1,326 publications from this institution
Eric Van Cutsem, University Hospital Gasthuisberg/Leuven, Katholieke Universiteit Leuven, Leuven, Belgium Diether Lambrechts, Vesalius Research Center, Vlaams Instituut voor Biotechnologie; Katholieke Universiteit Leuven, Leuven, Belgium Hans Prenen, University Hospital Gasthuisberg/Leuven, Katholieke Universiteit Leuven, Leuven, Belgium Rakesh K. Jain, Massachusetts General Hospital and Harvard Medical School, Boston, MA Peter Carmeliet, Vesalius Research Center, Vlaams Instituut voor Biotechnologie; Katholieke Universiteit Leuven, Leuven, Belgium
The healing of a fracture depends largely on the development of a new blood vessel network (angiogenesis) in the callus.During angiogenesis tip cells lead the developing sprout in response to extracellular signals, amongst which vascular endothelial growth factor (VEGF) is critical.In order to ensure a correct development of the vasculature, the balance between stalk and tip cell phenotypes must be tightly controlled, which is primarily achieved by the Dll4-Notch1 signaling pathway.This study presents a novel multiscale model of osteogenesis and sprouting angiogenesis, incorporating lateral inhibition of endothelial cells (further denoted MOSAIC model) through Dll4-Notch1 signaling, and applies it to fracture healing.The MOSAIC model correctly predicted the bone regeneration process and recapitulated many experimentally observed aspects of tip cell selection: the salt and pepper pattern seen for cell fates, an increased tip cell density due to the loss of Dll4 and an excessive number of tip cells in high VEGF environments.When VEGF concentration was even further increased, the MOSAIC model predicted the absence of a vascular network and fracture healing, thereby leading to a nonunion, which is a direct consequence of the mutual inhibition of neighboring cells through Dll4-Notch1 signaling.This result was not retrieved for a more phenomenological model that only considers extracellular signals for tip cell migration, which illustrates the importance of implementing the actual signaling pathway rather than phenomenological rules.Finally, the MOSAIC model demonstrated the importance of a proper criterion for tip cell selection and the need for experimental data to further explore this.In conclusion, this study demonstrates that the MOSAIC model creates enhanced capabilities for investigating the influence of molecular mechanisms on angiogenesis and its relation to bone formation in a more mechanistic way and across different time and spatial scales.
Reaggregate cell cultures of mouse or rat anterior pituitary were found to produce interleukin-6 (IL-6), a cytokine known for its multiple actions in the immune system. Studies on aggregates prepared from differentially enriched pituitary cell populations revealed the presence of folliculo-stellate (FS) cells to be essential for IL-6 production. Aggregates that contained only hormone-secreting, but no FS cells, failed to produce IL-6. Furthermore, the yield of IL-6 increased with increasing proportions of FS cells present in the aggregates. It is suggested that IL-6 participates in the local regulation of the secretory function of the hypophysis and may constitute a link between events in the immune system and those in the endocrine system.
We will discuss metabolic pathways that regulate vessel sprouting, and highlight the commonalities with cancer cells for as much as studied. We will also consider new opportunities for the development of alternative antiangiogenic therapies by targeting endothelial cell metabolism.