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Physiological pathway of magnesium influx in rat ventricular myocytes
Michiko Tashiro1, Hana Inoue1, Masato Konishi1
1Department of Physiology, Tokyo Medical University, Tokyo 160-8402, Japan.
Abstract:
Cytoplasmic free Mg(2+) concentration ([Mg(2+)]i) was measured in rat ventricular myocytes with a fluorescent indicator furaptra (mag-fura-2) introduced by AM-loading. By incubation of the cells in a high-K(+) (Ca(2+)- and Mg(2+)-free) solution, [Mg(2+)]i decreased from ? 0.9 mM to 0.2 to 0.5 mM. The lowered [Mg(2+)]i was recovered by perfusion with Ca(2+)-free Tyrode's solution containing 1 mM Mg(2+). The time course of the [Mg(2+)]i recovery was fitted by a single exponential function, and the first derivative at time 0 was analyzed as being proportional to the initial Mg(2+) influx rate. The Mg(2+) influx rate was inversely related to [Mg(2+)]i, being higher at low [Mg(2+)]i. The Mg(2+) influx rate was augmented by the high extracellular Mg(2+) concentration (5 mM), whereas it was greatly reduced by cell membrane depolarization caused by high K(+). Known inhibitors of TRPM7 channels, 2-aminoethoxydiphenyl borate (2-APB), NS8593, and spermine reduced the Mg(2+) influx rate with half inhibitory concentrations (IC50) of, respectively, 17 ?M, 2.0 ?M, and 22 ?M. We also studied Ni(2+) influx by fluorescence quenching of intracellular furaptra by Ni(2+). The Ni(2+) influx was activated by lowering intra- and extracellular Mg(2+) concentrations, and it was inhibited by 2-APB and NS8593 with IC50 values comparable with those for the Mg(2+) influx. Intracellular alkalization (caused by pulse application of NH4Cl) enhanced, whereas intracellular acidification (induced after the removal of NH4Cl) slowed the Mg(2+) influx. Under the whole-cell patch-clamp configuration, the removal of intracellular and extracellular divalent cations induced large inward and outward currents, MIC (Mg-inhibited cation) currents or IMIC, carried by monovalent cations likely via TRPM7 channels. IMIC measured at -120 mV was diminished to ? 50% by 100 ?M 2-APB or 10 ?M NS8593. These results suggest that TRPM7/MIC channels serve as a major physiological pathway of Mg(2+) influx in rat ventricular myocytes.
Insights
This study reveals that Transient Receptor Potential Melastatin 7 (TRPM7) channels are a primary pathway for magnesium ion (Mg2+) influx in rat heart cells. Inhibitors of these channels significantly reduced Mg2+ uptake, confirming their crucial role.
Area of Science:
- Cardiovascular Physiology
- Ion Channel Biology
- Cellular Electrophysiology
Background:
- Cytoplasmic free Mg(2+) concentration ([Mg(2+)]i) is critical for cellular function.
- Understanding the mechanisms of Mg(2+) transport in cardiac myocytes is essential for cardiovascular health.
Purpose of the Study:
- To investigate the physiological pathways responsible for Mg(2+) influx in rat ventricular myocytes.
- To characterize the role of TRPM7 channels in regulating intracellular Mg(2+) levels.
Main Methods:
- Measurement of [Mg(2+)]i using the fluorescent indicator mag-fura-2.
- Manipulation of extracellular and intracellular Mg(2+) concentrations.
- Application of TRPM7 channel inhibitors (2-APB, NS8593, spermine).
- Whole-cell patch-clamp electrophysiology to record Mg-inhibited cation (MIC) currents.
Main Results:
- [Mg(2+)]i was reduced by high K(+) solution and recovered upon perfusion with Mg(2+)-containing solution.
- Mg(2+) influx rate was inversely related to [Mg(2+)]i and sensitive to extracellular Mg(2+) levels and membrane potential.
- TRPM7 channel inhibitors significantly reduced Mg(2+) and Ni(2+) influx.
- Patch-clamp studies revealed MIC currents likely mediated by TRPM7 channels, inhibited by 2-APB and NS8593.
Conclusions:
- TRPM7 channels are a major physiological pathway for Mg(2+) influx in rat ventricular myocytes.
- These findings provide insights into the regulation of intracellular Mg(2+) homeostasis in cardiac cells.
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