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Nocera, S.

Publications and source records attributed to Nocera, S..

3 recordsLinked to original sources

Adolescent oligodendrogenesis and myelination restrict experience-dependent neuronal plasticity in adult visual cortex

BACKGROUNDDevelopmental myelination is a protracted process in the mammalian brain. One theory for why oligodendrocytes mature so slowly posits that myelination may stabilize neuronal circuits and temper neuronal plasticity as animals age. We tested this hypothesis in the visual cortex, which has a well-defined critical period for experience-dependent neuronal plasticity. OBJECTIVES/METHODSTo prevent myelin progression, we conditionally deleted Myrf, a transcription factor necessary for oligodendrocyte maturation, from oligodendrocyte precursor cells (Myrf cKO) in adolescent mice. To induce experience-dependent plasticity, adult control and Myrf cKO mice were monocularly deprived by eyelid suture. Functional and structural neuronal plasticity in the visual cortex were assessed in vivo by intrinsic signal optical imaging and longitudinal two photon imaging of dendritic spines, respectively. RESULTSDuring adolescence, visual experience modulated the rate of oligodendrocyte maturation in visual cortex. Myrf deletion from oligodendrocyte precursors during adolescence led to inhibition of oligodendrocyte maturation and myelination that persisted into adulthood. Following monocular deprivation, visual cortex activity in response to visual stimulation of the deprived eye remained stable in adult control mice, as expected for post-critical period animals. By contrast, visual cortex responses to the deprived eye decreased significantly following monocular deprivation in adult Myrf cKO mice, reminiscent of the plasticity observed in adolescent mice. Furthermore, visual cortex neurons in adult Myrf cKO mice had fewer dendritic spines and a higher level of spine turnover. Finally, monocular deprivation induced spatially coordinated spine size decreases in adult Myrf cKO, but not control, mice. CONCLUSIONSThese results demonstrate a critical role for oligodendrocytes in shaping the maturation and stabilization of cortical circuits and support the concept of myelin acting as a brake on neuronal plasticity during development.

neuroscience↗

Activation of Shh/Smo is sufficient to maintain oligodendrocyte precursor cells in an undifferentiated state but is not necessary for differentiation

Myelination is the terminal step in a complex and precisely timed program that orchestrates the proliferation, migration and differentiation of oligodendroglial cells. It is thought that Sonic Hedgehog (Shh) acting on Smoothened (Smo) participates in regulating this process, but that these effects are highly context dependent. Here, we investigate oligodendroglial development and remyelination from three specific transgenic lines: NG2-CreERT2 (control), Smofl/fl/NG2-CreERT2 (loss of function) and SmoM2/NG2-CreERT2 (gain of function), as well as pharmacological manipulation that enhance or inhibit the Smo pathway (SAG or cyclopamine treatment respectively). To explore the effects of Shh/Smo on differentiation and myelination in vivo, we developed a highly quantifiable model by transplanting OPCs in the retina. We find that myelination is greatly enhanced upon cyclopamine treatment and hypothesize that Shh/Smo could promote OPC proliferation to subsequently inhibit differentiation. Consistent with this hypothesis, we find that the genetic activation of Smo significantly increased numbers of OPCs and decreased oligodendrocyte differentiation when we examined the corpus callosum during development and after cuprizone demyelination and remyelination. However, upon loss of function with the conditional ablation of Smo, myelination in the same scenarios are unchanged. Taken together, our present findings suggest that the Shh pathway is sufficient to maintain OPCs in an undifferentiated state, but is not necessary for myelination and remyelination.

neuroscience↗

Supporting central nervous system neuroprotection and remyelination by specific TLR4 antagonism

ApTOLL is an aptamer specifically designed to antagonize Toll-Like Receptor 4 (TLR4), a relevant actor for innate immunity involved in inflammatory responses in multiple sclerosis (MS) and other diseases. MS is a primary demyelinating, chronic, inmune and neurodegenerative disease of the central nervous system that normally debuts in young adults. The currently available therapeutic arsenal to treat MS is composed of immunomodulators but, to date, there are no (re)myelinating drugs available in clinics. Our present study shows cells expressing TLR4 in demyelinating lesions of MS patients (postmortem samples from cerebral cortex) and, as a derivative, we studied the effect of TLR4 inhibition with ApTOLL in animal models of MS (experimental autoimmune encephalomyelitis -EAE- and the cuprizone). The treatment with ApTOLL positively impacted the clinical symptomatology, and this was associated with better preservation plus restoration of myelin and oligodendrocytes in the demyelinated lesions of these animals, which suggests not only an immunomodulatory but also a remyelinating effect of the treatment with ApTOLL. This latter was corroborated on purified cultures of rodent and adult human oligodendrocyte precursor cells (OPCs), confirming the expression of TLR4 in this cell type. Altogether, the molecular nature of ApTOLL and its mechanism/s of action strongly supports this compound as a novel candidate to treat MS and other demyelinating scenarios.

neuroscience↗