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Matter, L.

Publications and source records attributed to Matter, L..

2 recordsLinked to original sources

Daily electric field treatment improves functional outcomes after thoracic contusion spinal cord injury in rats

Spinal cord injury (SCI) can result in permanent loss of sensory, motor, and autonomic functions, with limited therapeutic options to recover the loss. Low-frequency electric fields with changing polarity have shown promise in promoting axon regeneration and improving outcomes. However, the metal electrodes used previously were prone to corrosion, and their epidural placement limited the penetration of the electric field into the spinal cord. Here, we demonstrate that a thin-film implant with supercapacitive electrodes placed under the dura mater can safely and effectively deliver electric field treatment in rats with thoracic SCI. Subdural stimulation enhanced hind limb function and touch sensitivity compared to controls, without inducing a neuroinflammatory response in the spinal cord. While axon density around the lesion site remained unchanged after 12 weeks, in vivo monitoring and electrochemical testing of electrodes indicated that treatment was administered throughout the study. These results highlight the promise of electric field treatment as a viable therapeutic strategy for achieving long-term functional recovery in SCI.

neuroscience↗

Bioelectronic microfluidic wound healing

This work delves into the impact of direct current (DC) stimulation on both healthy and diabetic in vitro wound healing models of keratinocytes, the most prevalent cell type of the skin. The augmentation of non-metal electrode materials and prudent microfluidic design allowed for a platform to study the effects of different sustained (12 hours DC) electric field configurations on wound closure dynamics. We found that electric guidance cues ([~=] 200mVmm-1) enhance wound closure rate by nearly 3X for both healthy and diabetic-like keratinocyte sheets, compared to their respective controls. The motility-inhibited keratinocytes regained wound closure rates with stimulation (increase from 1.0 to 2.8% hr-1) comparable to healthy non-stimulated keratinocyte collectives (3.5% hr-1). Our results bring hope that electrical stimulation is a viable pathway to accelerate wound repair.

bioengineering↗