Scanning ion conductance microscopy: A convergent high-resolution technology for multi-parametric analysis of living cardiovascular cells

Cardiovascular diseases are complex pathologies that include alterations of various cell functions at the levels of intact tissue, single cells and subcellular signalling compartments. Conventional techniques to study these processes are extremely divergent and rely on a combination of individual me...

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Published in:Journal of the Royal Society Interface
Main Author: Miragoli M.; Moshkov A.; Novak P.; Shevchuk A.; Nikolaev V.O.; El-Hamamsy I.; Potter C.M.F.; Wright P.; Sheikh Abdul Kadir S.H.; Lyon A.R.; Mitchell J.A.; Chester A.H.; Klenerman D.; Lab M.J.; Korchev Y.E.; Harding S.E.; Gorelik J.
Format: Review
Language:English
Published: 2011
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-79958062246&doi=10.1098%2frsif.2010.0597&partnerID=40&md5=e5449a1ced19a0b8a266a9400d63f0d1
id 2-s2.0-79958062246
spelling 2-s2.0-79958062246
Miragoli M.; Moshkov A.; Novak P.; Shevchuk A.; Nikolaev V.O.; El-Hamamsy I.; Potter C.M.F.; Wright P.; Sheikh Abdul Kadir S.H.; Lyon A.R.; Mitchell J.A.; Chester A.H.; Klenerman D.; Lab M.J.; Korchev Y.E.; Harding S.E.; Gorelik J.
Scanning ion conductance microscopy: A convergent high-resolution technology for multi-parametric analysis of living cardiovascular cells
2011
Journal of the Royal Society Interface
8
60
10.1098/rsif.2010.0597
https://www.scopus.com/inward/record.uri?eid=2-s2.0-79958062246&doi=10.1098%2frsif.2010.0597&partnerID=40&md5=e5449a1ced19a0b8a266a9400d63f0d1
Cardiovascular diseases are complex pathologies that include alterations of various cell functions at the levels of intact tissue, single cells and subcellular signalling compartments. Conventional techniques to study these processes are extremely divergent and rely on a combination of individual methods, which usually provide spatially and temporally limited information on single parameters of interest. This review describes scanning ion conductance microscopy (SICM) as a novel versatile technique capable of simultaneously reporting various structural and functional parameters at nanometre resolution in living cardiovascular cells at the level of the whole tissue, single cells and at the subcellular level, to investigate the mechanisms of cardiovascular disease. SICM is a multimodal imaging technology that allows concurrent and dynamic analysis of membrane morphology and various functional parameters (cell volume, membrane potentials, cellular contraction, single ion-channel currents and some parameters of intracellular signalling) in intact living cardiovascular cells and tissues with nanometre resolution at different levels of organization (tissue, cellular and subcellular levels). Using this technique, we showed that at the tissue level, cell orientation in the inner and outer aortic arch distinguishes atheroprone and atheroprotected regions. At the cellular level, heart failure leads to a pronounced loss of T-tubules in cardiac myocytes accompanied by a reduction in Z-groove ratio. We also demonstrated the capability of SICM to measure the entire cell volume as an index of cellular hypertrophy. This method can be further combined with fluorescence to simultaneously measure cardiomyocyte contraction and intracellular calcium transients or to map subcellular localization of membrane receptors coupled to cyclic adenosine monophosphate production. The SICM pipette can be used for patch-clamp recordings of membrane potential and single channel currents. In conclusion, SICM provides a highly informative multimodal imaging platform for functional analysis of the mechanisms of cardiovascular diseases, which should facilitate identification of novel therapeutic strategies. © 2011 The Royal Society.

