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A large-conductance (BK) potassium channel subtype affects both growth and mineralization of human osteoblasts
Neil C Henney1, Bo Li, Carole Elford
1Welsh School of Pharmacy, Cardiff Univ., UK.
Abstract:
The pharmacology of the large-conductance K(+) (BK) channel in human osteoblasts is not well defined, and its role in bone is speculative. Here we assess BK channel properties in MG63 cells and primary human osteoblasts and determine whether pharmacological modulation affects cell function. We used RT-PCR and patch-clamp methods to determine the expression of BK channel subunits and cell number assays in the absence and presence of BK channel modulators. RT-PCR showed the presence of KCNMA1, KCNMB1, KCNMB2, KCNMB3, and KCNMB4 subunits. The BK channel was voltage dependent, with a mean unitary conductance of 228.8 pS (n = 10) in cell-attached patches (140 mM K(+)/140 mM K(+)) and a conductance of 142.5 pS (n = 16) in excised outside-out and 155 pS (n = 6) in inside-out patches in 3 mM K(+)/140 mM K(+). The selectivity ratio (ratio of K(+) to Na(+) permeability) was 15:1. The channel was blocked by tetraethylammonium (TEA, 0.3 mM), iberiotoxin (5-60 nM), tetrandrine (5-30 microM), and paxilline (10 microM) and activated by isopimaric acid (20 microM). BK channel modulators affected MG63 cell numbers: TEA and tetrandrine significantly increased cell numbers at low concentrations (3 mM and 3 microM, respectively) and reduced cell numbers at higher concentrations (>10 mM and >10 microM, respectively). Neither iberiotoxin (20-300 nM) nor slotoxin (300 nM) affected cell numbers. The increase in cell numbers by TEA was blocked by isopimaric acid. TEA (0.1-3.0 mM) significantly increased mineralization in primary osteoblasts. In conclusion, the BK channel has a distinctive pharmacology and is thus a target for therapeutic strategies aimed at modulating osteoblast proliferation and function.
Insights
The large-conductance K(+) (BK) channel in human osteoblasts is pharmacologically characterized. BK channel modulators impact osteoblast proliferation and mineralization, suggesting therapeutic potential for bone conditions.
Area of Science:
- Biophysics
- Cell Biology
- Pharmacology
Background:
- The role and pharmacology of large-conductance K(+) (BK) channels in human osteoblasts remain largely undefined.
- Understanding BK channel function is crucial for exploring its potential role in bone biology.
Purpose of the Study:
- To characterize BK channel properties in MG63 cells and primary human osteoblasts.
- To investigate the effects of pharmacological modulation on osteoblast proliferation and function.
Main Methods:
- RT-PCR was used to identify BK channel subunit expression (KCNMA1, KCNMB1-4).
- Patch-clamp electrophysiology determined channel conductance and ion selectivity.
- Cell number assays and mineralization assays assessed the impact of BK channel modulators.
Main Results:
- RT-PCR confirmed the expression of multiple BK channel subunits.
- Electrophysiology revealed a voltage-dependent BK channel with specific conductance and a K(+):Na(+) selectivity ratio of 15:1.
- Tetraethylammonium (TEA) and tetrandrine modulated MG63 cell numbers, while TEA increased mineralization in primary osteoblasts.
- Iberiotoxin and slotoxin did not affect cell numbers, and isopimaric acid blocked TEA-induced proliferation.
Conclusions:
- The BK channel in human osteoblasts exhibits distinct pharmacological properties.
- Pharmacological targeting of BK channels can modulate osteoblast proliferation and mineralization.
- BK channels represent a potential therapeutic target for bone-related disorders.
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