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Gijzen, L.

Publications and source records attributed to Gijzen, L..

2 recordsLinked to original sources

Targeting C2 reduces ischemia-reperfusion injury-induced complement activation in preclinical human models

Kidney transplantation (KTx) is a main treatment option of end stage renal disease. KTx outcome is hampered by various factors including ischemia-reperfusion (IR) injury (IRI). Animal models suggest a role for natural IgM recognizing neoepitopes exposed on ischemic cells as a main trigger for IRI-induced complement activation. However, it is unclear if experimental data from these animal models can be extrapolated to human IRI. We used in vitro human models for kidney IRI to evaluate complement activation. First, we compared IgM binding and complement fixation on different endothelial cell (EC) sources in a 2D culture model, using primary kidney-derived ECs, primary lung-derived ECs and human umbilical vein ECs (HUVECs). These cells were exposed to hypoxia followed by reoxygenation in presence of complement-active human serum, or serum subjected to targeted complement inhibition. Next, we validated our findings in a 3D microfluidic organ-on-a-chip model for human kidney IRI using both HUVECs and renal proximal tubule epithelial cells (RPTECs). In the 2D IRI model, we observed increased binding of IgM and C3 fixation on different EC sources after ischemia and subsequent reoxygenation in presence of human serum. This was not detected when cells were exposed to normoxic culture conditions. These results were confirmed in the 3D culture model, where hypoxia followed by reperfusion with complement-active human serum also led to IgM binding and C3 fixation, particularly to HUVECs. Expression of ICAM-1, a key adhesion molecule linked to renal IRI pathophysiology, was increased on RPTECs after IR-induced complement activation on HUVECs. In both models, complement inhibition at the level of C2 inhibited the abovementioned effects of IR-induced complement activation. These results suggest classical and lectin complement pathway involvement in IR-induced damage and identify C2 as a target for therapeutic strategies.

cell biology↗

An immunocompetent human kidney on-a-chip model to study renal inflammation and immune-mediated injury

Kidney damage and dysfunction is an emerging health issue worldwide resulting in high morbidity and mortality rates. Numerous renal diseases are recognized to be driven by the immune system. Despite this recognition, the development of targeted therapies has been challenging as knowledge of the underlying mechanism and complex interactions remains insufficient. Recent advancements in the field offer promising avenues for exploring the interplay between renal cells and immune cells and their role in the development of renal inflammation and diseases. This study describes the establishment of a human immunocompetent 3D in vitro co-culture model of the proximal tubule in a high-throughput microfluidic platform that can be used to study renal functionality and inflammatory processes. The model incorporated RPTEC in the top compartment and HUVECs in the bottom compartment cultured under flow and in direct contact with a collagen-I ECM gel resulting in the formation of polarized tubular structures. As an immune component, human primary monocytes of different donors were added to the lumen of the endothelium. Renal inflammation was successfully induced using complement activated serum (CAS) as evident by epithelial morphological changes, increased expression of adhesion molecules, release of pro-inflammatory cytokines, and reduced epithelial viability. Realtime migratory behavior of monocytes showed increased extravasation and migration towards the ECM and Renal compartment upon exposure to CAS with donor-to-donor differences observed. Finally, immune modulatory compounds showed efficacious inhibition of monocyte migration under inflammatory conditions in the microfluidic co-culture model. A successful co-culture model was established and can be applied to study renal functionality in health and disease but also for drug screening due to the compatibility of the platform with automation and relatively high throughput. Overall, the described proximal tubule model has high potential to fill the gap that currently exists to study renal inflammation preclinically.

immunology↗