Theoretical Platform for Liquid-Crystalline Self-Assembly of Collagen-Based Biomaterials

The collagen triple helix is a ubiquitous biomacromolecule used in acidic aqueous solutions as precursor in the fabrication of artificial compact bone and cornea and in tissue engineering. The primary architecture of these highly structured solid tissues is formed during the cholesteric liquid-cryst...

Full description

Bibliographic Details
Main Authors: Sayyed Ahmad Khadem, Alejandro D. Rey
Format: Article
Language:English
Published: Frontiers Media S.A. 2019-06-01
Series:Frontiers in Physics
Subjects:
Online Access:https://www.frontiersin.org/article/10.3389/fphy.2019.00088/full
_version_ 1818188766092722176
author Sayyed Ahmad Khadem
Alejandro D. Rey
author_facet Sayyed Ahmad Khadem
Alejandro D. Rey
author_sort Sayyed Ahmad Khadem
collection DOAJ
description The collagen triple helix is a ubiquitous biomacromolecule used in acidic aqueous solutions as precursor in the fabrication of artificial compact bone and cornea and in tissue engineering. The primary architecture of these highly structured solid tissues is formed during the cholesteric liquid-crystalline stage of their morphogenesis. The theoretical platform that describes the coupled dynamics of phase-ordering and mass transfer developed, implemented and validated here can be used for optimal material design and plays a significant complementary role to future experimental studies. Based on uniaxiality assumption, we have recently developed and validated a theory for the free energy tailored for acidic collagenous dispersions. Here we significantly expand and generalize our previous study, by including biaxiality since cholesteric phases must have a degree of biaxiality. In this work, we first modify the proposed interchain interaction and excluded-volume contribution by use of the addition theorem for spherical harmonics. Then, the Euler-Lagrange minimization followed by expansion around I/N* transition allows us to construct the free energy of ordering in terms of the phenomenological Landau–de Gennes formulation. Finally, we use the time-dependent Ginzburg-Landau equations to study the non-Fickian evolution of a single two dimensional cholesteric tactoid through a shallow quench from the isotropic to biphasic region of the phase diagram. Although equilibrium biaxiality is considerably low for these long-pitch cholesterics, we found that during self-assembly the biaxial order parameter achieves significant larger values than the equilibrium value. Additionally, the relaxed director field becomes both onion-like and defect-less, which is consistent with the twisted bipolar structure observed experimentally. The self-assembly simulations demonstrate that the formulated theoretical platform is not only consistent with previous theoretical and experimental studies but also able to be used to explore new routes for non-equilibrium collagen self-assembly. Taken together, this study deepens our understanding of cholesteric (chiral nematic N*) mesophase in acidic solutions of tropocollagen, and suggests a systematic spatio-temporal model that is capable of being used to extract the engineering principles for processing of these sought-after biomaterials.
first_indexed 2024-12-11T23:32:08Z
format Article
id doaj.art-216b5ba874844aaeb3b4a30deeaf979e
institution Directory Open Access Journal
issn 2296-424X
language English
last_indexed 2024-12-11T23:32:08Z
publishDate 2019-06-01
publisher Frontiers Media S.A.
record_format Article
series Frontiers in Physics
spelling doaj.art-216b5ba874844aaeb3b4a30deeaf979e2022-12-22T00:46:01ZengFrontiers Media S.A.Frontiers in Physics2296-424X2019-06-01710.3389/fphy.2019.00088463148Theoretical Platform for Liquid-Crystalline Self-Assembly of Collagen-Based BiomaterialsSayyed Ahmad KhademAlejandro D. ReyThe collagen triple helix is a ubiquitous biomacromolecule used in acidic aqueous solutions as precursor in the fabrication of artificial compact bone and cornea and in tissue engineering. The primary architecture of these highly structured solid tissues is formed during the cholesteric liquid-crystalline stage of their morphogenesis. The theoretical platform that describes the coupled dynamics of phase-ordering and mass transfer developed, implemented and validated here can be used for optimal material design and plays a significant complementary role to future experimental studies. Based on uniaxiality assumption, we have recently developed and validated a theory for the free energy tailored for acidic collagenous dispersions. Here we significantly expand and generalize our previous study, by including biaxiality since cholesteric phases must have a degree of biaxiality. In this work, we first modify the proposed interchain interaction and excluded-volume contribution by use of the addition theorem for spherical harmonics. Then, the Euler-Lagrange minimization followed by expansion around I/N* transition allows us to construct the free energy of ordering in terms of the phenomenological Landau–de Gennes formulation. Finally, we use the time-dependent Ginzburg-Landau equations to study the non-Fickian evolution of a single two dimensional cholesteric tactoid through a shallow quench from the isotropic to biphasic region of the phase diagram. Although equilibrium biaxiality is considerably low for these long-pitch cholesterics, we found that during self-assembly the biaxial order parameter achieves significant larger values than the equilibrium value. Additionally, the relaxed director field becomes both onion-like and defect-less, which is consistent with the twisted bipolar structure observed experimentally. The self-assembly simulations demonstrate that the formulated theoretical platform is not only consistent with previous theoretical and experimental studies but also able to be used to explore new routes for non-equilibrium collagen self-assembly. Taken together, this study deepens our understanding of cholesteric (chiral nematic N*) mesophase in acidic solutions of tropocollagen, and suggests a systematic spatio-temporal model that is capable of being used to extract the engineering principles for processing of these sought-after biomaterials.https://www.frontiersin.org/article/10.3389/fphy.2019.00088/fullbiaxialityliquid-crystalline self-assemblycollagen-based bioinspired materialscholesteric tactoidsLandau–de Gennes modeltime-dependent Ginzburg-Landau model
spellingShingle Sayyed Ahmad Khadem
Alejandro D. Rey
Theoretical Platform for Liquid-Crystalline Self-Assembly of Collagen-Based Biomaterials
Frontiers in Physics
biaxiality
liquid-crystalline self-assembly
collagen-based bioinspired materials
cholesteric tactoids
Landau–de Gennes model
time-dependent Ginzburg-Landau model
title Theoretical Platform for Liquid-Crystalline Self-Assembly of Collagen-Based Biomaterials
title_full Theoretical Platform for Liquid-Crystalline Self-Assembly of Collagen-Based Biomaterials
title_fullStr Theoretical Platform for Liquid-Crystalline Self-Assembly of Collagen-Based Biomaterials
title_full_unstemmed Theoretical Platform for Liquid-Crystalline Self-Assembly of Collagen-Based Biomaterials
title_short Theoretical Platform for Liquid-Crystalline Self-Assembly of Collagen-Based Biomaterials
title_sort theoretical platform for liquid crystalline self assembly of collagen based biomaterials
topic biaxiality
liquid-crystalline self-assembly
collagen-based bioinspired materials
cholesteric tactoids
Landau–de Gennes model
time-dependent Ginzburg-Landau model
url https://www.frontiersin.org/article/10.3389/fphy.2019.00088/full
work_keys_str_mv AT sayyedahmadkhadem theoreticalplatformforliquidcrystallineselfassemblyofcollagenbasedbiomaterials
AT alejandrodrey theoreticalplatformforliquidcrystallineselfassemblyofcollagenbasedbiomaterials