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Isolation of Retinal Arterioles for Ex Vivo Cell Physiology Studies
Published on: July 14, 2018
Diabetes downregulates large-conductance Ca2+-activated potassium beta 1 channel subunit in retinal arteriolar smooth
Mary K McGahon1, Durga P Dash, Aruna Arora
1Centre for Vision Sciences, School of Biomedical Sciences, The Queen's University of Belfast, Institute of Clinical Sciences, The Royal Victoria Hospital, Grosvenor Road, Belfast BT12 6BA, Northern Ireland.
Abstract:
Retinal vasoconstriction and reduced retinal blood flow precede the onset of diabetic retinopathy. The pathophysiological mechanisms that underlie increased retinal arteriolar tone during diabetes remain unclear. Normally, local Ca(2+) release events (Ca(2+)-sparks), trigger the activation of large-conductance Ca(2+)-activated K(+)(BK)-channels which hyperpolarize and relax vascular smooth muscle cells, thereby causing vasodilatation. In the present study, we examined BK channel function in retinal vascular smooth muscle cells from streptozotocin-induced diabetic rats. The BK channel inhibitor, Penitrem A, constricted nondiabetic retinal arterioles (pressurized to 70mmHg) by 28%. The BK current evoked by caffeine was dramatically reduced in retinal arterioles from diabetic animals even though caffeine-evoked [Ca(2+)](i) release was unaffected. Spontaneous BK currents were smaller in diabetic cells, but the amplitude of Ca(2+)-sparks was larger. The amplitudes of BK currents elicited by depolarizing voltage steps were similar in control and diabetic arterioles and mRNA expression of the pore-forming BKalpha subunit was unchanged. The Ca(2+)-sensitivity of single BK channels from diabetic retinal vascular smooth muscle cells was markedly reduced. The BKbeta1 subunit confers Ca(2+)-sensitivity to BK channel complexes and both transcript and protein levels for BKbeta1 were appreciably lower in diabetic retinal arterioles. The mean open times and the sensitivity of BK channels to tamoxifen were decreased in diabetic cells, consistent with a downregulation of BKbeta1 subunits. The potency of blockade by Pen A was lower for BK channels from diabetic animals. Thus, changes in the molecular composition of BK channels could account for retinal hypoperfusion in early diabetes, an idea having wider implications for the pathogenesis of diabetic hypertension.
Insights
Reduced function of large-conductance Ca(2+)-activated K(+) (BK) channels in retinal blood vessels contributes to diabetic retinopathy. This dysfunction, linked to lower BKbeta1 subunit levels, impairs blood flow and may drive diabetic hypertension.
Area of Science:
- Cardiovascular Research
- Ophthalmology
- Diabetology
Background:
- Diabetic retinopathy is preceded by retinal vasoconstriction and reduced blood flow.
- The mechanisms behind increased retinal arteriolar tone in diabetes are not fully understood.
- Large-conductance Ca(2+)-activated K(+) (BK) channels normally promote vasodilation by relaxing vascular smooth muscle cells.
Purpose of the Study:
- To investigate BK channel function in retinal vascular smooth muscle cells from diabetic rats.
- To determine the molecular basis for altered BK channel activity in early diabetes.
- To explore the implications for diabetic retinopathy and hypertension.
Main Methods:
- Utilized streptozotocin-induced diabetic rat model.
- Examined BK channel currents and Ca(2+) signaling in isolated retinal arterioles.
- Assessed BK channel subunit expression (BKalpha, BKbeta1) via mRNA and protein levels.
- Measured BK channel activity using patch-clamp electrophysiology and pharmacological agents.
Main Results:
- BK channel inhibitor Penitrem A constricted nondiabetic arterioles but showed reduced potency in diabetic ones.
- Caffeine-evoked BK currents were significantly reduced in diabetic retinal arterioles.
- Ca(2+) spark amplitude increased, while spontaneous BK currents decreased in diabetic cells.
- Ca(2+) sensitivity of single BK channels was markedly reduced in diabetic cells, correlating with lower BKbeta1 subunit expression.
- mRNA levels of BKalpha subunit remained unchanged.
Conclusions:
- Downregulation of the BKbeta1 subunit in retinal vascular smooth muscle cells reduces BK channel Ca(2+) sensitivity.
- Altered BK channel molecular composition contributes to retinal hypoperfusion in early diabetes.
- This BK channel dysfunction may play a role in the pathogenesis of diabetic hypertension.
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