Sculpting vesicles with active particles: Less is more

Fuente: arXiv
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Main Authors: Vutukuri, Hanumantha Rao, Hoore, Masoud, Abaurrea-Velasco, Clara, van Buren, Lennard, Dutto, Alessandro, Auth, Thorsten, Fedosov, Dmitry A., Gompper, Gerhard, Vermant, Jan
Format: Preprint
Published: 2019
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author Vutukuri, Hanumantha Rao
Hoore, Masoud
Abaurrea-Velasco, Clara
van Buren, Lennard
Dutto, Alessandro
Auth, Thorsten
Fedosov, Dmitry A.
Gompper, Gerhard
Vermant, Jan
author_facet Vutukuri, Hanumantha Rao
Hoore, Masoud
Abaurrea-Velasco, Clara
van Buren, Lennard
Dutto, Alessandro
Auth, Thorsten
Fedosov, Dmitry A.
Gompper, Gerhard
Vermant, Jan
contents Biological cells are able to generate intricate structures and respond to external stimuli, sculpting their membrane from within. Simplified biomimetic systems can aid in understanding the principles which govern these shape changes and elucidate the response of the cell membrane under strong deformations. Here, a combined experimental and simulation approach is used to identify the conditions under which different non-equilibrium shapes and distinct active shape fluctuations can be obtained by enclosing self-propelled particles in giant vesicles. Interestingly, the most pronounced shape changes are observed at relatively low particle loadings, starting with the formation of tether-like protrusions to highly branched, dendritic structures. At high volume fractions, globally deformed vesicle shapes are observed. The obtained state diagram of vesicles sculpted by active particles predicts the conditions under which local internal forces can generate dramatic cell shape changes, such as branched structures in neurons.
format Preprint
id arxiv_https___arxiv_org_abs_1911_02381
institution arXiv
publishDate 2019
record_format arxiv
spellingShingle Sculpting vesicles with active particles: Less is more
Vutukuri, Hanumantha Rao
Hoore, Masoud
Abaurrea-Velasco, Clara
van Buren, Lennard
Dutto, Alessandro
Auth, Thorsten
Fedosov, Dmitry A.
Gompper, Gerhard
Vermant, Jan
Soft Condensed Matter
Materials Science
Biological Physics
Biological cells are able to generate intricate structures and respond to external stimuli, sculpting their membrane from within. Simplified biomimetic systems can aid in understanding the principles which govern these shape changes and elucidate the response of the cell membrane under strong deformations. Here, a combined experimental and simulation approach is used to identify the conditions under which different non-equilibrium shapes and distinct active shape fluctuations can be obtained by enclosing self-propelled particles in giant vesicles. Interestingly, the most pronounced shape changes are observed at relatively low particle loadings, starting with the formation of tether-like protrusions to highly branched, dendritic structures. At high volume fractions, globally deformed vesicle shapes are observed. The obtained state diagram of vesicles sculpted by active particles predicts the conditions under which local internal forces can generate dramatic cell shape changes, such as branched structures in neurons.
title Sculpting vesicles with active particles: Less is more
topic Soft Condensed Matter
Materials Science
Biological Physics
url https://arxiv.org/abs/1911.02381