Relevance of Abnormal KCNN1 Expression and Osmotic Hypersensitivity in Ewing SarcomaOpen Access

Fuest, Sebastian; Post, Christoph; Balbach, Sebastian T.; Jabar, Susanne; Neumann, Ilka; Schimmelpfennig, Sandra; Sargin, Sarah; Nass, Elke; Budde, Thomas; Kailayangiri, Sareetha; Altvater, Bianca; Ranft, Andreas; Hartmann, Wolfgang; Dirksen, Uta; Rossig, Claudia; Schwab, Albrecht; Pethő, Zoltán

Forschungsartikel (Zeitschrift) | Peer reviewed

Zusammenfassung

Ewing sarcoma (EwS) is a rare and highly malignant bone tumor occurring mainly in childhood and adolescence. Physiologically, the bone is a central hub for Ca2+ homeostasis, which is severely disturbed by osteolytic processes in EwS. Therefore, we aimed to investigate how ion transport proteins involved in Ca2+ homeostasis affect EwS pathophysiology. We characterized the expression of 22 candidate genes of Ca2+-permeable or Ca2+-regulated ion channels in three EwS cell lines and found the Ca2+-activated K+ channel KCa2.1 (KCNN1) to be exceptionally highly expressed. We revealed that KCNN1 expression is directly regulated by the disease-driving oncoprotein EWSR1-FL1. Due to its consistent overexpression in EwS, KCNN1 mRNA could be a prognostic marker in EwS. In a large cohort of EwS patients, however, KCNN1 mRNA quantity does not correlate with clinical parameters. Several functional studies including patch clamp electrophysiology revealed no evidence for KCa2.1 function in EwS cells. Thus, elevated KCNN1 expression is not translated to KCa2.1 channel activity in EwS cells. However, we found that the low K+ conductance of EwS cells renders them susceptible to hypoosmotic solutions. The absence of a relevant K+ conductance in EwS thereby provides an opportunity for hypoosmotic therapy that can be exploited during tumor surgery.

Details zur Publikation

FachzeitschriftCancers
Jahrgang / Bandnr. / Volume14
Ausgabe / Heftnr. / Issue19
Artikelnummer4819
StatusVeröffentlicht
Veröffentlichungsjahr2022
Sprache, in der die Publikation verfasst istEnglisch
StichwörterKCa2.1 channel; Ewing sarcoma; GGAA microsatellite; regulatory volume decrease

Autor*innen der Universität Münster

Altvater, Bianca
Balbach, Sebastian
Dirksen, Uta
Hartmann, Wolfgang
Kailayangiri, Sareetha
Pethö, Zoltan Denes
Ranft, Andreas
Schwab, Albrecht

Projekte, aus denen die Publikation entstanden ist

Laufzeit: 01.10.2019 - 31.03.2024 | 1. Förderperiode
Gefördert durch: DFG - Graduiertenkolleg
Art des Projekts: DFG-Hauptprojekt koordiniert an der Universität Münster