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Biology subjects

Jamiel, M.

Publications and source records attributed to Jamiel, M..

2 recordsLinked to original sources

A Fully Endovascular Neural Interface

Electrical stimulation of neural circuits is expanding therapeutic strategies to modulate brain, autonomic, and immune functions. Devices delivered endovascularly offer a less invasive alternative to conventional implanted electrodes, while delivering spatio-temporal specificity superior to noninvasive techniques. We demonstrate a fully endovascular sub-1-mm3 implant, utilizing ultrasound for wireless power delivery and data telemetry in a fashion invariant to device orientation. The implant consists of piezoelectric transducers, an energy storage capacitor, an application-specific integrated circuit, and electrodes packaged on a 7-{micro}m-thick polyimide scaffold. The implant can be delivered through a microcatheter in a manner analogous to conventional neurovascular stents, and self-expands upon deployment to appose the vessel walls. We demonstrate intravascular stimulation of the autonomic nervous system from the carotid artery, achieving modulation of blood pressure in rabbits. This approach establishes a broadly applicable platform for neural interfaces enabling both stimulation and recording.

neuroscience↗

Expandable, Functional Hepatocytes Derived from Primary Cells Enable Liver Therapeutics

Liver disease affects millions annually in the United States, with orthotopic transplantation as the only curative option for many patients. However, the scarcity of donor organs highlights a need for alternative cell-based therapies. Hepatocyte-based approaches are promising due to the cells inherent synthetic, metabolic, and detoxifying functions, but they face critical barriers, including the lack of a scalable source of functional hepatocytes and poor engraftment. In this study, we developed a scalable process for expanding primary human hepatocytes (PHHs) while preserving their identity and function. By leveraging heterocellular aggregation with stromal cells, we generated cryopreserved "seed" constructs that maintained viability and function post-thaw. Seeds demonstrated enhanced metabolic and detoxification functions and robust engraftment across multiple anatomic sites outside of the liver. Our approach addresses key limitations of hepatocyte-based therapies, offering a stable, scalable, and clinically viable platform for liver cell therapy applications.

bioengineering↗