The loss of oligodendrocytes (OLs) and subsequently myelin sheaths following injuries or pathologies in the CNS leads to debilitating functional deficits. Unfortunately, effective methods of remyelination remain limited. Here, we present a scaffolding system that enables sustained non-viral delivery of microRNAs (miRs) to direct OL differentiation, maturation, and myelination. We show that miR-219/miR-338 promoted primary rat OL differentiation and myelination in vitro. Using spinal cord injury as a proof-of-concept, we further demonstrate that miR-219/miR-338 could also be delivered non-virally in vivo using an aligned fiber-hydrogel scaffold to enhance remyelination after a hemi-incision injury at C5 level of Sprague-Dawley rats. Specific...
Differential expression of miRNAs occurs in injured proximal nerve stumps and includes miRNAs that a...
Multiple sclerosis is an autoimmune disease of the central nervous system that is widespread and rep...
Axons damaged by traumatic injuries are unable to spontaneously regenerate in the adult central nerv...
Spinal cord injuries (SCI) are followed by a complex series of events that contribute to the failure...
Remyelination is a key aspect in multiple sclerosis pathology and a special effort is being made to ...
Remyelination is a key aspect in multiple sclerosis pathology and a special effort is being made to ...
Remyelination in the central nervous system (CNS) is critical in the treatment of many neural pathol...
Effective remyelination in the central nervous system (CNS) facilitates the reversal of disability i...
MiR-219 and miR-338 (miR-219/miR-338) are oligodendrocyte-specific microRNAs. The overexpression of ...
Current treatment approaches toward spinal cord injuries (SCI) have mainly focused on overcoming the...
Oligodendrocyte (OL) loss and demyelination occur after spinal cord injury (SCI). Stimulation of rem...
MicroRNAs effectively modulate protein expression and cellular response. Unfortunately, the lack of ...
Oligodendrocyte differentiation and myelin formation are processes that are fundamental to have rapi...
The death of mature oligodendrocytes (OLs) leads to demyelination in the central nervous system (CNS...
SummaryTo investigate the role of microRNAs in regulating oligodendrocyte (OL) differentiation and m...
Differential expression of miRNAs occurs in injured proximal nerve stumps and includes miRNAs that a...
Multiple sclerosis is an autoimmune disease of the central nervous system that is widespread and rep...
Axons damaged by traumatic injuries are unable to spontaneously regenerate in the adult central nerv...
Spinal cord injuries (SCI) are followed by a complex series of events that contribute to the failure...
Remyelination is a key aspect in multiple sclerosis pathology and a special effort is being made to ...
Remyelination is a key aspect in multiple sclerosis pathology and a special effort is being made to ...
Remyelination in the central nervous system (CNS) is critical in the treatment of many neural pathol...
Effective remyelination in the central nervous system (CNS) facilitates the reversal of disability i...
MiR-219 and miR-338 (miR-219/miR-338) are oligodendrocyte-specific microRNAs. The overexpression of ...
Current treatment approaches toward spinal cord injuries (SCI) have mainly focused on overcoming the...
Oligodendrocyte (OL) loss and demyelination occur after spinal cord injury (SCI). Stimulation of rem...
MicroRNAs effectively modulate protein expression and cellular response. Unfortunately, the lack of ...
Oligodendrocyte differentiation and myelin formation are processes that are fundamental to have rapi...
The death of mature oligodendrocytes (OLs) leads to demyelination in the central nervous system (CNS...
SummaryTo investigate the role of microRNAs in regulating oligodendrocyte (OL) differentiation and m...
Differential expression of miRNAs occurs in injured proximal nerve stumps and includes miRNAs that a...
Multiple sclerosis is an autoimmune disease of the central nervous system that is widespread and rep...
Axons damaged by traumatic injuries are unable to spontaneously regenerate in the adult central nerv...