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Biology subjects

Paniagua, E. V.

Publications and source records attributed to Paniagua, E. V..

2 recordsLinked to original sources

Wireless Magnetomechanical Stimulation of Targeted Vagal Gut-Brain Circuits

Causal manipulation of gut-brain neural circuits empowers studies of metabolism and interoception. However, the anatomy and cytoarchitecture of peripheral ganglia relaying gut-brain circuits pose challenges to deployment of optical or electrical stimulation probes. To enable implant-free, cell-type specific, and temporally precise control of defined gut-brain pathways, we develop a neuromodulation platform based on magnetic nanodiscs (MNDs) targeted to peripheral neurons via genetically delivered anchoring moieties. The anchored MNDs selectively transduce externally applied weak magnetic fields to mechanical torque, thereby activating endogenous mechanosensitive pathways in specified cell types with sub-second latency. When targeted to nodose ganglia neurons expressing oxytocin or glucagon-like peptide 1 receptors, MND-mediated stimulation enables robust and reversible activation of gut-brain signaling, which engages hindbrain satiety circuits and regulates feeding behavior. These findings establish MND-mediated stimulation as a genetically targetable, implant-free strategy for modulating gut-brain neural circuits and highlight its potential in studies of brain-body physiology and bioelectronic medicines.

bioengineering↗

Magnetoelectric nanodiscs diminish motor deficits in a model of Parkinson's disease

Magnetoelectric nanodiscs (MENDs) offer a wireless, minimally invasive route to neuromodulation by converting weak magnetic fields into electric polarization, but their therapeutic applications have remained unrealized. Here, we report the therapeutic development of MENDs for deep brain stimulation (DBS) in the subthalamic nucleus (STN) to alleviate motor deficits in a mouse model of Parkinsons disease. To quantitatively assess therapeutic outcomes, we introduce GaitPattern, a computational pipeline that extracts DBS-induced alterations in salient gait features. Using GaitPattern, we demonstrate that MEND-mediated STN DBS induces motor improvements with precision comparable to clinical electrode-based DBS, while minimizing inflammatory responses associated with the implanted hardware. Notably, MEND-mediated DBS reduces oxidative stress in the brain, a key contributor to neurodegeneration. These findings position MEND-mediated STN DBS as an effective and minimally invasive neuromodulation strategy.

neuroscience↗