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Pizzarella, D.

Publications and source records attributed to Pizzarella, D..

2 recordsLinked to original sources

Hydrogel-imposed boundary conditions guide single-lumen neuroepithelial morphogenesis

Three-dimensional (3D) stem cell-based cultures have emerged as promising in vitro model systems for studying human neurodevelopment. Current neural organoid protocols lack well-defined extracellular matrix (ECM) signaling and are limited by the formation of irregular tissue morphologies with multiple organizing centers, in contrast to the single neuroepithelial structure that emerges during embryonic development. This variability limits inter-organoid reproducibility and constrains their utility for modeling early developmental processes. To overcome these limitations, we leverage a materials-based approach to impose dynamic boundary conditions that extrinsically guide the self-organization of human induced pluripotent stem cells (iPSCs). Specifically, we develop a family of hyaluronic acid-elastin-like protein (HELP) hydrogels crosslinked with dynamic covalent bonds that recapitulate key biochemical and biophysical properties of the developing human neural ECM. Within these HELP hydrogels, iPSCs robustly self-organize from a single cell into complex neuroepithelial tissues with a single lumen. By tuning the boundary conditions imposed by the hydrogel, we identify matrix stress relaxation rate and tensional homeostasis as key regulators of single-lumen rosette formation and maintenance. With this hydrogel-enabled system, we identify phenotypic abnormalities in an early neurodevelopmental model of 22q11.2 deletion syndrome. Ultimately, our tunable engineered hydrogel supports the initiation of single-cell derived 3D neuroepithelial tissues, enables investigation into how matrix-imposed boundary conditions guide developmental morphogenesis, and establishes a reproducible platform for disease modeling.

bioengineering↗

Gel-Amin for improving signal propagation and extracellular recordings of cardiomyocytes in a 3D Microphysiological System

Microphysiological systems (MPSs) hold great potential for fundamental discovery and accelerating the drug discovery pipeline through simplifying complex tissues to their first principles and enabling real-time, high-resolution monitoring. Hydrophilic biomaterials, such as hydrogels, are important for MPS innovations due to their ability to emulate the native extracellular matrix and tunable mechanical properties. Furthermore, hydrogels can be tailored to improve tissue maturity as well as the efficacy of instrumentation. However, many biopolymers are non-conductive, presenting complications for modeling excitable tissue environments like the heart. In this work, we show that an 8% (w/v) Gelatin Methacryloyl (GelMA) + 3.5% (v/v) Choline Acrylate hydrogel, nicknamed Gel-Amin, can amplify extracellular voltage recordings from a culture of cardiomyocytes (CMs) from commercial microelectrode arrays. Our laser cut and assemble method for manufacturing 3D MPSs allowed direct comparisons of CM signal propagation in Gel-Amin compared to control GelMA cultures in a single system. This innovative material supported in vitro CM cultures with improved synchronicity and greater signal-to-noise ratios (SNRs), suggesting potential improvements over conventional biomaterial limitations. Here, we developed a cost-effective in vitro cardiac tissue model that allows real-time electrical activity monitoring.

bioengineering↗