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Rasueva, T.

Publications and source records attributed to Rasueva, T..

2 recordsLinked to original sources

Fusogen-induced recovery of spinal cord function andmorphology after complete transection

BackgroundSpinal cord injury is a critical issue in neurosurgery, lacking established clinical methods for functional restoration. This study reports the effects of a fusogen sealant, composed of polyethylene glycol and chitosan, in an experimental model of complete spinal cord transection in pigs. ObjectiveTo evaluate the functional and morphological recovery of the spinal cord in an animal model of complete transection following treatment with a polyethylene glycol-chitosan conjugate. Materials and methodsHungarian Mangalica pigs (m = 20.0 {+/-} 2.0 kg, N = 5) underwent complete transection of the thoracic spinal cord, followed by an extended laminectomy and transpedicular fixation. In the experimental group (N = 3), a synthesized gel based on a polyethylene glycol-chitosan conjugate was applied to the spinal gap; the other group (N = 2) served as a control. The postoperative period lasted 60 days and included multi-component rehabilitation. Clinical-functional status was assessed using established neurological scales. In vivo retrograde tracing of the spinal cord was performed using hydroxystilbamidine (FluoroGold). Following the experiment, immunofluorescent histology was conducted using primary antibodies to neurofilament (NF-200), a fluorochrome-conjugated secondary antibody, and the nuclear dye 4,6-diamidino-2-phenylindole (DAPI). The resulting morphology was examined via fluorescence and light microscopy. ResultsControl animals maintained lower paraplegia, anesthesia, and pelvic dysfunction throughout the experiment. In contrast, the experimental group showed positive changes, including the return of sensation from day two. By the end of the study, all animals in this group could assume an upright posture and ambulate on all limbs. These outcomes were statistically significant. Microscopy revealed axons traversing the injury site in the experimental group, whereas control samples showed degenerative post-traumatic changes. ConclusionsThis study demonstrates that a fusogen sealant based on a polyethylene glycol-chitosan conjugate promotes significant morphofunctional recovery after complete spinal cord transection, supporting its therapeutic potential.

neuroscience↗

A phrenic-sparing cephalic reanastomosis model: Acute effects and implications

BackgroundHead transplantation (HT), also known as cephalosomatic anastomosis (CSA), is a surgical procedure proposed as a potential method to extend lifespan in cases of terminal bodily failure. CSA requires a thorough evaluation of each step using appropriate experimental animal models, with pigs being particularly suitable due to their anatomical and physiological similarities to humans. The critical challenge in HT is spinal cord fusion, which current research suggests can be facilitated using fusogens. To refine the technical aspects of the procedure, we conducted head replantation in a pig model using polyethylene glycol (PEG)-chitosan conjugate (Neuro-PEG). In this article, we evaluate the technical aspects of this procedure, the rate of recovery of ventilation after spinal cord fusion, and phrenic sparing in a model of autologous decapitation-reanastomosis in a single swine. MethodsA Hungarian Mangalica pig was submitted to surgical separation of the head while maintaining blood flow to the brain through cannulation of the primary cervical vessels. After cephalic separation, the head was reconnected, and the cervical spinal cord fused. ResultsThe animal was weaned from ventilation after 5 h and kept on spontaneous breathing. The animal regained full consciousness, demonstrated early signs of sensory recovery, and restored brain functions. ConclusionPending further confirmatory studies, a phrenic-sparing cephalic reanastomosis with spinal cord fusion using fusogens has clarified the technical aspects of the procedure. A head replantation model with complete vascular cannulation was developed, resulting in the recovery of spontaneous breathing and brain functions.

bioengineering↗