischemia which is characterized by the tissue pH lowering to 6.5 or less. Apart from the cardiac channel blockade, the membrane interaction has been referred to as another mode of their cardiotoxic action. By using biomimetic membranes, we verified the hypothesis that bupivacaine and lidocaine may increasingly interact with cardiac mitochondrial membranes under ischemia-like acidic conditions. Biomimetic membranes were prepared with different phospholipids and cholesterol to be unilamellar vesicles suspended in buffers of pH 7.4, 6.9, 6.4 or 5.9. Bupivacaine and lidocaine were reacted with the membrane preparations at cardiotoxically relevant concentrations and their membrane interactivities were determined by measuring fluorescence polarization. Both drugs interacted with 100 mol% 1,2-dipalmitoylphosphatidylcholine, peripheral nerve cell-mimetic and cardiomyocyte-mimetic membranes to increase membrane fluidity, although lowering the reaction pH from 7.4 to 5.9 decreased their membrane-fluidizing effects. In cardiomyocyte mitochondria-mimetic membranes containing 20 mol% cardiolipin, however, bupivacaine and lidocaine reversely increased their membrane interactivities at pH 5.9-6.4 compared with pH 7.4. Such increases were greater in anionic phospholipid membranes which consisted of substantial amounts of cardiolipin and phosphatidylserine. Positively charged bupivacaine and lidocaine would form ion-pairs with the negatively charged head-groups of anionic phospholipids under acidic conditions, thereby increasing the induced membrane fluidization. The mitochondrial membrane interactions depending on pH lowering may be, at least in part, responsible for local anesthetic cardiotoxicity enhanced in acidosis associated with cardiac ischemia.
Insights
Local anesthetics like bupivacaine and lidocaine become more cardiotoxic in acidic conditions. They interact more with cardiac mitochondrial membranes at low pH, potentially explaining toxicity during cardiac ischemia.
Area of Science:
- Biochemistry
- Pharmacology
- Cardiovascular Research
Background:
- Local anesthetics (LAs) can cause cardiotoxicity, particularly during cardiac ischemia.
- Ischemia leads to acidosis, lowering tissue pH significantly.
- Besides channel blockade, LA interaction with cell membranes is a proposed cardiotoxic mechanism.
Purpose of the Study:
- To investigate the interaction of bupivacaine and lidocaine with cardiac mitochondrial membranes under acidic conditions mimicking ischemia.
- To test the hypothesis that altered membrane interactions contribute to enhanced LA cardiotoxicity in acidosis.
Main Methods:
- Utilized biomimetic membranes (unilamellar vesicles) composed of various phospholipids and cholesterol.
- Adjusted buffer pH to simulate physiological (7.4) and ischemic (6.9, 6.4, 5.9) conditions.
- Measured drug-membrane interactions using fluorescence polarization at cardiotoxically relevant LA concentrations.
Main Results:
- Bupivacaine and lidocaine increased membrane fluidity in general phospholipid and nerve/cardiomyocyte-mimetic membranes, with reduced effect at lower pH.
- In cardiomyocyte mitochondria-mimetic membranes with cardiolipin, LAs *increased* membrane interaction at acidic pH (5.9-6.4) compared to pH 7.4.
- This effect was more pronounced in anionic phospholipid membranes, suggesting ion-pairing between positively charged LAs and negatively charged phospholipids.
Conclusions:
- Local anesthetic interaction with cardiac mitochondrial membranes is pH-dependent.
- Acidosis, characteristic of cardiac ischemia, enhances LA interaction with anionic phospholipids in mitochondrial membranes.
- This pH-dependent membrane interaction may contribute significantly to the increased cardiotoxicity of local anesthetics observed in acidosis during cardiac ischemia.
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