Mechanosensitivity of the BK Channels in Human Glioblastoma Cells: Kinetics and Dynamical Complexity

被引:0
作者
Agata Wawrzkiewicz-Jałowiecka
Paulina Trybek
Łukasz Machura
Beata Dworakowska
Zbigniew J. Grzywna
机构
[1] Silesian University of Technology,Department of Physical Chemistry and Technology of Polymers, Faculty of Chemistry
[2] University of Silesia in Katowice,Division of Computational Physics and Electronics, Institute of Physics, Silesian Centre for Education and Interdisciplinary Research
[3] Warsaw University of Life Sciences – SGGW,Division of Biophysics, Department of Physics
来源
The Journal of Membrane Biology | 2018年 / 251卷
关键词
BK channels; Mechanosensitivity; Glioblastoma cells;
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摘要
BK channels are potassium selective and exhibit large single-channel conductance. They play an important physiological role in glioma cells: they are involved in cell growth and extensive migrating behavior. Due to the fact that these processes are accompanied by changes in membrane stress, here, we examine mechanosensitive properties of BK channels from human glioblastoma cells (gBK channels). Experiments were performed by the use of patch-clamp method on excised patches under membrane suction (0–40 mmHg) at membrane hyper- and depolarization. We have also checked whether channel’s activity is affected by possible changes of membrane morphology after a series of long impulses of suction. Unconventionally, we also analyzed internal structure of the experimental signal to make inferences about conformational dynamics of the channel in stressed membranes. We examined the fractal long-range memory effect (by R/S Hurst analysis), the rate of changes in information by sample entropy, or correlation dimension, and characterize its complexity over a range of scales by the use of Multiscale Entropy method. The obtained results indicate that gBK channels are mechanosensitive at membrane depolarization and hyperpolarization. Prolonged suction of membrane also influences open–closed fluctuations—it decreases channel’s activity at membrane hyperpolarization and, in contrary, increases channel’s activity at high voltages. Both membrane strain and its “fatigue” reduce dynamical complexity of channel gating, which suggest decrease in the number of available open conformations of channel protein in stressed membranes.
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页码:667 / 679
页数:12
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  • [1] Abdullaev IF(2010)Calcium-activated potassium channels BK and IK1 are functionally expressed in human gliomas but do not regulate cell proliferation PLoS ONE 5 e12304-25561
  • [2] Rudkouskaya A(2000)Characterization and gene expression of high conductance calcium-activated potassium channels displaying mechanosensitivity in human odontoblasts J Biol Chem 275 25556-484
  • [3] Mongin AA(2007)Calcium does not change memory in single calcium-activated potassium channel kinetics J Intell Fuzzy Syst 5 477-980
  • [4] Kuo YH(1986)Correcting single channel data for missed events Biophys J 49 967-22
  • [5] Allard B(2006)Long-term correlation in single calcium-activated potassium channel kinetics Phys A 364 13-875
  • [6] Couble M-L(2005)Multiscale entropy analysis of biological signals Phys Rev E 71 021906-92
  • [7] Magloire H(2008)Molecular mechanism of BK channel activation Cell Mol Life Sci 66 852-424
  • [8] Bleicher F(1993)Membrane stretch activates a high-conductance K J Membr Biol 131 81-714
  • [9] Barbosa CTF(1993) channel in G292 osteoblastic-like cells Phys D 69 404-24
  • [10] Campos de Oliveira RA(2015)Estimating correlation dimension from a chaotic time series: when does plateau onset occur? Front Comput Neurosci 9 64-1317