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Harvesting Murine Alveolar Macrophages and Evaluating Cellular Activation Induced by Polyanhydride Nanoparticles
Published on: June 8, 2012
Activation of functionally protective K(+) channels by methylmercury in rat alveolar macrophages
1Institute of Toxicology, College of Medicine, National Taiwan University, Taipei, Taiwan.
Abstract:
Methylmercury (MeHg) is generally known as a neurotoxic heavy metal while its effect on alveolar macrophages is still rarely studied. In this paper, we attempted to use whole cell and cell-attached patch-clamp recording technique and fura-2 fluorescence measurement to elucidate the effects of MeHg on rat alveolar macrophages. The results showed that extracellular application of MeHg induced a transient outward current I(O)(MeHg), 10-20 s in duration, 100-1000 pA in amplitude at -40 mV associated with a marked increase in conductance. The reversal potential depended distinctly on the external K(+) concentration. Removal of external Ca(2+) as well as bath applied verapamil caused a depression of I(O)(MeHg), and intracellular dialysis with 5 mM EGTA completely abolished I(O)(MeHg). Heparin (5 mg/ml) applied by intracellular dialysis greatly accelerated a run-down of I(O)(MeHg) induced by pressure ejection of MeHg. K(+) channel blockers such as quinine, and 4-aminopyridine especially low concentrations of dequalinium and apamin, but not tetraethylammonium inhibited I(O)(MeHg). Cell-attached single-channel recordings with the pipette solution containing 145 mM KCl revealed that the activation of single-channel currents with a conductance of 12 pS could be induced by application of MeHg outside the patch. Since MeHg increased [Ca(2+)](i), in a concentration-dependent manner which was partially blocked by either verapamil or Ca(2+)-free medium containing 1 mM EGTA, it is concluded that MeHg activates a Ca(2+)-dependent K(+) conductance by an increase of [Ca(2+)](i) through an influx from outside the cells as well as mobilization from intracellular store. A possibility that this membrane hyperpolarizing K(+) current may exhibit a functioning modulator in response to the harmful cytotoxic increase in [Ca(2+)](i) caused by MeHg was tested. Accordingly, this working hypothesis is verified by an increase of MeHg-induced cytotoxicity of cultured rat alveolar macrophages through a blockade of this Ca(2+)-activated K(+) channel by dequalinium.
Insights
Methylmercury (MeHg) activates a calcium-dependent potassium channel in rat alveolar macrophages, potentially as a protective mechanism against MeHg-induced cell damage. This finding sheds light on MeHg
Area of Science:
- Cellular and Molecular Toxicology
- Immunology
- Neurotoxicology
Background:
- Methylmercury (MeHg) is a known neurotoxicant, but its effects on alveolar macrophages are understudied.
- Alveolar macrophages play a crucial role in lung immunity and defense.
Purpose of the Study:
- To investigate the impact of MeHg on rat alveolar macrophages.
- To elucidate the specific ion channel mechanisms involved in MeHg's cellular effects.
Main Methods:
- Whole-cell and cell-attached patch-clamp electrophysiology.
- Fura-2 fluorescence measurements for intracellular calcium ([Ca2+]i) detection.
- Application of various ion channel modulators and blockers.
Main Results:
- MeHg induced a transient outward potassium current (I(O)(MeHg)) in alveolar macrophages.
- This current was dependent on extracellular potassium and calcium, and was inhibited by specific K+ channel blockers.
- MeHg increased intracellular calcium ([Ca2+]i) via influx and intracellular store mobilization.
- Blockade of the MeHg-activated K+ channel increased MeHg-induced cytotoxicity.
Conclusions:
- MeHg activates a Ca2+-dependent K+ channel in rat alveolar macrophages.
- This activation is linked to an increase in intracellular calcium.
- The MeHg-activated K+ current may act as a protective mechanism against MeHg-induced cytotoxicity.

