Stimulation of TRPC5 cationic channels by low micromolar concentrations of lead ions (Pb2+)
Piruthivi Sukumar1, David J Beech
1Multidisciplinary Cardiovascular Research Centre and Institute of Membrane & Systems Biology, Faculty of Biological Sciences, University of Leeds, Leeds LS2 9JT, England, UK.
Abstract:
Lead toxicity is long-recognised but continues to be a major public health problem. Its effects are wide-ranging and include induction of hyper-anxiety states. In general it is thought to act by interfering with Ca(2+) signalling but specific targets are not clearly identified. Transient receptor potential canonical 5 (TRPC5) is a Ca(2+)-permeable ion channel that is linked positively to innate fear responses and unusual amongst ion channels in being stimulated by trivalent lanthanides, which include gadolinium. Here we show investigation of the effect of lead, which is a divalent ion (Pb(2+)). Intracellular Ca(2+) and whole-cell patch-clamp recordings were performed on HEK 293 cells conditionally over-expressing TRPC5 or other TRP channels. Extracellular application of Pb(2+) stimulated TRPC5 at concentrations greater than 1 microM. Control cells without TRPC5 showed little or no response to Pb(2+) and expression of other TRP channels (TRPM2 or TRPM3) revealed partial inhibition by 10 microM Pb(2+). The stimulatory effect on TRPC5 depended on an extracellular residue (E543) near the ion pore: similar to gadolinium action, E543Q TRPC5 was resistant to Pb(2+) but showed normal stimulation by the receptor agonist sphingosine-1-phosphate. The study shows that Pb(2+) is a relatively potent stimulator of the TRPC5 channel, generating the hypothesis that a function of the channel is to sense metal ion poisoning.
Insights
Lead (Pb2+) exposure stimulates the TRPC5 ion channel, a key player in fear responses. This finding suggests TRPC5 may function to detect metal ion poisoning.
Area of Science:
- Neuroscience
- Toxicology
- Ion Channel Physiology
Background:
- Lead toxicity is a persistent public health issue with diverse effects, including anxiety.
- The precise molecular targets of lead (Pb2+) remain unclear, though calcium (Ca2+) signaling interference is implicated.
- Transient Receptor Potential Canonical 5 (TRPC5) channels are Ca2+-permeable and linked to fear, notably activated by trivalent lanthanides.
Purpose of the Study:
- To investigate the effect of divalent lead ions (Pb2+) on the TRPC5 ion channel.
- To determine if TRPC5 is a direct target of lead toxicity.
- To explore the potential role of TRPC5 in sensing metal ion poisoning.
Main Methods:
- HEK 293 cells conditionally over-expressing TRPC5 or other TRP channels were used.
- Intracellular Ca2+ and whole-cell patch-clamp recordings were performed.
- The impact of extracellular Pb2+ on TRPC5 activity was assessed.
Main Results:
- Extracellular Pb2+ stimulated TRPC5 at concentrations above 1 microM.
- Cells lacking TRPC5 showed minimal response to Pb2+; other TRP channels (TRPM2, TRPM3) were partially inhibited.
- A specific extracellular residue (E543) on TRPC5 was critical for Pb2+ stimulation, similar to gadolinium's effect.
Conclusions:
- Pb2+ is a potent stimulator of the TRPC5 ion channel.
- This study provides evidence that TRPC5 may serve as a sensor for metal ion poisoning.
- Understanding TRPC5's role in lead toxicity could inform new therapeutic strategies.
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