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Sounds Stimulation on In Vitro HL1 Cells: A Pilot Study and a Theoretical Physical Model

Mechanical vibrations seem to affect the behaviour of different cell types and the functions of different organs. Pressure waves, including acoustic waves (sounds), could affect cytoskeletal molecules via coherent changes in their spatial organization and mechano-transduction signalling. We analyzed...

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Autores principales: Dal Lin, Carlo, Radu, Claudia Maria, Vitiello, Giuseppe, Romano, Paola, Polcari, Albino, Iliceto, Sabino, Simioni, Paolo, Tona, Francesco
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7796405/
https://www.ncbi.nlm.nih.gov/pubmed/33375749
http://dx.doi.org/10.3390/ijms22010156
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author Dal Lin, Carlo
Radu, Claudia Maria
Vitiello, Giuseppe
Romano, Paola
Polcari, Albino
Iliceto, Sabino
Simioni, Paolo
Tona, Francesco
author_facet Dal Lin, Carlo
Radu, Claudia Maria
Vitiello, Giuseppe
Romano, Paola
Polcari, Albino
Iliceto, Sabino
Simioni, Paolo
Tona, Francesco
author_sort Dal Lin, Carlo
collection PubMed
description Mechanical vibrations seem to affect the behaviour of different cell types and the functions of different organs. Pressure waves, including acoustic waves (sounds), could affect cytoskeletal molecules via coherent changes in their spatial organization and mechano-transduction signalling. We analyzed the sounds spectra and their fractal features. Cardiac muscle HL1 cells were exposed to different sounds, were stained for cytoskeletal markers (phalloidin, beta-actin, alpha-tubulin, alpha-actinin-1), and studied with multifractal analysis (using FracLac for ImageJ). A single cell was live-imaged and its dynamic contractility changes in response to each different sound were analysed (using Musclemotion for ImageJ). Different sound stimuli seem to influence the contractility and the spatial organization of HL1 cells, resulting in a different localization and fluorescence emission of cytoskeletal proteins. Since the cellular behaviour seems to correlate with the fractal structure of the sound used, we speculate that it can influence the cells by virtue of the different sound waves’ geometric properties that we have photographed and filmed. A theoretical physical model is proposed to explain our results, based on the coherent molecular dynamics. We stress the role of the systemic view in the understanding of the biological activity.
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spelling pubmed-77964052021-01-10 Sounds Stimulation on In Vitro HL1 Cells: A Pilot Study and a Theoretical Physical Model Dal Lin, Carlo Radu, Claudia Maria Vitiello, Giuseppe Romano, Paola Polcari, Albino Iliceto, Sabino Simioni, Paolo Tona, Francesco Int J Mol Sci Article Mechanical vibrations seem to affect the behaviour of different cell types and the functions of different organs. Pressure waves, including acoustic waves (sounds), could affect cytoskeletal molecules via coherent changes in their spatial organization and mechano-transduction signalling. We analyzed the sounds spectra and their fractal features. Cardiac muscle HL1 cells were exposed to different sounds, were stained for cytoskeletal markers (phalloidin, beta-actin, alpha-tubulin, alpha-actinin-1), and studied with multifractal analysis (using FracLac for ImageJ). A single cell was live-imaged and its dynamic contractility changes in response to each different sound were analysed (using Musclemotion for ImageJ). Different sound stimuli seem to influence the contractility and the spatial organization of HL1 cells, resulting in a different localization and fluorescence emission of cytoskeletal proteins. Since the cellular behaviour seems to correlate with the fractal structure of the sound used, we speculate that it can influence the cells by virtue of the different sound waves’ geometric properties that we have photographed and filmed. A theoretical physical model is proposed to explain our results, based on the coherent molecular dynamics. We stress the role of the systemic view in the understanding of the biological activity. MDPI 2020-12-25 /pmc/articles/PMC7796405/ /pubmed/33375749 http://dx.doi.org/10.3390/ijms22010156 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Dal Lin, Carlo
Radu, Claudia Maria
Vitiello, Giuseppe
Romano, Paola
Polcari, Albino
Iliceto, Sabino
Simioni, Paolo
Tona, Francesco
Sounds Stimulation on In Vitro HL1 Cells: A Pilot Study and a Theoretical Physical Model
title Sounds Stimulation on In Vitro HL1 Cells: A Pilot Study and a Theoretical Physical Model
title_full Sounds Stimulation on In Vitro HL1 Cells: A Pilot Study and a Theoretical Physical Model
title_fullStr Sounds Stimulation on In Vitro HL1 Cells: A Pilot Study and a Theoretical Physical Model
title_full_unstemmed Sounds Stimulation on In Vitro HL1 Cells: A Pilot Study and a Theoretical Physical Model
title_short Sounds Stimulation on In Vitro HL1 Cells: A Pilot Study and a Theoretical Physical Model
title_sort sounds stimulation on in vitro hl1 cells: a pilot study and a theoretical physical model
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7796405/
https://www.ncbi.nlm.nih.gov/pubmed/33375749
http://dx.doi.org/10.3390/ijms22010156
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