TY - JOUR
T1 - Interfacial Morphology Shapes Endothelial Organization and Function in a Blood–Brain Barrier-on-a-Chip
AU - Yang, Qihang
AU - Li, Zengting
AU - Tan, Zhijun
AU - Wang, Xueping
AU - Hao, Shiping
AU - He, Yuening
AU - Zhong, Xiang
AU - Li, Jintao
AU - Xue, Yufei
AU - Yu, Tingting
AU - Peng, Bo
AU - Zhu, Dan
N1 - Publisher Copyright:
© 2026 American Chemical Society
PY - 2026/7/1
Y1 - 2026/7/1
N2 - Organ-on-a-chip technologies have advanced rapidly as platforms for modeling human physiology and disease. In particular, the integration of hydrogels has enabled closer mimicry of tissue microenvironments and facilitated coupling with organoids and other three-dimensional cellular systems. Despite these advances, the mechanical stability of hydrogels and the integrity of the barrier interface remain poorly controlled, limiting reproducibility and functional fidelity in barrier-on-a-chip models such as the blood–brain barrier (BBB). Herein, we present a three-channel BBB-on-a-chip (μBBB) that incorporates an in situ photo-cross-linkable hydrogel system to precisely regulate interfacial stability during device operation. Computational fluid dynamics analysis revealed that subtle variations in hydrogel interface morphology markedly alter local shear stress distribution, with slightly protruded interfaces providing more favorable conditions for endothelial organization. Guided by these insights, we introduced a biocompatible photo-cross-linkable agent that reinforces the stability of the hydrogel interface, yielding a robust and stable barrier-forming surface. Stabilization of the hydrogel interface significantly improved endothelial cell viability, reduced cell invasion into the matrix, and enhanced BBB-associated functional readouts. Transcriptomic analysis further revealed lower inflammation- and sprouting-related pathways, consistent with a more quiescent and physiologically relevant endothelial phenotype. Together, this work identifies hydrogel-cell interfacial stability as a critical yet underappreciated determinant of μBBB performance and offers a simple, adaptable strategy to improve the reliability of hydrogel-integrated organ-on-a-chip systems.
AB - Organ-on-a-chip technologies have advanced rapidly as platforms for modeling human physiology and disease. In particular, the integration of hydrogels has enabled closer mimicry of tissue microenvironments and facilitated coupling with organoids and other three-dimensional cellular systems. Despite these advances, the mechanical stability of hydrogels and the integrity of the barrier interface remain poorly controlled, limiting reproducibility and functional fidelity in barrier-on-a-chip models such as the blood–brain barrier (BBB). Herein, we present a three-channel BBB-on-a-chip (μBBB) that incorporates an in situ photo-cross-linkable hydrogel system to precisely regulate interfacial stability during device operation. Computational fluid dynamics analysis revealed that subtle variations in hydrogel interface morphology markedly alter local shear stress distribution, with slightly protruded interfaces providing more favorable conditions for endothelial organization. Guided by these insights, we introduced a biocompatible photo-cross-linkable agent that reinforces the stability of the hydrogel interface, yielding a robust and stable barrier-forming surface. Stabilization of the hydrogel interface significantly improved endothelial cell viability, reduced cell invasion into the matrix, and enhanced BBB-associated functional readouts. Transcriptomic analysis further revealed lower inflammation- and sprouting-related pathways, consistent with a more quiescent and physiologically relevant endothelial phenotype. Together, this work identifies hydrogel-cell interfacial stability as a critical yet underappreciated determinant of μBBB performance and offers a simple, adaptable strategy to improve the reliability of hydrogel-integrated organ-on-a-chip systems.
KW - blood-brain barrier
KW - computational fluid dynamics
KW - hydrogel interfacial stability
KW - organ-on-a-chip
KW - photo-cross-linking
UR - https://www.scopus.com/pages/publications/105043556758
U2 - 10.1021/acsami.6c03017
DO - 10.1021/acsami.6c03017
M3 - 文章
AN - SCOPUS:105043556758
SN - 1944-8244
VL - 18
SP - 34762
EP - 34777
JO - ACS Applied Materials and Interfaces
JF - ACS Applied Materials and Interfaces
IS - 25
ER -