PIST (GOPC) modulates the oncogenic voltage-gated potassium channel KV10.1

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...

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Main Authors: Solveig eHerrmann, Milena eNinkovic, Tobias eKohl, Luis A Pardo
Format: Article
Language:English
Published: Frontiers Media S.A. 2013-08-01
Series:Frontiers in Physiology
Subjects:
Online Access:http://journal.frontiersin.org/Journal/10.3389/fphys.2013.00201/full
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spelling doaj-3e2f327aae9349dd88a74c002d28d5f32020-11-24T22:33:43ZengFrontiers Media S.A.Frontiers in Physiology1664-042X2013-08-01410.3389/fphys.2013.0020155949PIST (GOPC) modulates the oncogenic voltage-gated potassium channel KV10.1Solveig eHerrmann0Solveig eHerrmann1Milena eNinkovic2Tobias eKohl3Luis A Pardo4Luis A Pardo5Max-Planck-Institute of Experimental MedicineMax-Planck-Institute of Experimental MedicineMax-Planck-Institute of Experimental MedicineMax-Planck-Institute of Experimental MedicineMax-Planck-Institute of Experimental MedicineMax-Planck-Institute of Experimental MedicineAlthough 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 KV10.1and PIST, which enhances surface levels ofKV10.1. 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. nPISTalso showed interaction, but did not alter the functional expression of the channel. We could not document physical interaction betweenKV10.1 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.http://journal.frontiersin.org/Journal/10.3389/fphys.2013.00201/fullPotassium ChannelstraffickingGOPCKV10.1KCNH1PIST
collection DOAJ
language English
format Article
sources DOAJ
author Solveig eHerrmann
Solveig eHerrmann
Milena eNinkovic
Tobias eKohl
Luis A Pardo
Luis A Pardo
spellingShingle Solveig eHerrmann
Solveig eHerrmann
Milena eNinkovic
Tobias eKohl
Luis A Pardo
Luis A Pardo
PIST (GOPC) modulates the oncogenic voltage-gated potassium channel KV10.1
Frontiers in Physiology
Potassium Channels
trafficking
GOPC
KV10.1
KCNH1
PIST
author_facet Solveig eHerrmann
Solveig eHerrmann
Milena eNinkovic
Tobias eKohl
Luis A Pardo
Luis A Pardo
author_sort Solveig eHerrmann
title PIST (GOPC) modulates the oncogenic voltage-gated potassium channel KV10.1
title_short PIST (GOPC) modulates the oncogenic voltage-gated potassium channel KV10.1
title_full PIST (GOPC) modulates the oncogenic voltage-gated potassium channel KV10.1
title_fullStr PIST (GOPC) modulates the oncogenic voltage-gated potassium channel KV10.1
title_full_unstemmed PIST (GOPC) modulates the oncogenic voltage-gated potassium channel KV10.1
title_sort pist (gopc) modulates the oncogenic voltage-gated potassium channel kv10.1
publisher Frontiers Media S.A.
series Frontiers in Physiology
issn 1664-042X
publishDate 2013-08-01
description 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 KV10.1and PIST, which enhances surface levels ofKV10.1. 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. nPISTalso showed interaction, but did not alter the functional expression of the channel. We could not document physical interaction betweenKV10.1 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.
topic Potassium Channels
trafficking
GOPC
KV10.1
KCNH1
PIST
url http://journal.frontiersin.org/Journal/10.3389/fphys.2013.00201/full
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