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Updated: Jun 7, 2026

Single-Cell Calcium Imaging for Studying the Activation of Calcium Ion Channels
Published on: December 13, 2024
A helix-breaking mutation in the epithelial Ca(2+) channel TRPV5 leads to reduced Ca(2+)-dependent inactivation
Kyu Pil Lee1, Anil V Nair, Christian Grimm
1Department of Physiology, Radboud University Nijmegen Medical Centre, The Netherlands.
Abstract:
TRPV5, a member of transient receptor potential (TRP) superfamily of ion channels, plays a crucial role in epithelial calcium transport in the kidney. This channel has a high selectivity for Ca(2+) and is tightly regulated by intracellular Ca(2+) concentrations. Recently it was shown that the molecular basis of deafness in varitint-waddler mouse is the result of hair cell death caused by the constitutive activity of transient receptor potential mucolipin 3 (TRPML3) channel carrying a helix breaking mutation, A419P, at the intracellular proximity of the fifth transmembrane domain (TM5). This mutation significantly elevates intracellular Ca(2+) concentration and causes rapid cell death. Here we show that substituting the equivalent location in TRPV5, the M490, to proline significantly modulates Ca(2+)-dependent inactivation of TRPV5. The single channel conductance, time constant of inactivation (τ) and half maximal inhibition constant (IC(50)) of TRPV5(M490P) were increased compared to TRPV5(WT). Moreover TRPV5(M490P) showed lower Ca(2+) permeability. Out of different point mutations created to characterize the importance of M490 in Ca(2+)-dependent inactivation, only TRPV5(M490P)-expressing cells showed apoptosis and extremely altered Ca(2+)-dependent inactivation. In conclusion, the TRPV5 channel is susceptible for helix breaking mutations and the proximal intracellular region of TM5 of this channel plays an important role in Ca(2+)-dependent inactivation.
Insights
Introducing a helix-breaking mutation in TRPV5 channels, akin to those causing deafness, significantly alters calcium-dependent inactivation and channel function. This highlights the TM5 region
Area of Science:
- Molecular biology
- Ion channel physiology
- Renal calcium transport
Background:
- Transient receptor potential vanilloid 5 (TRPV5) is vital for kidney calcium reabsorption.
- TRPV5 function is regulated by intracellular calcium (Ca2+).
- A similar mutation in TRPML3 causes deafness via constitutive channel activity and cell death.
Purpose of the Study:
- To investigate the role of the M490 residue in TRPV5, analogous to a deafness-associated mutation.
- To determine the impact of a proline substitution at M490 on TRPV5 Ca2+-dependent inactivation.
Main Methods:
- Site-directed mutagenesis to create TRPV5(M490P) and other point mutations.
- Electrophysiological recordings (single-channel conductance, inactivation time constants).
- Measurement of Ca2+ permeability and cell apoptosis assays.
Main Results:
- TRPV5(M490P) exhibited altered Ca2+-dependent inactivation kinetics, increased single-channel conductance, and a higher IC50.
- TRPV5(M490P) displayed reduced Ca2+ permeability compared to wild-type TRPV5.
- TRPV5(M490P) expression induced apoptosis and significantly disrupted Ca2+-dependent inactivation.
Conclusions:
- The TRPV5 channel is sensitive to helix-breaking mutations.
- The intracellular region near TM5 is critical for TRPV5 Ca2+-dependent inactivation.
- Mutations mimicking deafness-associated alterations can profoundly affect TRPV5 channel function and cell viability.
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