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Belan, P.

Publications and source records attributed to Belan, P..

2 recordsLinked to original sources

Gene Therapy for Efficient Suppression of T-Type Channels in Treating Diabetic Neuropathy

Painful diabetic neuropathy (PDN), a chronic and often incurable syndrome, is one of the most common and unpleasant complications of diabetes. Effective clinical interventions for PDN are very limited and already developed approaches are characterized by lack of molecular or cellular target specificity and a short duration of therapeutic effects. Numerous investigations causally link upregulation of the Cav3.2 T-type Ca2+ channels in peripheral nociceptive neurons to painful symptoms of PDN. Here we suggest an approach to alleviate these symptoms based on implementation of virus-mediated cell-specific delivery of vectors expressing small hairpin RNAs (shRNAs). Processed by Dicer into specific small interfering RNA (siRNA), they would suppress the expression of T-type Ca2+ channels. In order to experimentally validate this approach, we have initially confirmed the ability of designed Dicer-substrate small interfering RNAs (DsiRNAs) to suppress expression of T-type channels in neurons of primary hippocampal and dorsal root ganglia (DRG) cultures. Target sequences of the effectively interfering DsiRNA were then used to design shRNAs and the coding sequences of shRNAs were cloned into the vector pAAV under U6 promotor. This plasmid was also proved to be effective in interference with expression of the T-type channels in the rat cultured DRG neurons. The expression cassette of this plasmid will be packed into AAV6 particles with tropism to unmyelinated fibers to suppress T-type channel expression in nociceptive DRG neurons and to alleviate painful symptoms of PDN.

neuroscience↗

Implantable 3D printed multiplexed microtunnels for spinal cord injury treatment

3D printed scaffolds offer a promising strategy for treating spinal cord injury (SCI). Here we present an innovative biotechnological approach for free-form 3D printing of scaffolds with a biomimetic architecture at a spatial resolution of up to a micrometer, designed for implantation in treatment of SCI in Wistar rats. The fabrication of scaffolds was based on 2-photon photopolymerization of organic polymers and was scalable to lesion geometries. The scaffolds were implemented as multiple densely packed squared parallel microtunnels (50 m per side) running their entire length. These microtunnels are separated by thin walls (5-10 m), rendering the scaffolds nearly hollow while maximizing their internal surface area. This design provides an optimal substrate, spatially aligned in the rostro-caudal direction, to support axonal and vascular ingrowth. We have found that the scaffolds, implanted in the excision of the lateral half-fragment of the spinal cord at the low thoracic level demonstrated excellent integration with surrounding tissue without the formation of a significant gliofibrous scar. Myelinated axons and oligodendrocytes, as well as vessels were observed in each microtunnel of the implanted scaffolds in 12 weeks after the operation with at least 1000 axons regenerating in the scaffold throughout its whole length. The treatment significantly improved motor function and reduced spasticity in the ipsilateral paretic limb by 8th week, with recovery sustained for at least 20 weeks. Thus, 3D oriented hollow scaffolds having a large internal surface area and direct continues microtunnels, effectively reducing axonal dispersion, mimic natural structure of the recipient tissue and create conditions for enhancing spinal cord regeneration and recovery of the motor function of the paretic limb.

bioengineering↗