Literature DB >> 27165704

K+ channel signaling in irradiated tumor cells.

Benjamin Stegen1, Lukas Klumpp1,2, Milan Misovic1, Lena Edalat3, Marita Eckert1, Dominik Klumpp1, Peter Ruth3, Stephan M Huber4.   

Abstract

K+ channels crosstalk with biochemical signaling cascades and regulate virtually all cellular processes by adjusting the intracellular K+ concentration, generating the membrane potential, mediating cell volume changes, contributing to Ca2+ signaling, and directly interacting within molecular complexes with membrane receptors and downstream effectors. Tumor cells exhibit aberrant expression and activity patterns of K+ channels. The upregulation of highly "oncogenic" K+ channels such as the Ca2+-activated IK channel may drive the neoplastic transformation, malignant progression, metastasis, or therapy resistance of tumor cells. In particular, ionizing radiation in doses used for fractionated radiotherapy in the clinic has been shown to activate K+ channels. Radiogenic K+ channel activity, in turn, contributes to the DNA damage response and promotes survival of the irradiated tumor cells. Tumor-specific overexpression of certain K+ channel types together with the fact that pharmacological K+ channel modulators are already in clinical use or well tolerated in clinical trials suggests that K+ channel targeting alone or in combination with radiotherapy might become a promising new strategy of anti-cancer therapy. The present article aims to review our current knowledge on K+ channel signaling in irradiated tumor cells. Moreover, it provides new data on molecular mechanisms of radiogenic K+ channel activation and downstream signaling events.

Entities:  

Keywords:  Ca2+ signalosome; Electrosignaling; Fractionated radiation therapy; Fura-2 Ca2+ imaging; Oncochannels; Patch-clamp recording

Mesh:

Substances:

Year:  2016        PMID: 27165704     DOI: 10.1007/s00249-016-1136-z

Source DB:  PubMed          Journal:  Eur Biophys J        ISSN: 0175-7571            Impact factor:   1.733


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