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1.
Int J Mol Sci ; 22(23)2021 Nov 26.
Article in English | MEDLINE | ID: mdl-34884629

ABSTRACT

In recent years, much attention has been paid to the study of the therapeutic effect of the microelement selenium, its compounds, especially selenium nanoparticles, with a large number of works devoted to their anticancer effects. Studies proving the neuroprotective properties of selenium nanoparticles in various neurodegenerative diseases began to appear only in the last 5 years. Nevertheless, the mechanisms of the neuroprotective action of selenium nanoparticles under conditions of ischemia and reoxygenation remain unexplored, especially for intracellular Ca2+ signaling and neuroglial interactions. This work is devoted to the study of the cytoprotective mechanisms of selenium nanoparticles in the neuroglial networks of the cerebral cortex under conditions of ischemia/reoxygenation. It was shown for the first time that selenium nanoparticles dose-dependently induce the generation of Ca2+ signals selectively in astrocytes obtained from different parts of the brain. The generation of these Ca2+ signals by astrocytes occurs through the release of Ca2+ ions from the endoplasmic reticulum through the IP3 receptor upon activation of the phosphoinositide signaling pathway. An increase in the concentration of cytosolic Ca2+ in astrocytes leads to the opening of connexin Cx43 hemichannels and the release of ATP and lactate into the extracellular medium, which trigger paracrine activation of the astrocytic network through purinergic receptors. Incubation of cerebral cortex cells with selenium nanoparticles suppresses ischemia-induced increase in cytosolic Ca2+ and necrotic cell death. Activation of A2 reactive astrocytes exclusively after ischemia/reoxygenation, a decrease in the expression level of a number of proapoptotic and proinflammatory genes, an increase in lactate release by astrocytes, and suppression of the hyperexcitation of neuronal networks formed the basis of the cytoprotective effect of selenium nanoparticles in our studies.


Subject(s)
Astrocytes/cytology , Calcium/metabolism , Gliosis/drug therapy , Nanoparticles/administration & dosage , Neuroprotective Agents/administration & dosage , Reperfusion Injury/prevention & control , Selenium/administration & dosage , Animals , Antioxidants/administration & dosage , Antioxidants/chemistry , Astrocytes/drug effects , Astrocytes/immunology , Astrocytes/metabolism , Calcium Signaling , Gliosis/immunology , Gliosis/metabolism , Gliosis/pathology , Nanoparticles/chemistry , Neurons/drug effects , Neurons/immunology , Neurons/metabolism , Neurons/pathology , Neuroprotective Agents/chemistry , Rats , Reperfusion Injury/etiology , Reperfusion Injury/metabolism , Reperfusion Injury/pathology , Selenium/chemistry
2.
Glia ; 68(1): 193-210, 2020 01.
Article in English | MEDLINE | ID: mdl-31465122

ABSTRACT

Myelination increases the conduction velocity in long-range axons and is prerequisite for many brain functions. Impaired myelin regulation or impairment of myelin itself is frequently associated with deficits in learning and cognition in neurological and psychiatric disorders. However, it has not been revealed what perturbation of neural activity induced by myelin impairment causes learning deficits. Here, we measured neural activity in the motor cortex during motor learning in transgenic mice with a subtle impairment of their myelin. This deficit in myelin impaired motor learning, and was accompanied by a decrease in the amplitude of movement-related activity and an increase in the frequency of spontaneous activity. Thalamocortical axons showed variability in axonal conduction with a large spread in the timing of postsynaptic cortical responses. Repetitive pairing of forelimb movements with optogenetic stimulation of thalamocortical axon terminals restored motor learning. Thus, myelin regulation helps to maintain the synchrony of cortical spike-time arrivals through long-range axons, facilitating the propagation of the information required for learning. Our results revealed the pathological neuronal circuit activity with impaired myelin and suggest the possibility that pairing of noninvasive brain stimulation with relevant behaviors may ameliorate cognitive and behavioral abnormalities in diseases with impaired myelination.


Subject(s)
Action Potentials/physiology , Learning/physiology , Motor Cortex/metabolism , Nerve Fibers, Myelinated/metabolism , Neurons/metabolism , Psychomotor Performance/physiology , Animals , Male , Mice , Mice, Transgenic , Motor Cortex/chemistry , Myelin Sheath/metabolism , Nerve Fibers, Myelinated/chemistry , Neurons/chemistry , Optogenetics/methods
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