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Warren, P. M.

Publications and source records attributed to Warren, P. M..

2 recordsLinked to original sources

Recovery of forearm and fine digit function after chronic spinal cord injury by simultaneous blockade of inhibitory matrix CSPG production and the receptor PTPσ.

Spinal cord injuries, for which there are limited effective clinical treatments, result in enduring paralysis and hypoesthesia due, in part, to the inhibitory microenvironment that develops and limits regeneration/sprouting, especially during chronic stages. Recently, we discovered that targeted enzymatic modulation of the potently inhibitory chondroitin sulfate proteoglycan (CSPG) component of the extracellular and perineuronal net (PNN) matrix via Chondroitinase ABC (ChABC) can rapidly restore robust respiratory function to the previously paralyzed hemi-diaphragm after remarkably long times post-injury (up to 1.5 years) following a cervical level 2 lateral hemi-transection. Importantly, ChABC treatment at cervical level 4 in this chronic model also elicited rapid, albeit modest, improvements in upper arm function. In the present study, we sought to further optimize and elucidate the capacity for nerve sprouting and/or regeneration to restore gross as well as fine motor control of the forearm and digits at lengthy chronic stages post injury. However, instead of using ChABC, we utilized a novel and more clinically relevant systemic, non-invasive combinatorial treatment strategy designed to both reduce and overcome inhibitory CSPGs simultaneously and spatially extensively. Following a three-month upper cervical spinal hemi-lesion using adult female Sprague Dawley rats, we show that the combined treatment has a profound effect on functional recovery of the chronically paralyzed forelimb and paw, specifically during walking as well as precision movements of the digits. Our exciting pre-clinical findings will begin to enhance our understanding of the basic mechanisms underlying functionally beneficial regenerative events occurring at chronic injury stages for clinically relevant translational benefits. Significance statementOvercoming the persistent axon inhibitory environment following a functionally debilitating incomplete spinal cord lesion has long proven to be an elusive dilemma, especially months to years after the initial spinal injury. Current therapeutic and rehabilitative techniques for patients suffering from chronic cervical spinal insults minimally, if at all, address this structural hindrance and support limited return of crucial behaviors such as voluntary use of the arms and hands. Our investigation into the behavioral and anatomical consequences of systemically perturbing the high-affinity binding interaction between the receptor PTP{sigma} and the extracellular chondroitin sulfate proteoglycans highlight an underlying barrier to the restoration of forelimb/paw walking and eating behavior 12-weeks after a cervical spinal hemi-transection.

neuroscience↗

Delayed viral vector mediated delivery of neurotrophin-3 improves skilled hindlimb function and stability after thoracic contusion in rats

It has been reported that intramuscular injection of an Adeno-associated viral vector serotype 1 (AAV1) encoding Neurotrophin-3 (NT3) into hindlimb muscles 24 hours after a severe T9 contusion in rats induced lumbar spinal neuroplasticity, partially restored locomotive function and reduced spasms during swimming. Here we investigated whether a targeted delivery of NT3 to lumbar and thoracic motor neurons 48 hours following a severe contusive injury aids locomotive recovery in rats. AAV1-NT3 was injected into the tibialis anterior, gastrocnemius and rectus abdominus muscles 48-hours following trauma, persistently elevating serum levels of the neurotrophin. NT3 improved trunk stability, accuracy of stepping during skilled locomotive tasks, and alternation of the hindlimbs during swimming, but it had no effect on gross locomotion function in the open field. The number of vGlut1+ (likely proprioceptive afferent) boutons on gastrocnemius -motor neurons was increased after injury but normalised following NT3 treatment suggestive of a mechanism in which the functional effects may be mediated through proprioceptive feedback. Ex vivo MRI revealed substantial loss of grey and white matter at the lesion epicentre but no effect of delayed NT3 treatment to induce neuroprotection or prevent secondary damage. Spasms and hyperreflexia were not reliably induced in this severe injury model suggesting a more complex anatomical or physiological cause to their induction. We have shown that delayed intramuscular AAV-NT3 treatment can promote recovery in skilled stepping and coordinated swimming supporting a role for NT3 as a therapeutic strategy for spinal injuries potentially through modulation of somatosensory feedback. Key PointsO_LITargeted delivery of NT3 to hindlimb and trunk muscles at a clinically relevant 48h following a severe thoracic contusion aids fine locomotor control and synchronised movement. C_LIO_LINT3 mediated improvements in trunk stability, accuracy of stepping during skilled locomotive tasks, and alternation of the hindlimbs during swimming through the normalisation of vGlut1+ boutons on presumptive proprioceptive afferents innervating these muscles. C_LIO_LI250kDyn thoracic contusion does not reliably result in measurable signs of spasticity. C_LI

neuroscience↗