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1.
Neuropharmacology ; 258: 110097, 2024 Nov 01.
Article in English | MEDLINE | ID: mdl-39094831

ABSTRACT

Aging is characterized by a functional decline in several physiological systems. α-Klotho-hypomorphic mice (Kl-/-) exhibit accelerated aging and cognitive decline. We evaluated whether male and female α-Klotho-hypomorphic mice show changes in the expression of synaptic proteins, N-methyl-d-aspartate receptor (NMDAR) and α-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid receptor (AMPAR) subunits, postsynaptic density protein 95 (PSD-95), synaptophysin and synapsin, and the activity of Na+, K+-ATPase (NaK) isoforms in the cerebellum and hippocampus. In this study, we demonstrated that in the cerebellum, Kl-/- male mice have reduced expression of GluA1 (AMPA) compared to wild-type (Kl+/+) males and Kl-/- females. Also, Kl-/- male and female mice show reduced ɑ2/ɑ3-NaK and Mg2+-ATPase activities in the cerebellum, respectively, and sex-based differences in NaK and Mg2+-ATPase activities in both the regions. Our findings suggest that α-Klotho could influence the expression of AMPAR and the activity of NaK isoforms in the cerebellum in a sex-dependent manner, and these changes may contribute, in part, to cognitive decline.


Subject(s)
Cerebellum , Hippocampus , Klotho Proteins , Receptors, AMPA , Sex Characteristics , Sodium-Potassium-Exchanging ATPase , Animals , Female , Male , Mice , Cerebellum/metabolism , Disks Large Homolog 4 Protein/metabolism , Disks Large Homolog 4 Protein/genetics , Hippocampus/metabolism , Klotho Proteins/metabolism , Mice, Inbred C57BL , Mice, Knockout , Receptors, AMPA/metabolism , Receptors, AMPA/genetics , Receptors, N-Methyl-D-Aspartate/metabolism , Receptors, N-Methyl-D-Aspartate/genetics , Sodium-Potassium-Exchanging ATPase/metabolism , Sodium-Potassium-Exchanging ATPase/genetics , Synapsins/metabolism , Synapsins/genetics , Synaptophysin/metabolism
2.
Nitric Oxide ; 113-114: 39-49, 2021 09 01.
Article in English | MEDLINE | ID: mdl-33962017

ABSTRACT

Alcohol hangover is defined as the combination of mental and physical symptoms experienced the day after a single episode of heavy drinking, starting when blood alcohol concentration approaches zero. We previously evidenced increments in free radical generation and an imbalance in antioxidant defences in non-synaptic mitochondria and synaptosomes during hangover. It is widely known that acute alcohol exposure induces changes in nitric oxide (NO) production and blocks the binding of glutamate to NMDAR in central nervous system. Our aim was to evaluate the residual effect of acute ethanol exposure (hangover) on NO metabolism and the role of NMDA receptor-PSD95-nNOS pathway in non-synaptic mitochondria and synaptosomes from mouse brain cortex. Results obtained for the synaptosomes fraction showed a 37% decrease in NO total content, a 36% decrease in NOS activity and a 19% decrease in nNOS protein expression. The in vitro addition of glutamate to synaptosomes produced a concentration-dependent enhancement of NO production which was significantly lower in samples from hangover mice than in controls for all the glutamate concentrations tested. A similar patter of response was observed for nNOS activity being decreased both in basal conditions and after glutamate addition. In addition, synaptosomes exhibited a 64% and 15% reduction in NMDA receptor subunit GluN2B and PSD-95 protein expression, respectively. Together with this, glutamate-induced calcium entry was significant decreased in synaptosomes from alcohol-treated mice. On the other hand, in non-synaptic mitochondria, no significant differences were observed in NO content, NOS activity or nNOS protein expression. The expression of iNOS remained unaltered in synaptosomes and non-synaptic mitochondria. Here we demonstrated that hangover effects on NO metabolism are strongly evidenced in synaptosomes probably due to a disruption in NMDAR/PSD-95/nNOS pathway.