17425662
English
Review
All Open Access; Green Open Access; Hybrid Gold Open Access
author Miragoli M.; Moshkov A.; Novak P.; Shevchuk A.; Nikolaev V.O.; El-Hamamsy I.; Potter C.M.F.; Wright P.; Sheikh Abdul Kadir S.H.; Lyon A.R.; Mitchell J.A.; Chester A.H.; Klenerman D.; Lab M.J.; Korchev Y.E.; Harding S.E.; Gorelik J.
spellingShingle Miragoli M.; Moshkov A.; Novak P.; Shevchuk A.; Nikolaev V.O.; El-Hamamsy I.; Potter C.M.F.; Wright P.; Sheikh Abdul Kadir S.H.; Lyon A.R.; Mitchell J.A.; Chester A.H.; Klenerman D.; Lab M.J.; Korchev Y.E.; Harding S.E.; Gorelik J.
Scanning ion conductance microscopy: A convergent high-resolution technology for multi-parametric analysis of living cardiovascular cells
author_facet Miragoli M.; Moshkov A.; Novak P.; Shevchuk A.; Nikolaev V.O.; El-Hamamsy I.; Potter C.M.F.; Wright P.; Sheikh Abdul Kadir S.H.; Lyon A.R.; Mitchell J.A.; Chester A.H.; Klenerman D.; Lab M.J.; Korchev Y.E.; Harding S.E.; Gorelik J.
author_sort Miragoli M.; Moshkov A.; Novak P.; Shevchuk A.; Nikolaev V.O.; El-Hamamsy I.; Potter C.M.F.; Wright P.; Sheikh Abdul Kadir S.H.; Lyon A.R.; Mitchell J.A.; Chester A.H.; Klenerman D.; Lab M.J.; Korchev Y.E.; Harding S.E.; Gorelik J.
title Scanning ion conductance microscopy: A convergent high-resolution technology for multi-parametric analysis of living cardiovascular cells
title_short Scanning ion conductance microscopy: A convergent high-resolution technology for multi-parametric analysis of living cardiovascular cells
title_full Scanning ion conductance microscopy: A convergent high-resolution technology for multi-parametric analysis of living cardiovascular cells
title_fullStr Scanning ion conductance microscopy: A convergent high-resolution technology for multi-parametric analysis of living cardiovascular cells
title_full_unstemmed Scanning ion conductance microscopy: A convergent high-resolution technology for multi-parametric analysis of living cardiovascular cells
title_sort Scanning ion conductance microscopy: A convergent high-resolution technology for multi-parametric analysis of living cardiovascular cells
publishDate 2011
container_title Journal of the Royal Society Interface
container_volume 8
container_issue 60
doi_str_mv 10.1098/rsif.2010.0597
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-79958062246&doi=10.1098%2frsif.2010.0597&partnerID=40&md5=e5449a1ced19a0b8a266a9400d63f0d1
description Cardiovascular diseases are complex pathologies that include alterations of various cell functions at the levels of intact tissue, single cells and subcellular signalling compartments. Conventional techniques to study these processes are extremely divergent and rely on a combination of individual methods, which usually provide spatially and temporally limited information on single parameters of interest. This review describes scanning ion conductance microscopy (SICM) as a novel versatile technique capable of simultaneously reporting various structural and functional parameters at nanometre resolution in living cardiovascular cells at the level of the whole tissue, single cells and at the subcellular level, to investigate the mechanisms of cardiovascular disease. SICM is a multimodal imaging technology that allows concurrent and dynamic analysis of membrane morphology and various functional parameters (cell volume, membrane potentials, cellular contraction, single ion-channel currents and some parameters of intracellular signalling) in intact living cardiovascular cells and tissues with nanometre resolution at different levels of organization (tissue, cellular and subcellular levels). Using this technique, we showed that at the tissue level, cell orientation in the inner and outer aortic arch distinguishes atheroprone and atheroprotected regions. At the cellular level, heart failure leads to a pronounced loss of T-tubules in cardiac myocytes accompanied by a reduction in Z-groove ratio. We also demonstrated the capability of SICM to measure the entire cell volume as an index of cellular hypertrophy. This method can be further combined with fluorescence to simultaneously measure cardiomyocyte contraction and intracellular calcium transients or to map subcellular localization of membrane receptors coupled to cyclic adenosine monophosphate production. The SICM pipette can be used for patch-clamp recordings of membrane potential and single channel currents. In conclusion, SICM provides a highly informative multimodal imaging platform for functional analysis of the mechanisms of cardiovascular diseases, which should facilitate identification of novel therapeutic strategies. © 2011 The Royal Society.
publisher
issn 17425662
language English
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accesstype All Open Access; Green Open Access; Hybrid Gold Open Access
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