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1.
Biomedicines ; 10(12)2022 Nov 24.
Article in English | MEDLINE | ID: mdl-36551781

ABSTRACT

Alzheimer's disease (AD) is a hereditary and sporadic neurodegenerative illness defined by the gradual and cumulative loss of neurons in specific brain areas. The processes that cause AD are still under investigation and there are no available therapies to halt it. Current progress puts at the forefront the "calcium (Ca2+) hypothesis" as a key AD pathogenic pathway, impacting neuronal, astrocyte and microglial function. In this review, we focused on mitochondrial Ca2+ alterations in AD, their causes and bioenergetic consequences in neuronal and glial cells, summarizing the possible mechanisms linking detrimental mitochondrial Ca2+ signals to neuronal death in different experimental AD models.

2.
Neurosci Res ; 182: 32-40, 2022 Sep.
Article in English | MEDLINE | ID: mdl-35710035

ABSTRACT

The brain synaptic circuitry is formed as a result of pre-defined genetic programs and sensory experience during postnatal development. Perineuronal nets ensheath synaptic boutons and control several crucial features of the synapse physiology. Formation of the perineuronal net microstructure during the brain development remains largely unstudied. Here we provide a detailed quantitative description of the 3-dimensional geometry of the synapse and the surrounding perineuronal net in the mouse somatosensory cortex layer IV. We compare the morphology of the synapse+perineuronal net complex in the adult brain formed under normal conditions or in the whisker shaving model of somatosensory deprivation. We demonstrate that the sensory deprivation causes flattening of the 3D PNN mesh geometry and reduction of the VGAT-positive cluster volume in presynaptic boutons. These results reveal a mechanism of the sensory input-dependent synapse morphogenesis during the brain development.


Subject(s)
Extracellular Matrix , Synapses , Animals , Extracellular Matrix/physiology , Mice , Sensory Deprivation/physiology , Somatosensory Cortex , Vibrissae
3.
Cells ; 10(7)2021 07 06.
Article in English | MEDLINE | ID: mdl-34359875

ABSTRACT

For some time, it has been accepted that the ß-site APP cleaving enzyme 1 (BACE1) and the γ-secretase are two main players in the amyloidogenic processing of the ß-amyloid precursor protein (APP). Recently, the membrane-type 5 matrix metalloproteinase (MT5-MMP/MMP-24), mainly expressed in the nervous system, has been highlighted as a new key player in APP-processing, able to stimulate amyloidogenesis and also to generate a neurotoxic APP derivative. In addition, the loss of MT5-MMP has been demonstrated to abrogate pathological hallmarks in a mouse model of Alzheimer's disease (AD), thus shedding light on MT5-MMP as an attractive new therapeutic target. However, a more comprehensive analysis of the role of MT5-MMP is necessary to evaluate how its targeting affects neurons and glia in pathological and physiological situations. In this study, leveraging on CRISPR-Cas9 genome editing strategy, we established cultures of human-induced pluripotent stem cells (hiPSC)-derived neurons and astrocytes to investigate the impact of MT5-MMP deficiency on their phenotypes. We found that MT5-MMP-deficient neurons exhibited an increased number of primary and secondary neurites, as compared to isogenic hiPSC-derived neurons. Moreover, MT5-MMP-deficient astrocytes displayed higher surface area and volume compared to control astrocytes. The MT5-MMP-deficient astrocytes also exhibited decreased GLAST and S100ß expression. These findings provide novel insights into the physiological role of MT5-MMP in human neurons and astrocytes, suggesting that therapeutic strategies targeting MT5-MMP should be controlled for potential side effects on astrocytic physiology and neuronal morphology.


