Biophysics and Modeling of Mechanotransduction in Neurons: A Review
Mechanosensing is a key feature through which organisms can receive inputs from the environment and convert them into specific functional and behavioral outputs. Mechanosensation occurs in many cells and tissues, regulating a plethora of molecular processes based on the distribution of forces and st...
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doaj-bc16226bcc3f4056a8bfcf644f6c7f362021-02-07T00:03:07ZengMDPI AGMathematics2227-73902021-02-01932332310.3390/math9040323Biophysics and Modeling of Mechanotransduction in Neurons: A ReviewMartina Nicoletti0Letizia Chiodo1Alessandro Loppini2Nonlinear Physics and Mathematical Models Research Unit, Engineering Department, Campus Bio-Medico University of Rome, Via Á. del Portillo 21, 00128 Rome, ItalyNonlinear Physics and Mathematical Models Research Unit, Engineering Department, Campus Bio-Medico University of Rome, Via Á. del Portillo 21, 00128 Rome, ItalyNonlinear Physics and Mathematical Models Research Unit, Engineering Department, Campus Bio-Medico University of Rome, Via Á. del Portillo 21, 00128 Rome, ItalyMechanosensing is a key feature through which organisms can receive inputs from the environment and convert them into specific functional and behavioral outputs. Mechanosensation occurs in many cells and tissues, regulating a plethora of molecular processes based on the distribution of forces and stresses both at the cell membrane and at the intracellular organelles levels, through complex interactions between cells’ microstructures, cytoskeleton, and extracellular matrix. Although several primary and secondary mechanisms have been shown to contribute to mechanosensation, a fundamental pathway in simple organisms and mammals involves the presence of specialized sensory neurons and the presence of different types of mechanosensitive ion channels on the neuronal cell membrane. In this contribution, we present a review of the main ion channels which have been proven to be significantly involved in mechanotransduction in neurons. Further, we discuss recent studies focused on the biological mechanisms and modeling of mechanosensitive ion channels’ gating, and on mechanotransduction modeling at different scales and levels of details.https://www.mdpi.com/2227-7390/9/4/323mechanosensingmechanotransductionion channelsneuronsmodelingatomistic modeling |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Martina Nicoletti Letizia Chiodo Alessandro Loppini |
spellingShingle |
Martina Nicoletti Letizia Chiodo Alessandro Loppini Biophysics and Modeling of Mechanotransduction in Neurons: A Review Mathematics mechanosensing mechanotransduction ion channels neurons modeling atomistic modeling |
author_facet |
Martina Nicoletti Letizia Chiodo Alessandro Loppini |
author_sort |
Martina Nicoletti |
title |
Biophysics and Modeling of Mechanotransduction in Neurons: A Review |
title_short |
Biophysics and Modeling of Mechanotransduction in Neurons: A Review |
title_full |
Biophysics and Modeling of Mechanotransduction in Neurons: A Review |
title_fullStr |
Biophysics and Modeling of Mechanotransduction in Neurons: A Review |
title_full_unstemmed |
Biophysics and Modeling of Mechanotransduction in Neurons: A Review |
title_sort |
biophysics and modeling of mechanotransduction in neurons: a review |
publisher |
MDPI AG |
series |
Mathematics |
issn |
2227-7390 |
publishDate |
2021-02-01 |
description |
Mechanosensing is a key feature through which organisms can receive inputs from the environment and convert them into specific functional and behavioral outputs. Mechanosensation occurs in many cells and tissues, regulating a plethora of molecular processes based on the distribution of forces and stresses both at the cell membrane and at the intracellular organelles levels, through complex interactions between cells’ microstructures, cytoskeleton, and extracellular matrix. Although several primary and secondary mechanisms have been shown to contribute to mechanosensation, a fundamental pathway in simple organisms and mammals involves the presence of specialized sensory neurons and the presence of different types of mechanosensitive ion channels on the neuronal cell membrane. In this contribution, we present a review of the main ion channels which have been proven to be significantly involved in mechanotransduction in neurons. Further, we discuss recent studies focused on the biological mechanisms and modeling of mechanosensitive ion channels’ gating, and on mechanotransduction modeling at different scales and levels of details. |
topic |
mechanosensing mechanotransduction ion channels neurons modeling atomistic modeling |
url |
https://www.mdpi.com/2227-7390/9/4/323 |
work_keys_str_mv |
AT martinanicoletti biophysicsandmodelingofmechanotransductioninneuronsareview AT letiziachiodo biophysicsandmodelingofmechanotransductioninneuronsareview AT alessandroloppini biophysicsandmodelingofmechanotransductioninneuronsareview |
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