Subject(s)
Alcoholic Intoxication/metabolism , Disks Large Homolog 4 Protein/metabolism , Nitric Oxide Synthase Type I/metabolism , Nitric Oxide/metabolism , Receptors, N-Methyl-D-Aspartate/metabolism , Animals , Disks Large Homolog 4 Protein/genetics , Male , Mice , Nitric Oxide/analysis , Nitric Oxide Synthase Type I/genetics
3.
Neurosci Lett ; 715: 134547, 2020 01 10.
Article in English | MEDLINE | ID: mdl-31629776

ABSTRACT

PURPOSE: To evaluate the local nerve myelin recovery and the expression of PSD-95 protein and mRNA in the L4-L6 segment of the spinal cord after applying Brazilein to sciatic nerve injury BALB/c mice model and investigate the regulatory effects of Brazilein on myelin recovery after peripheral nerve injury. METHODS: A total of 160 BALB/c mice were selected to establish the unilateral sciatic nerve injury model and randomly divided into four groups: saline blank control, Brazilein high-dose, medium-dose, and low-dose. Mice were assessed at different time points (1 w, 2 w, 4 w, 8 w) after sciatic nerve injury for the sciatic functional index (SFI) and sciatic nerve function recovery of the injured side by myelin Luxol Fast Blue (LFB) staining of the sciatic nerve. In addition, immunohistochemistry, real time-PCR, and Western blot were used to detect the PSD-95 expression in the spinal cord L4-L6 segments of the injured sciatic nerve at each time point. RESULTS: The results of SFI and sciatic nerve function recovery, as well as, myelin LFB staining of the injured side indicated that all indexes of the Brazilein middle- and high-dose groups were significantly better than the low-dose and blank control groups at each time point. The PSD-95 expression in the L4-L6 segment of the spinal cord was statistically lower in the high- and medium-dose groups than in the low-dose and blank control groups at 1 w, 2 w, and 4 w, while the differences between the groups were not significant at 8 w. CONCLUSION: Brazilein inhibits PSD-95 activation in the corresponding segment of sciatic nerve spinal cord in BALB/c mice after sciatic nerve injury, thereby inhibiting the excessive expression of free radicals and promoting myelin regeneration.


Subject(s)
Benzopyrans/therapeutic use , Disks Large Homolog 4 Protein/antagonists & inhibitors , Disks Large Homolog 4 Protein/biosynthesis , Indenes/therapeutic use , Recovery of Function/physiology , Sciatic Neuropathy/drug therapy , Sciatic Neuropathy/metabolism , Animals , Benzopyrans/pharmacology , Disks Large Homolog 4 Protein/genetics , Gene Expression , Indenes/pharmacology , Male , Mice , Mice, Inbred BALB C , Nerve Regeneration/drug effects , Nerve Regeneration/physiology , Peripheral Nerve Injuries/drug therapy , Peripheral Nerve Injuries/metabolism , Recovery of Function/drug effects , Sciatic Nerve/drug effects , Sciatic Nerve/injuries , Sciatic Nerve/metabolism , Sciatic Neuropathy/genetics , Treatment Outcome
4.
Biosci Rep ; 40(1)2020 01 31.
Article in English | MEDLINE | ID: mdl-31854448

ABSTRACT

Protein S-acylation is a reversible post-translational modification involving the addition of fatty acids to cysteines and is catalyzed by transmembrane protein acyltransferases (PATs) mainly expressed at the Golgi complex. In case of soluble proteins, S-acylation confers stable membrane attachment. Myristoylation or farnesylation of many soluble proteins constitutes the initial transient membrane adsorption step prior to S-acylation. However, some S-acylated soluble proteins, such as the neuronal growth-associated protein Growth-associated protein-43 (GAP-43), lack the hydrophobic modifications required for this initial membrane interaction. The signals for GAP-43 S-acylation are confined to the first 13 amino acids, including the S-acylatable cysteines 3 and 4 embedded in a hydrophobic region, followed by a cluster of basic amino acids. We found that mutation of critical basic amino acids drastically reduced membrane interaction and hence S-acylation of GAP-43. Interestingly, acute depletion of phosphatidylinositol 4-phosphate (PtdIns4P) at the Golgi complex reduced GAP-43 membrane binding, highlighting a new, pivotal role for this anionic lipid and supporting the idea that basic amino acid residues are involved in the electrostatic interactions between GAP-43 and membranes of the Golgi complex where they are S-acylated.


