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Biology subjects

Melosh, N.

Publications and source records attributed to Melosh, N..

2 recordsLinked to original sources

A CMOS-based highly scalable flexible neural electrode interface

Perception, thoughts, and actions are encoded by the coordinated activity of large neuronal populations spread over large areas. Using thin film electrocorticography (ECoG) arrays, this cortical activity has been used to decode speech and individual finger movements, enabling neuroprosthetics, and to localize epileptic foci. However, the connectorization of these multi-thousand channel thin-film arrays to external circuitry is challenging; current state-of-the-art methods are complex, bulky, and unscalable. We address this shortcoming by developing an electrode connector based on an ultra-conformable thin film electrode array that self-assembles onto hard silicon chip sensors, such as microelectrode arrays (MEAs) or camera sensors enabling large channel counts at high density. The interconnects are formed using microfabricated electrode pads suspended by thin support arms, termed flex2chip. Capillary-assisted assembly drives the pads to deform towards the chip surface, and van der Waals forces maintain this deformation, establishing mechanical and Ohmic contact onto individual pixels. We demonstrate a 2200-channel array with a channel density of 272 channels / mm2 connected to the MEA through the flex2chip interconnection method. Thin film electrode arrays connected through the flex2chip successfully measured extracellular action potentials ex vivo. Furthermore, in a transgenic mouse model for absence epilepsy, Scn8a+/-, we observed highly variable propagation trajectories at micrometer scales, even across the duration of a single spike- and-wave discharge (SWD).

bioengineering↗

Ultra-sensitive measurement of brain penetration mechanics and blood vessel rupture with microscale probes

Microscale electrodes, on the order of 10-100 m, are rapidly becoming critical tools for neuroscience and brain-machine interfaces (BMIs) for their high channel counts and spatial resolution, yet the mechanical details of how probes at this scale insert into brain tissue are largely unknown. Here, we performed quantitative measurements of the force and compression mechanics together with real-time microscopy for in vivo insertion of a systematic series of microelectrode probes as a function of diameter (7.5-100 m and rectangular Neuropixels) and tip geometry (flat, angled, and electrochemically sharpened). Results elucidated the role of tip geometry, surface forces, and mechanical scaling with diameter. Surprisingly, the insertion force post-pia penetration was constant with distance and did not depend on tip shape. Real-time microscopy revealed that at small enough lengthscales (<25 m), blood vessel rupture and bleeding during implantation could be entirely avoided. This appears to occur via vessel displacement, avoiding capture on the probe surface which led to elongation and tearing for larger probes. We propose a new, three-zone model to account for the probe size dependence of bleeding, and provide mechanistic guidance for probe design. Significance StatementMicroscale neural probes are central to next-generation brain-machine interfaces, yet how they physically penetrate living brain remains poorly quantified. Using a high-sensitivity force sensor integrated with real-time microscopy, we measured in vivo force-displacement and visualized vascular responses for microwires (7.5-100 m) and Neuropixels. We find that once the brains protective pia membrane is breached, insertion force remains essentially constant with depth, while pia puncture force and pre-penetration compression scale linearly with probe diameter. Real-time imaging reveals a sub-25 m regime in which blood vessels are displaced rather than ruptured. These results motivate a three-zone model of vessel capture versus displacement and provide actionable mechanical design rules for low-trauma, high-density neural interfaces.

neuroscience↗