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SHARMA, M.

Publications and source records attributed to SHARMA, M..

2 recordsLinked to original sources

Electrophysiological Characteristics of Epidural Spinal Signals in Preclinical Models of Spinal Cord Stimulation

ObjectivesEpidural stimulation of the spinal cord evokes distinct electrophysiological responses that can be recorded epidurally. Here, we characterized evoked compound action potentials (ECAPs), doublets (secondary or tertiary ECAPs, likely of different physiological origin than primary ECAPs), evoked synaptic activity potentials (ESAPs), and electromyographic (EMG) signals in preclinical models. Our objective was to clarify the features and distinct physiological origins of these signals, in order to advance mechanistic studies and support clinical applications of spinal cord stimulation (SCS) therapy. Materials and MethodsAdult male Sprague-Dawley rats (300-440 g) were implanted with two epidural leads (caudal and rostral; each with eight electrodes) and received monopolar, biphasic stimulation (200 s pulse width) at 2 and 50 Hz, with current increased stepwise to motor threshold. Rhesus macaques (11.5 and 10.2 kg) were implanted with a single 12-electrode epidural lead and stimulated using either tripolar, triphasic pulses at 10 Hz (100 s) or tripolar, biphasic pulses at 3 Hz (80 s) up to 3xECAP threshold. Recordings were taken from non-stimulating electrodes. ResultsECAPs and EMG signals were recorded across multiple spinal segments in both rats (L1-T7) and macaques (L2-T11). Doublets presented as complex waveforms with multiple negative peaks, two in rats and three in macaques, likely representing distinct ECAPs at T11-T6 in a rat and L1-T11 in macaques. ESAPs, detectable in rats, showed anatomical specificity, over the L1/T13 vertebrae with peak responses at L1. Signal analysis included activation thresholds, amplitudes, latencies, and conduction velocities. ConclusionsThis study outlines electrophysiological signals evoked by SCS in terms of their waveform, recruitment thresholds, and putative physiological origins. We propose that, to the extent these signals reflect different aspects of spinal processing and may serve as biomarkers of dysregulated nociceptive pathways, as well as indicators of SCS efficacy or potential side effects.

neuroscience↗

Turning blood to brain cells: a plasma mediated reprograming model

The lack of effective stem cell protocols for generating personalized neurovascular niches poses a critical challenge in precision medicine. While iPSC-based methods are explored, their clinical use is hindered by high costs, long timelines, and cancer risks. Recent advancements in plasma-driven differentiation, using circulating monocytes, offer a promising solution as they can be reprogrammed into neuron-like, endothelial-like, and hematopoietic cells without genetic manipulation, by inducing growth factors mediated transdifferentiation. Vasculature is integral to neurodevelopment, with early blood supply transitioning from the perineural to intrinsic vascular plexus, driven by neuro-hematovascular signaling. The choroid plexus selectively transports proteins and growth factors from blood to CSF, supporting neural proliferation and differentiation. Building on these insights, we leveraged the innate reprograming potential of blood-derived cells to generate neuro-hematovascular niches using a novel PITTRep methodology, devoid of transgene and growth factor mediated transdifferentiation opening new avenues for regenerative and investigative neurovascular studies.

cell biology↗