Search bioRxiv⌕ Search

Biology subjects

Laurell, T.

Publications and source records attributed to Laurell, T..

1 recordsLinked to original sources

Acoustically patterned hepatic lobule-like units for vascularized artificial liver

Engineering a transplantable artificial liver requires reconstituting the hepatic lobule, whose densely cellular parenchyma is organized around a hierarchically branched vascular network. Achieving high cellular density and hierarchical vascularization within a single fabrication step remains a major challenge. Here, we present an ultrasonic standing wave (USW)-based strategy that concurrently organizes vascular and parenchymal compartments during a single extrusion. HepG2-endothelial cell aggregates were fabricated as building blocks and suspended in a liver-derived dECM-alginate hydrogel for rapid, ultraviolet-free crosslinking. They were then co-extruded with single endothelial cells through a glass capillary under USW actuation. Due to their size difference, the single cells were focused at the pressure nodes, forming patterns that transitioned from a single supplying line to four microvascular lines. The aggregates instead accumulated at the pressure antinodes, reconstituting the basic microvascular-parenchymal unit of the lobule. Aggregate size increased with seeding density while maintaining uniformity and over 90% viability. The patterned endothelial cells formed perfusable lumina through which 5 um microparticles flowed freely. Compared with hepatocyte-only cultures, the vascularized constructs showed a 1.7-fold increase in urea production, and 2.7- and 6.2-fold increases in CYP1A2 and CYP3A4 expression, respectively. Following implantation into the mouse liver, the scaffolds showed favorable biocompatibility, sustained proliferation over 21 days, and progressive host integration. The smallest blood-containing lumina matured from 26.1 um to 7.9 um in diameter, accompanied by increasing collagen deposition at the graft-host interface. This approach provides a template-free route to hierarchically vascularized hepatic units and a promising step towards implantable liver tissue.

bioengineering↗