Scanning Ion Conductance Microscopy for Studying Biological Samples
Scanning ion conductance microscopy (SICM) is a scanning probe technique that utilizes the increase in access resistance that occurs if an electrolyte filled glass micro-pipette is approached towards a poorly conducting surface. Since an increase in resistance can be monitored before the physical co...
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2012-11-01
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Online Access: | http://www.mdpi.com/1424-8220/12/11/14983 |
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doaj-a07d751343e940f3ae8f279b0e5991bf2020-11-25T01:41:37ZengMDPI AGSensors1424-82202012-11-011211149831500810.3390/s121114983Scanning Ion Conductance Microscopy for Studying Biological SamplesIrmgard D. DietzelPatrick HappelDenis ThatenhorstScanning ion conductance microscopy (SICM) is a scanning probe technique that utilizes the increase in access resistance that occurs if an electrolyte filled glass micro-pipette is approached towards a poorly conducting surface. Since an increase in resistance can be monitored before the physical contact between scanning probe tip and sample, this technique is particularly useful to investigate the topography of delicate samples such as living cells. SICM has shown its potential in various applications such as high resolution and long-time imaging of living cells or the determination of local changes in cellular volume. Furthermore, SICM has been combined with various techniques such as fluorescence microscopy or patch clamping to reveal localized information about proteins or protein functions. This review details the various advantages and pitfalls of SICM and provides an overview of the recent developments and applications of SICM in biological imaging. Furthermore, we show that in principle, a combination of SICM and ion selective micro-electrodes enables one to monitor the local ion activity surrounding a living cell.http://www.mdpi.com/1424-8220/12/11/14983scanning ion conductance microscopylive cell imagingion selectivemicro-electrodes |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Irmgard D. Dietzel Patrick Happel Denis Thatenhorst |
spellingShingle |
Irmgard D. Dietzel Patrick Happel Denis Thatenhorst Scanning Ion Conductance Microscopy for Studying Biological Samples Sensors scanning ion conductance microscopy live cell imaging ion selectivemicro-electrodes |
author_facet |
Irmgard D. Dietzel Patrick Happel Denis Thatenhorst |
author_sort |
Irmgard D. Dietzel |
title |
Scanning Ion Conductance Microscopy for Studying Biological Samples |
title_short |
Scanning Ion Conductance Microscopy for Studying Biological Samples |
title_full |
Scanning Ion Conductance Microscopy for Studying Biological Samples |
title_fullStr |
Scanning Ion Conductance Microscopy for Studying Biological Samples |
title_full_unstemmed |
Scanning Ion Conductance Microscopy for Studying Biological Samples |
title_sort |
scanning ion conductance microscopy for studying biological samples |
publisher |
MDPI AG |
series |
Sensors |
issn |
1424-8220 |
publishDate |
2012-11-01 |
description |
Scanning ion conductance microscopy (SICM) is a scanning probe technique that utilizes the increase in access resistance that occurs if an electrolyte filled glass micro-pipette is approached towards a poorly conducting surface. Since an increase in resistance can be monitored before the physical contact between scanning probe tip and sample, this technique is particularly useful to investigate the topography of delicate samples such as living cells. SICM has shown its potential in various applications such as high resolution and long-time imaging of living cells or the determination of local changes in cellular volume. Furthermore, SICM has been combined with various techniques such as fluorescence microscopy or patch clamping to reveal localized information about proteins or protein functions. This review details the various advantages and pitfalls of SICM and provides an overview of the recent developments and applications of SICM in biological imaging. Furthermore, we show that in principle, a combination of SICM and ion selective micro-electrodes enables one to monitor the local ion activity surrounding a living cell. |
topic |
scanning ion conductance microscopy live cell imaging ion selectivemicro-electrodes |
url |
http://www.mdpi.com/1424-8220/12/11/14983 |
work_keys_str_mv |
AT irmgardddietzel scanningionconductancemicroscopyforstudyingbiologicalsamples AT patrickhappel scanningionconductancemicroscopyforstudyingbiologicalsamples AT denisthatenhorst scanningionconductancemicroscopyforstudyingbiologicalsamples |
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