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Published on: September 1, 2015
A novel dephosphorylation-activated conductance in a mouse renal collecting duct cell line
S Laycock1, H C Taylor, C Haigh
1Department of Biomedical Science, University of Sheffield, Sheffield, UK.
Abstract:
Autosomal dominant polycystic kidney disease (ADPKD) is one of the most common inherited renal diseases. It is associated with the progressive development of renal tubular cysts, which may subsequently lead to renal failure. Studies into the genetic basis of ADPKD have identified two genes, PKD1 and PKD2, that are mutated in ADPKD patients. The PKD1 and PKD2 genes encode for two different proteins, TRPP1 and TRPP2. Previous studies have demonstrated the presence of both TRPP1 and TRPP2 in the renal collecting duct cell line M8. The aim of the following study was to investigate the functional properties of cation currents in these cells and to examine the effect of overexpression of TRPP1 using a transgenic cell model (M7). In M8 cells, initial whole cell currents were low. However, over time there was activation of a flow-sensitive current, which was inhibited by gadolinium (I(Gd)). The I(Gd) was more selective for cations over anions, but did not discriminate between monovalent cations and was Ca2+ permeable. Activation of I(Gd) was dependent on the presence of Ca2+ and also required dephosphorylation. The protein phosphatase 2A inhibitor okadaic acid prevented activation of I(Gd), suggesting that protein phosphatase 2A plays an important role in channel activation. The properties and magnitude of I(Gd) were unaffected in M7 cells, suggesting that overexpression of TRPP1 was without effect. I(Gd) was selectively inhibited by an antibody raised against the C-terminus of TRPP2. However, its selectivity profile was different to TRPP2, suggesting that it is attributable to a TRPP2-like channel or a TRPP2-containing heteromeric channel. In conclusion, these data describe the functional identification of a novel dephosphorylation- and flow-activated TRPP2-related channel in mouse collecting duct cells.
Insights
Researchers identified a novel TRPP2-related cation channel in mouse kidney cells that is activated by fluid flow and dephosphorylation. This finding offers new insights into autosomal dominant polycystic kidney disease (ADPKD) mechanisms.
Area of Science:
- Nephrology
- Molecular Biology
- Ion Channel Physiology
Background:
- Autosomal dominant polycystic kidney disease (ADPKD) is a common inherited renal disorder characterized by cyst development and potential renal failure.
- Mutations in PKD1 and PKD2 genes, encoding TRPP1 and TRPP2 proteins, are implicated in ADPKD.
- TRPP1 and TRPP2 have been previously detected in renal collecting duct M8 cells.
Purpose of the Study:
- To investigate the functional properties of cation currents in M8 cells.
- To examine the impact of TRPP1 overexpression on these currents using a transgenic M7 cell model.
Main Methods:
- Whole-cell patch-clamp electrophysiology was used to record cation currents in M8 and M7 cells.
- Functional properties, including flow sensitivity, ion selectivity, and activation/inhibition mechanisms, were analyzed.
- Specific inhibitors (gadolinium, okadaic acid) and antibodies targeting TRPP2 were employed.
Main Results:
- M8 cells exhibited a low basal current that activated over time into a flow-sensitive current (I(Gd)).
- This I(Gd) was cation-selective, Ca2+ permeable, and dependent on Ca2+ and dephosphorylation.
- Okadaic acid inhibited I(Gd) activation, implicating protein phosphatase 2A. Overexpression of TRPP1 in M7 cells did not alter I(Gd).
- I(Gd) was inhibited by an anti-TRPP2 antibody but displayed different selectivity, suggesting a TRPP2-like or TRPP2-containing channel.
Conclusions:
- A novel dephosphorylation- and flow-activated TRPP2-related channel was functionally identified in mouse collecting duct cells.
- This channel's properties differ from canonical TRPP2, suggesting a unique functional role or heteromeric assembly.
- The findings provide new molecular insights into renal ion transport relevant to ADPKD pathogenesis.

