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Petr, J. B.

Publications and source records attributed to Petr, J. B..

2 recordsLinked to original sources

Real-Time Tracking of Tumor Invasion Dynamics in Organotypic Brain Slices at Subcellular Resolution

Replicating the cytoarchitecture and cell heterogeneity of the brain in vitro remains challenging. Although ex vivo organotypic slices preserve native tissue complexity, current culturing methods limit long-term, high-resolution imaging and restrict temporally controlled perturbations. Here, we present PHIROS, a microfluidic platform for high-resolution imaging of organotypic slices that supports static culturing of excised tissue at the air-liquid interface and provides continuous optical access for extended imaging at subcellular resolution. Controlled perfusion with oxygenated medium preserves tissue viability over several days, enabling, e.g., the monitoring of spontaneous and pharmacologically modulated astrocytic calcium activity. Using PHIROS we characterized medulloblastoma (MB) cell behavior in a physiological tumor microenvironment and observed dynamic F-actin-driven interactions with tissue-resident astrocytes, as well as leading edge localization of the immune-checkpoint marker B7-H3 in invading tumor cells. Quantitative assessment of mitochondria transfer across heterotypic actin-rich connections evidences the potential of PHIROS as a versatile system for mechanistic studies in a tissue context, enabling controlled compound exposure and high-resolution imaging in physiologically relevant tissue settings.

bioengineering↗

Topologically controlled circuits of human iPSC-derived neurons for electrophysiology recordings

Bottom-up neuroscience, which consists of building and studying controlled networks of neurons in vitro, is a promising method to investigate information processing at the neuronal level. However, in vitro studies tend to use cells of animal origin rather than human neurons, leading to conclusions that might not be generalizable to humans and limiting the possibilities for relevant studies on neurological disorders. Here we present a method to build arrays of topologically controlled circuits of human induced pluripotent stem cell (iPSC)-derived neurons. The circuits consist of 4 to 50 neurons with mostly unidirectional connections, confined by microfabricated polydimethylsiloxane (PDMS) membranes. Such circuits were characterized using optical imaging and microelectrode arrays (MEAs). Electrophysiology recordings were performed on circuits of human iPSC-derived neurons for at least 4.5 months. We believe that the capacity to build small and controlled circuits of human iPSC-derived neurons holds great promise to better understand the fundamental principles of information processing and storing in the brain.

neuroscience↗