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Weirnick, R.

Publications and source records attributed to Weirnick, R..

2 recordsLinked to original sources

A dNmnat-sensitized in vivo platform for unbiased discovery of regulators of neurodegeneration

Axon degeneration drives nervous system dysfunction in diverse neurological diseases and injuries. While key regulators of injury-induced Wallerian degeneration have been identified, approaches have largely relied on axotomy, a particularly extreme injury for a neuron. Here, we developed a forward genetic screening platform in the adult Drosophila wing that sensitizes neurons to degeneration through depletion of nicotinamide mononucleotide adenylyltransferase (dNmnat), the essential NAD+ biosynthetic enzyme. We screened 9,393 mutagenized chromosomes and recovered 59 mutations that suppress neurodegeneration induced by dNmant depletion, including the known pro-degenerative molecule dSarm, thereby validating our approach. We show loss of CG4098, the Drosophila homolog of the mammalian enzyme NUDT9, robustly preserved axons and induced widespread remodeling of NAD+-related metabolites, which provides a new link between cADP-ribose hydrolase activity and neuronal survival. We further show mutations in the transcription factor Abrupt resulted in elevated dNmnat protein levels and blocked axon degeneration, suggesting Abrupt normally tunes dNmnat levels and neuronal NAD+ homeostasis. dNmnat depletion is thus a versatile approach for unbiased discovery of axon death pathway components, each of which may provide new entry points for therapeutic strategies to preserve axons in neurodegenerative diseases.

neuroscience↗

Magnetoelectrics Enables Large Power Delivery to mm-Sized Wireless Bioelectronics

To maximize the capabilities of minimally invasive implantable bioelectronic devices, we must deliver large amounts of power to small implants; however, as devices are made smaller, it becomes more difficult to transfer large amounts of power without a wired connection. Indeed, recent work has explored creative wireless power transfer (WPT) approaches to maximize power density (the amount of power transferred divided by receiver footprint area (length x width)). Here, we analyzed a model for WPT using magnetoelectric (ME) materials that convert an alternating magnetic field into an alternating voltage. With this model, we identify the parameters that impact WPT efficiency and optimize the power density. We find that improvements in adhesion between the laminated ME layers, clamping, and selection of material thicknesses lead to a power density of 3.1 mW/mm2, which is over 4 times larger than previously reported for mm-sized wireless bioelectronic implants at a depth of 1 cm or more in tissue. This improved power density allows us to deliver 31 mW and 56 mW to 10-mm2 and 27-mm2 ME receivers, respectively. This total power delivery is over 5 times larger than similarly sized bioelectronic devices powered by radiofrequency electromagnetic waves, inductive coupling, ultrasound, light, capacitive coupling, or previously reported magnetoelectrics. This increased power density opens the door to more power-intensive bioelectronic applications that have previously been inaccessible using mm-sized battery-free devices.

neuroscience↗