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Additive Manufacturing of Viscoelastic Polyacrylamide Substrates for Mechanosensing Studies

[Image: see text] Polymerized polyacrylamide (PAA) substrates are linearly elastic hydrogels that are widely used in mechanosensing studies due to their biocompatibility, wide range of functionalization capability, and tunable mechanical properties. However, such cellular response on purely elastic...

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Autores principales: Protick, Fardeen Kabir, Amit, Sadat Kamal, Amar, Kshitij, Nath, Shukantu Dev, Akand, Rafee, Davis, Virginia A., Nilufar, Sabrina, Chowdhury, Farhan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9301700/
https://www.ncbi.nlm.nih.gov/pubmed/35874232
http://dx.doi.org/10.1021/acsomega.2c01817
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author Protick, Fardeen Kabir
Amit, Sadat Kamal
Amar, Kshitij
Nath, Shukantu Dev
Akand, Rafee
Davis, Virginia A.
Nilufar, Sabrina
Chowdhury, Farhan
author_facet Protick, Fardeen Kabir
Amit, Sadat Kamal
Amar, Kshitij
Nath, Shukantu Dev
Akand, Rafee
Davis, Virginia A.
Nilufar, Sabrina
Chowdhury, Farhan
author_sort Protick, Fardeen Kabir
collection PubMed
description [Image: see text] Polymerized polyacrylamide (PAA) substrates are linearly elastic hydrogels that are widely used in mechanosensing studies due to their biocompatibility, wide range of functionalization capability, and tunable mechanical properties. However, such cellular response on purely elastic substrates, which do not mimic the viscoelastic living tissues, may not be physiologically relevant. Because the cellular response on 2D viscoelastic PAA substrates remains largely unknown, we used stereolithography (SLA)-based additive manufacturing technique to create viscoelastic PAA substrates with tunable mechanical properties that allow us to identify physiologically relevant cellular behaviors. Three PAA substrates of different complex moduli were fabricated by SLA. By embedding fluorescent markers during the additive manufacturing of the substrates, we show a homogeneous and uniform composition throughout, which conventional manufacturing techniques cannot produce. Rheological investigation of the additively manufactured PAA substrates shows a viscoelastic behavior with a 5–10% loss moduli compared to their elastic moduli, mimicking the living tissues. To understand the cell mechanosensing on the dissipative PAA substrates, single live cells were seeded on PAA substrates to establish the basic relationships between cell traction, cytoskeletal prestress, and cell spreading. With the increasing substrate moduli, we observed a concomitant increase in cellular traction and prestress, but not cell spreading, suggesting that cell spreading can be decoupled from traction and intracellular prestress in physiologically relevant environments. Together, additively manufactured PAA substrates fill the void of lacking real tissue like viscoelastic materials that can be used in a variety of mechanosensing studies with superior reproducibility.
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spelling pubmed-93017002022-07-22 Additive Manufacturing of Viscoelastic Polyacrylamide Substrates for Mechanosensing Studies Protick, Fardeen Kabir Amit, Sadat Kamal Amar, Kshitij Nath, Shukantu Dev Akand, Rafee Davis, Virginia A. Nilufar, Sabrina Chowdhury, Farhan ACS Omega [Image: see text] Polymerized polyacrylamide (PAA) substrates are linearly elastic hydrogels that are widely used in mechanosensing studies due to their biocompatibility, wide range of functionalization capability, and tunable mechanical properties. However, such cellular response on purely elastic substrates, which do not mimic the viscoelastic living tissues, may not be physiologically relevant. Because the cellular response on 2D viscoelastic PAA substrates remains largely unknown, we used stereolithography (SLA)-based additive manufacturing technique to create viscoelastic PAA substrates with tunable mechanical properties that allow us to identify physiologically relevant cellular behaviors. Three PAA substrates of different complex moduli were fabricated by SLA. By embedding fluorescent markers during the additive manufacturing of the substrates, we show a homogeneous and uniform composition throughout, which conventional manufacturing techniques cannot produce. Rheological investigation of the additively manufactured PAA substrates shows a viscoelastic behavior with a 5–10% loss moduli compared to their elastic moduli, mimicking the living tissues. To understand the cell mechanosensing on the dissipative PAA substrates, single live cells were seeded on PAA substrates to establish the basic relationships between cell traction, cytoskeletal prestress, and cell spreading. With the increasing substrate moduli, we observed a concomitant increase in cellular traction and prestress, but not cell spreading, suggesting that cell spreading can be decoupled from traction and intracellular prestress in physiologically relevant environments. Together, additively manufactured PAA substrates fill the void of lacking real tissue like viscoelastic materials that can be used in a variety of mechanosensing studies with superior reproducibility. American Chemical Society 2022-07-06 /pmc/articles/PMC9301700/ /pubmed/35874232 http://dx.doi.org/10.1021/acsomega.2c01817 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by-nc-nd/4.0/Permits non-commercial access and re-use, provided that author attribution and integrity are maintained; but does not permit creation of adaptations or other derivative works (https://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Protick, Fardeen Kabir
Amit, Sadat Kamal
Amar, Kshitij
Nath, Shukantu Dev
Akand, Rafee
Davis, Virginia A.
Nilufar, Sabrina
Chowdhury, Farhan
Additive Manufacturing of Viscoelastic Polyacrylamide Substrates for Mechanosensing Studies
title Additive Manufacturing of Viscoelastic Polyacrylamide Substrates for Mechanosensing Studies
title_full Additive Manufacturing of Viscoelastic Polyacrylamide Substrates for Mechanosensing Studies
title_fullStr Additive Manufacturing of Viscoelastic Polyacrylamide Substrates for Mechanosensing Studies
title_full_unstemmed Additive Manufacturing of Viscoelastic Polyacrylamide Substrates for Mechanosensing Studies
title_short Additive Manufacturing of Viscoelastic Polyacrylamide Substrates for Mechanosensing Studies
title_sort additive manufacturing of viscoelastic polyacrylamide substrates for mechanosensing studies
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9301700/
https://www.ncbi.nlm.nih.gov/pubmed/35874232
http://dx.doi.org/10.1021/acsomega.2c01817
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