Self-assembled and perfusable microvasculature-on-chip for modeling leukocyte trafficking.

Autor: Hirth E; Department of Biosystems Science and Engineering, ETH Zurich, 4056, Basel, Switzerland. petra.dittrich@bsse.ethz.ch., Cao W; Department of Biosystems Science and Engineering, ETH Zurich, 4056, Basel, Switzerland. petra.dittrich@bsse.ethz.ch., Peltonen M; Department of Biosystems Science and Engineering, ETH Zurich, 4056, Basel, Switzerland. petra.dittrich@bsse.ethz.ch., Kapetanovic E; Department of Biosystems Science and Engineering, ETH Zurich, 4056, Basel, Switzerland. petra.dittrich@bsse.ethz.ch., Dietsche C; Department of Biosystems Science and Engineering, ETH Zurich, 4056, Basel, Switzerland. petra.dittrich@bsse.ethz.ch., Svanberg S; Department of Biosystems Science and Engineering, ETH Zurich, 4056, Basel, Switzerland. petra.dittrich@bsse.ethz.ch., Filippova M; Department of Biomedicine, University of Basel, 4031 Basel, Switzerland., Reddy S; Department of Biosystems Science and Engineering, ETH Zurich, 4056, Basel, Switzerland. petra.dittrich@bsse.ethz.ch., Dittrich PS; Department of Biosystems Science and Engineering, ETH Zurich, 4056, Basel, Switzerland. petra.dittrich@bsse.ethz.ch.
Jazyk: angličtina
Zdroj: Lab on a chip [Lab Chip] 2024 Jan 17; Vol. 24 (2), pp. 292-304. Date of Electronic Publication: 2024 Jan 17.
DOI: 10.1039/d3lc00719g
Abstrakt: Leukocyte recruitment from blood to tissue is a process that occurs at the level of capillary vessels during both physiological and pathological conditions. This process is also relevant for evaluating novel adoptive cell therapies, in which the trafficking of therapeutic cells such as chimeric antigen receptor (CAR)-T cells throughout the capillaries of solid tumors is important. Local variations in blood flow, mural cell concentration, and tissue stiffness contribute to the regulation of capillary vascular permeability and leukocyte trafficking throughout the capillary microvasculature. We developed a platform to mimic a biologically functional human arteriole-venule microcirculation system consisting of pericytes (PCs) and arterial and venous primary endothelial cells (ECs) embedded within a hydrogel, which self-assembles into a perfusable, heterogeneous microvasculature. Our device shows a preferential association of PCs with arterial ECs that drives the flow-dependent formation of microvasculature networks. We show that PCs stimulate basement membrane matrix synthesis, which affects both vessel diameter and permeability in a manner correlating with the ratio of ECs to PCs. Moreover, we demonstrate that hydrogel concentration can affect capillary morphology but has no observed effect on vascular permeability. The biological function of our capillary network was demonstrated using an inflammation model, where significantly higher expression of cytokines, chemokines, and adhesion molecules was observed after tumor necrosis factor-alpha (TNF-α) treatment. Accordingly, T cell adherence and transendothelial migration were significantly increased in the immune-activated state. Taken together, our platform allows the generation of a perfusable microvasculature that recapitulates the structure and function of an in vivo capillary bed that can be used as a model for developing potential immunotherapies.
Databáze: MEDLINE