TY - JOUR
T1 - Dynamic matrix remodeling in boronate ester hydrogels for 3D organoid cultures
AU - Neumann, M.
AU - Kožinec, D.
AU - Hène, D.
AU - van Uden, L.
AU - Schneeberger, K.
AU - van der Laan, L. J.W.
AU - Drost, J.
AU - Slaats, G. G.
AU - Verhaar, M. C.
AU - Vermonden, T.
N1 - Copyright © 2026 The Authors. Published by Elsevier B.V. All rights reserved.
PY - 2026/6/10
Y1 - 2026/6/10
N2 - This study demonstrates the development of a viscoelastic hydrogel-based matrix designed to promote physiological tissue microenvironment in 3D cell cultures, utilizing hyaluronic acid—a natural constituent of the extracellular matrix—as the primary polymer. The use of dynamic covalent chemistry, specifically boronate ester bonds, allows for the creation of a tunable biomimetic material with reversible bonds conducive to cell-mediated matrix remodeling. Poly(vinyl alcohol) was employed as cross-linker to form boronate ester bonds, while the polymerization of methacrylate moieties provided a covalently crosslinked network that further improved scaffold stability. Notably, the dynamic boronate ester containing hydrogels performed better than fully static ones, especially in terms of promoting cell proliferation. The hydrogel enabled successful encapsulation of kidney organoids (tubuloids) and intrahepatic cholangiocyte organoids (ICOs), demonstrating viability, increased proliferation compared to static gels, and self-organization into 3D structures. These results highlight the potential of dynamic boronate ester hydrogels, offering a promising step toward animal-free alternatives for organoid culture.
AB - This study demonstrates the development of a viscoelastic hydrogel-based matrix designed to promote physiological tissue microenvironment in 3D cell cultures, utilizing hyaluronic acid—a natural constituent of the extracellular matrix—as the primary polymer. The use of dynamic covalent chemistry, specifically boronate ester bonds, allows for the creation of a tunable biomimetic material with reversible bonds conducive to cell-mediated matrix remodeling. Poly(vinyl alcohol) was employed as cross-linker to form boronate ester bonds, while the polymerization of methacrylate moieties provided a covalently crosslinked network that further improved scaffold stability. Notably, the dynamic boronate ester containing hydrogels performed better than fully static ones, especially in terms of promoting cell proliferation. The hydrogel enabled successful encapsulation of kidney organoids (tubuloids) and intrahepatic cholangiocyte organoids (ICOs), demonstrating viability, increased proliferation compared to static gels, and self-organization into 3D structures. These results highlight the potential of dynamic boronate ester hydrogels, offering a promising step toward animal-free alternatives for organoid culture.
KW - Boronate ester bonds
KW - Hyaluronic acid
KW - Organoids
KW - Viscoelastic hydrogel
KW - Polyvinyl Alcohol/chemistry
KW - Hyaluronic Acid/chemistry
KW - Extracellular Matrix
KW - Humans
KW - Hydrogels/chemistry
KW - Boronic Acids/chemistry
KW - Cell Survival/drug effects
KW - Cell Culture Techniques, Three Dimensional
KW - Animals
KW - Tissue Scaffolds/chemistry
KW - Organoids/cytology
KW - Cell Proliferation/drug effects
KW - Esters/chemistry
UR - https://www.scopus.com/pages/publications/105034619871
UR - https://www.mendeley.com/catalogue/298752c2-f48c-31f0-acc7-70fdff624ecf/
U2 - 10.1016/j.jconrel.2026.114851
DO - 10.1016/j.jconrel.2026.114851
M3 - Article
C2 - 41876010
AN - SCOPUS:105034619871
SN - 0168-3659
VL - 394
JO - Journal of Controlled Release
JF - Journal of Controlled Release
M1 - 114851
ER -