Subject(s)
Astrocytes/metabolism , Excitatory Amino Acid Transporter 1/genetics , Induced Pluripotent Stem Cells/metabolism , Matrix Metalloproteinases, Membrane-Associated/genetics , Neural Stem Cells/metabolism , Neurons/metabolism , S100 Calcium Binding Protein beta Subunit/genetics , Action Potentials/physiology , Amyloid beta-Protein Precursor/genetics , Amyloid beta-Protein Precursor/metabolism , Astrocytes/cytology , CRISPR-Cas Systems , Cell Differentiation , Cell Line , Excitatory Amino Acid Transporter 1/metabolism , Gene Editing , Gene Expression Regulation , Gene Knockout Techniques , Humans , Induced Pluripotent Stem Cells/cytology , Matrix Metalloproteinases, Membrane-Associated/deficiency , Neural Stem Cells/cytology , Neurons/cytology , Patch-Clamp Techniques , S100 Calcium Binding Protein beta Subunit/metabolism , Signal Transduction
4.
J Mol Histol ; 50(3): 203-216, 2019 Jun.
Article in English | MEDLINE | ID: mdl-30903543

ABSTRACT

Perineuronal net (PNN) is a highly structured portion of the CNS extracellular matrix (ECM) regulating synaptic plasticity and a range of pathologic conditions including posttraumatic regeneration and epilepsy. Here we studied Wisteria floribunda agglutinin-stained histological sections to quantify the PNN size and enrichment of chondroitin sulfates in mouse brain and spinal cord. Somatosensory cortex sections were examined during the period of PNN establishment at postnatal days 14, 21 and 28. The single cell PNN size and the chondroitin sulfate intensity were quantified for all cortex layers and specifically for the cortical layer IV which has the highest density of PNN-positive neurons. We demonstrate that the chondroitin sulfate proteoglycan staining intensity is increased between P14 and P28 while the PNN size remains unchanged. We then addressed posttraumatic changes of the PNN expression in laminae 6 and 7 of cervical spinal cord following hemisection injury. We demonstrate increase of the chondroitin sulfate content at 1.6-1.8 mm rostrally from the injury site and increase of the density of PNN-bearing cells at 0.4-1.2 mm caudally from the injury site. We further demonstrate decrease of the single cell PNN area at 0.2 mm caudally from the injury site suggesting that the PNN ECM takes part in the posttraumatic tissue rearrangement in the spinal cord. Our results demonstrate new insights on the PNN structure dynamics in the developing and posttraumatic CNS.


Subject(s)
Brain/metabolism , Chondroitin Sulfate Proteoglycans/metabolism , Neuronal Plasticity/genetics , Neurons/metabolism , Animals , Brain/pathology , Extracellular Matrix/metabolism , Mice , Neurons/pathology , Plant Lectins/chemistry , Plant Lectins/pharmacology , Receptors, N-Acetylglucosamine/chemistry , Spinal Cord/metabolism , Spinal Cord/pathology
5.
Brain Res ; 1648(Pt A): 214-223, 2016 10 01.
Article in English | MEDLINE | ID: mdl-27425428

ABSTRACT

Perineuronal nets (PNN) ensheath GABAergic and glutamatergic synapses on neuronal cell surface in the central nervous system (CNS), have neuroprotective effect in animal models of Alzheimer disease and regulate synaptic plasticity during development and regeneration. Crucial insights were obtained recently concerning molecular composition and physiological importance of PNN but the microstructure of the network remains largely unstudied. Here we used histochemistry, fluorescent microscopy and quantitative image analysis to study the PNN structure in adult mouse and rat neurons from layers IV and VI of the somatosensory cortex. Vast majority of meshes have quadrangle, pentagon or hexagon shape with mean mesh area of 1.29µm(2) in mouse and 1.44µm(2) in rat neurons. We demonstrate two distinct patterns of chondroitin sulfate distribution within a single mesh - with uniform (nonpolar) and node-enriched (polar) distribution of the Wisteria floribunda agglutinin-positive signal. Vertices of the node-enriched pattern match better with local maxima of chondroitin sulfate density as compared to the uniform pattern. PNN is organized into clusters of meshes with distinct morphologies on the neuronal cell surface. Our findings suggest the role for the PNN microstructure in the synaptic transduction and plasticity.


Subject(s)
Nerve Net/cytology , Neurons/cytology , Somatosensory Cortex/cytology , Animals , Chondroitin Sulfate Proteoglycans/metabolism , Extracellular Matrix/metabolism , Mice , Nerve Net/metabolism , Neurons/metabolism , Plant Lectins/metabolism , Rats , Receptors, N-Acetylglucosamine/metabolism , Somatosensory Cortex/metabolism
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