MicroMotility: State of the art, recent accomplishments and perspectives on the mathematical modeling of bio-motility at microscopic scales
Mathematical modeling and quantitative study of biological motility (in particular, of motility at microscopic scales) is producing new biophysical insight and is offering opportunities for new discoveries at the level of both fundamental science and technology. These range from the explanation of h...
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doaj-08ad2bd09c864502bb429a0a628d320b2020-11-25T02:13:43ZengAIMS PressMathematics in Engineering2640-35012020-05-012223025210.3934/mine.2020011MicroMotility: State of the art, recent accomplishments and perspectives on the mathematical modeling of bio-motility at microscopic scales10.3934/mine.20200110Roberto Cerbino1Juan C. Del Alamo2Antonio DeSimone3Stephanie Höhn4Cristian Micheletti5Giovanni Noselli6Eran Sharon7Julia Yeomans81 SISSA–International School for Advanced Studies, 34136 Trieste, Italy2 Dip. Biotecnologie Mediche e Medicina Traslazionale, Università degli Studi di Milano, 20090 Segrate (MI), Italy3 Mechanical and Aerospace Engineering Dept., University of California San Diego, 9500 Gilman Drive, La Jolla CA, USA1 SISSA–International School for Advanced Studies, 34136 Trieste, Italy4 The BioRobotics Institute, Scuola Superiore Sant’Anna, 56127 Pisa, Italy5 DAMTP, University of Cambridge, UK1 SISSA–International School for Advanced Studies, 34136 Trieste, Italy1 SISSA–International School for Advanced Studies, 34136 Trieste, Italy6 The Racah Institute of Physics, The Hebrew University of Jerusalem, Israel7 The Rudolf Peierls Centre for Theoretical Physics, University of Oxford, UKMathematical modeling and quantitative study of biological motility (in particular, of motility at microscopic scales) is producing new biophysical insight and is offering opportunities for new discoveries at the level of both fundamental science and technology. These range from the explanation of how complex behavior at the level of a single organism emerges from body architecture, to the understanding of collective phenomena in groups of organisms and tissues, and of how these forms of swarm intelligence can be controlled and harnessed in engineering applications, to the elucidation of processes of fundamental biological relevance at the cellular and sub-cellular level. In this paper, some of the most exciting new developments in the fields of locomotion of unicellular organisms, of soft adhesive locomotion across scales, of the study of pore translocation properties of knotted DNA, of the development of synthetic active solid sheets, of the mechanics of the unjamming transition in dense cell collectives, of the mechanics of cell sheet folding in volvocalean algae, and of the self-propulsion of topological defects in active matter are discussed. For each of these topics, we provide a brief state of the art, an example of recent achievements, and some directions for future research.https://www.aimspress.com/article/10.3934/mine.2020011/fulltext.htmlcell motilityunicellular swimmersadhesive locomotionactive matterknotted dnaunjamming transitioncell sheet foldingtopological defects |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
10.3934/mine.2020011 Roberto Cerbino Juan C. Del Alamo Antonio DeSimone Stephanie Höhn Cristian Micheletti Giovanni Noselli Eran Sharon Julia Yeomans |
spellingShingle |
10.3934/mine.2020011 Roberto Cerbino Juan C. Del Alamo Antonio DeSimone Stephanie Höhn Cristian Micheletti Giovanni Noselli Eran Sharon Julia Yeomans MicroMotility: State of the art, recent accomplishments and perspectives on the mathematical modeling of bio-motility at microscopic scales Mathematics in Engineering cell motility unicellular swimmers adhesive locomotion active matter knotted dna unjamming transition cell sheet folding topological defects |
author_facet |
10.3934/mine.2020011 Roberto Cerbino Juan C. Del Alamo Antonio DeSimone Stephanie Höhn Cristian Micheletti Giovanni Noselli Eran Sharon Julia Yeomans |
author_sort |
10.3934/mine.2020011 |
title |
MicroMotility: State of the art, recent accomplishments and perspectives on the mathematical modeling of bio-motility at microscopic scales |
title_short |
MicroMotility: State of the art, recent accomplishments and perspectives on the mathematical modeling of bio-motility at microscopic scales |
title_full |
MicroMotility: State of the art, recent accomplishments and perspectives on the mathematical modeling of bio-motility at microscopic scales |
title_fullStr |
MicroMotility: State of the art, recent accomplishments and perspectives on the mathematical modeling of bio-motility at microscopic scales |
title_full_unstemmed |
MicroMotility: State of the art, recent accomplishments and perspectives on the mathematical modeling of bio-motility at microscopic scales |
title_sort |
micromotility: state of the art, recent accomplishments and perspectives on the mathematical modeling of bio-motility at microscopic scales |
publisher |
AIMS Press |
series |
Mathematics in Engineering |
issn |
2640-3501 |
publishDate |
2020-05-01 |
description |
Mathematical modeling and quantitative study of biological motility (in particular, of motility at microscopic scales) is producing new biophysical insight and is offering opportunities for new discoveries at the level of both fundamental science and technology. These range from the explanation of how complex behavior at the level of a single organism emerges from body architecture, to the understanding of collective phenomena in groups of organisms and tissues, and of how these forms of swarm intelligence can be controlled and harnessed in engineering applications, to the elucidation of processes of fundamental biological relevance at the cellular and sub-cellular level. In this paper, some of the most exciting new developments in the fields of locomotion of unicellular organisms, of soft adhesive locomotion across scales, of the study of pore translocation properties of knotted DNA, of the development of synthetic active solid sheets, of the mechanics of the unjamming transition in dense cell collectives, of the mechanics of cell sheet folding in volvocalean algae, and of the self-propulsion of topological defects in active matter are discussed. For each of these topics, we provide a brief state of the art, an example of recent achievements, and some directions for future research. |
topic |
cell motility unicellular swimmers adhesive locomotion active matter knotted dna unjamming transition cell sheet folding topological defects |
url |
https://www.aimspress.com/article/10.3934/mine.2020011/fulltext.html |
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