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Rockel, A. F.

Publications and source records attributed to Rockel, A. F..

2 recordsLinked to original sources

Tissue resident macrophages innately develop in a human iPSC-derived cardiac organoid model

The heart is the first functional organ to develop during embryogenesis, forming in parallel with the vasculature and hematopoietic cell lineages. To advance our understanding of human cardiac development and disease, human induced pluripotent stem cell-derived cardiomyocytes offer a promising in vitro model. However, conventional 2D culture systems lack the complexity required to recapitulate the intricate interactions of different cell types leading to fully functional and mature cardiac tissue. Here, we present a cardiac organoid model that mimics several aspects of cardiogenesis. The organoids develop a functional myocardium consisting of cardiomyocytes and fibroblasts capable of spontaneous rhythmic contractions. The myocard is interspersed with a branched endothelial network. Additionally, macrophages develop within the organoids and integrate into the myocardium. In summary, we describe a complex 3D cell culture platform to study human heart tissue development with all the involved cell types (cardiomyocytes, fibroblasts, endothelial cells, macrophages), paving the way for new insights into the role of macrophages in cardiac development and disease.

developmental biology↗

Human neuro-mesodermal assembloids recapitulate aspects of peripheral nervous system development in vitro

Here we describe a novel neuro-mesodermal assembloid model which recapitulates aspects of peripheral nervous system (PNS) development such as neural crest cell (NCC) induction, delamination, migration and sensory as well as sympathetic ganglion formation. The ganglia send neuronal projections to the mesodermal as well as the neural compartment. Axons in the mesodermal part are associated with Schwann cells. In addition, peripheral ganglia as well as nerve fibers interact with the co-developing vascular plexus, forming a neurovascular niche. Finally, developing sensory ganglia show response to capsaicin treatment indicating their functionality. The presented assembloid model could help to uncover mechanisms of NCC delamination, migration and PNS development in the human tissue context. Moreover, the model could be used for toxicity screenings or drug testing. The co-development of mesodermal and neuroectodermal tissues and of a well-organized vascular plexus along with a peripheral nervous system allows to investigate the crosstalk between neuroectoderm and mesoderm and between peripheral neurons/neuroblasts and endothelial cells. Such interactions influence NCC delamination and migration, sensory neuron differentiation and rearrangement of the primitive vascular plexus in the embryo.

developmental biology↗