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Updated: May 8, 2026

Profiling Voltage-gated Potassium Channel mRNA Expression in Nigral Neurons using Single-cell RT-PCR Techniques
Published on: September 27, 2011
PIST (GOPC) modulates the oncogenic voltage-gated potassium channel KV10.1
Solveig Herrmann1, Milena Ninkovic, Tobias Kohl
1AG Oncophysiology, Max-Planck Institute of Experimental Medicine Göttingen, Germany.
Abstract:
Although crucial for their correct function, the mechanisms controlling surface expression of ion channels are poorly understood. In the case of the voltage-gated potassium channel KV10.1, this is determinant not only for its physiological function in brain, but also for its pathophysiology in tumors and possible use as a therapeutic target. The Golgi resident protein PIST binds several membrane proteins, thereby modulating their expression. Here we describe a PDZ domain-mediated interaction of KV10.1 and PIST, which enhances surface levels of KV10.1. The functional, but not the physical interaction of both proteins is dependent on the coiled-coil and PDZ domains of PIST; insertion of eight amino acids in the coiled-coil domain to render the neural form of PIST (nPIST) and the corresponding short isoform in an as-of-yet unknown form abolishes the effect. In addition, two new isoforms of PIST (sPIST and nsPIST) lacking nearly the complete PDZ domain were cloned and shown to be ubiquitously expressed. PIST and KV10.1 co-precipitate from native and expression systems. nPIST also showed interaction, but did not alter the functional expression of the channel. We could not document physical interaction between KV10.1 and sPIST, but it reduced KV10.1 functional expression in a dominant-negative manner. nsPIST showed weak physical interaction and no functional effect on KV10.1. We propose these isoforms to work as modulators of PIST function via regulating the binding on interaction partners.
Insights
The protein PIST enhances surface expression of the potassium channel KV10.1 through a PDZ domain interaction. Different PIST isoforms modulate this effect, impacting KV10.1 function in the brain and tumors.
Area of Science:
- Molecular Biology
- Neuroscience
- Cell Biology
Background:
- Mechanisms controlling ion channel surface expression are poorly understood.
- The voltage-gated potassium channel KV10.1 is crucial for brain function and implicated in tumors.
- PIST, a Golgi-resident protein, modulates membrane protein expression.
Purpose of the Study:
- To investigate the interaction between KV10.1 and PIST.
- To elucidate how PIST influences KV10.1 surface expression.
- To characterize the role of different PIST isoforms in KV10.1 regulation.
Main Methods:
- Co-immunoprecipitation assays to detect protein interactions.
- Functional expression studies of KV10.1 in the presence of PIST and its isoforms.
- Cloning and characterization of novel PIST isoforms (sPIST, nsPIST).
Main Results:
- A PDZ domain-mediated interaction between PIST and KV10.1 enhances KV10.1 surface levels.
- The neural isoform of PIST (nPIST) interacts with KV10.1 but does not affect its functional expression.
- The sPIST isoform, lacking a PDZ domain, inhibits KV10.1 functional expression in a dominant-negative manner.
- The nsPIST isoform shows weak interaction and no functional effect on KV10.1.
Conclusions:
- PIST enhances KV10.1 surface expression via a specific interaction.
- PIST isoforms differentially regulate KV10.1 functional expression.
- These findings suggest PIST isoforms act as modulators of PIST function by controlling interactions with partners like KV10.1.
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