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Updated: Mar 13, 2026

Isolation of Retinal Arterioles for Ex Vivo Cell Physiology Studies
Published on: July 14, 2018
TRPV2 Channels Contribute to Stretch-Activated Cation Currents and Myogenic Constriction in Retinal Arterioles
Mary K McGahon1, José A Fernández1, Durga P Dash1
1Centre for Experimental Medicine, Queen's University of Belfast, Belfast, United Kingdom.
Purpose:
Activation of the transient receptor potential channels, TRPC6, TRPM4, and TRPP1 (PKD2), has been shown to contribute to the myogenic constriction of cerebral arteries. In the present study we sought to determine the potential role of various mechanosensitive TRP channels to myogenic signaling in arterioles of the rat retina.
Methods:
Rat retinal arterioles were isolated for RT-PCR, Fura-2 Ca2+ microfluorimetry, patch-clamp electrophysiology, and pressure myography studies. In some experiments, confocal immunolabeling of wholemount preparations was used to examine the localization of specific mechanosensitive TRP channels in retinal vascular smooth muscle cells (VSMCs).
Results:
Reverse transcription-polymerase chain reaction analysis demonstrated mRNA expression for TRPC1, M7, V1, V2, V4, and P1, but not TRPC6 or M4, in isolated retinal arterioles. Immunolabeling revealed plasma membrane, cytosolic and nuclear expression of TRPC1, M7, V1, V2, V4, and P1 in retinal VSMCs. Hypoosmotic stretch-induced Ca2+ influx in retinal VSMCs was reversed by the TRPV2 inhibitor tranilast and the nonselective TRPP1/V2 antagonist amiloride. Inhibitors of TRPC1, M7, V1, and V4 had no effect. Hypoosmotic stretch-activated cation currents were similar in Na+ and Cs+ containing solutions suggesting no contribution by TRPP1 channels. Direct plasma membrane stretch triggered cation current activity that was blocked by tranilast and specific TRPV2 pore-blocking antibodies and mimicked by the TRPV2 activator, Δ9-tetrahydrocannabinol. Preincubation of retinal arterioles with TRPV2 blocking antibodies prevented the development of myogenic tone.
Conclusions:
Our results suggest that retinal VSMCs express a range of mechanosensitive TRP channels, but only TRPV2 appears to contribute to myogenic signaling in this vascular bed.
Insights
Transient Receptor Potential Vanilloid 2 (TRPV2) channels are key to myogenic signaling in rat retinal arterioles. While other mechanosensitive TRP channels are present, only TRPV2 activation contributes to vascular smooth muscle cell constriction.
Area of Science:
- Physiology
- Molecular Biology
- Ophthalmology
Background:
- Mechanosensitive ion channels, particularly Transient Receptor Potential (TRP) channels, regulate vascular tone.
- Previous studies implicated TRPC6, TRPM4, and TRPP1 (PKD2) in cerebral artery myogenic constriction.
- The role of specific mechanosensitive TRP channels in retinal arteriole myogenic signaling remained unclear.
Purpose of the Study:
- To investigate the involvement of various mechanosensitive TRP channels in myogenic signaling within rat retinal arterioles.
- To identify the specific TRP channel subtypes responsible for pressure-induced constriction in retinal vasculature.
Main Methods:
- Isolation of rat retinal arterioles for molecular and functional studies.
- Reverse transcription-polymerase chain reaction (RT-PCR) for gene expression analysis.
- Confocal immunolabeling to determine protein localization in retinal vascular smooth muscle cells (VSMCs).
- Patch-clamp electrophysiology and pressure myography to assess channel activity and myogenic response.
Main Results:
- mRNA expression for TRPC1, TRPM7, TRPV1, TRPV2, TRPV4, and TRPP1 was detected; TRPC6 and TRPM4 were absent.
- Immunolabeling confirmed the presence of these TRP channels in retinal VSMCs.
- Hypoosmotic stretch-induced calcium influx was inhibited by TRPV2 and TRPP1/V2 antagonists.
- Direct membrane stretch activated cation currents blocked by TRPV2 inhibitors and activators, indicating TRPV2 involvement.
- TRPV2 inhibition prevented the development of myogenic tone in retinal arterioles.
Conclusions:
- Rat retinal VSMCs express multiple mechanosensitive TRP channels.
- TRPV2 is a critical contributor to myogenic signaling in the retinal vasculature.
- Targeting TRPV2 may offer therapeutic potential for retinal vascular conditions.
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