Subject(s)
Disks Large Homolog 4 Protein/metabolism , GAP-43 Protein/metabolism , Phosphatidylinositol Phosphates/metabolism , Protein Processing, Post-Translational , trans-Golgi Network/metabolism , Acylation , Amino Acid Motifs , Amino Acid Sequence , Animals , CHO Cells , Conserved Sequence , Cricetulus , Disks Large Homolog 4 Protein/chemistry , Disks Large Homolog 4 Protein/genetics , GAP-43 Protein/chemistry , GAP-43 Protein/genetics , Hydrophobic and Hydrophilic Interactions , Static Electricity , Time Factors , trans-Golgi Network/genetics
5.
Brain ; 140(12): 3252-3268, 2017 Dec 01.
Article in English | MEDLINE | ID: mdl-29155979

ABSTRACT

The Dlg4 gene encodes for post-synaptic density protein 95 (PSD95), a major synaptic protein that clusters glutamate receptors and is critical for plasticity. PSD95 levels are diminished in ageing and neurodegenerative disorders, including Alzheimer's disease and Huntington's disease. The epigenetic mechanisms that (dys)regulate transcription of Dlg4/PSD95, or other plasticity genes, are largely unknown, limiting the development of targeted epigenome therapy. We analysed the Dlg4/PSD95 epigenetic landscape in hippocampal tissue and designed a Dlg4/PSD95 gene-targeting strategy: a Dlg4/PSD95 zinc finger DNA-binding domain was engineered and fused to effector domains to either repress (G9a, Suvdel76, SKD) or activate (VP64) transcription, generating artificial transcription factors or epigenetic editors (methylating H3K9). These epi-editors altered critical histone marks and subsequently Dlg4/PSD95 expression, which, importantly, impacted several hippocampal neuron plasticity processes. Intriguingly, transduction of the artificial transcription factor PSD95-VP64 rescued memory deficits in aged and Alzheimer's disease mice. Conclusively, this work validates PSD95 as a key player in memory and establishes epigenetic editing as a potential therapy to treat human neurological disorders.


Subject(s)
Alzheimer Disease/genetics , Behavior, Animal , Cognition , Disks Large Homolog 4 Protein/genetics , Epigenetic Repression , Hippocampus/metabolism , Memory , Transcriptional Activation , Alzheimer Disease/pathology , Alzheimer Disease/physiopathology , Alzheimer Disease/psychology , Amyloid beta-Protein Precursor/genetics , Animals , Disease Models, Animal , Epigenesis, Genetic , Histone Code , Humans , Mice , Mice, Transgenic , Rats , Zinc Fingers
6.
Mol Neurobiol ; 54(3): 1759-1776, 2017 04.
Article in English | MEDLINE | ID: mdl-26884267

ABSTRACT

The postsynaptic density (PSD) consists of a lattice-like array of interacting proteins that organizes and stabilizes synaptic receptors, ion channels, structural proteins, and signaling molecules required for normal synaptic transmission and synaptic function. The scaffolding and hub protein postsynaptic density protein-95 (PSD-95) is a major element of central chemical synapses and interacts with glutamate receptors, cell adhesion molecules, and cytoskeletal elements. In fact, PSD-95 can regulate basal synaptic stability as well as the activity-dependent structural plasticity of the PSD and, therefore, of the excitatory chemical synapse. Several studies have shown that PSD-95 is highly enriched at excitatory synapses and have identified multiple protein structural domains and protein-protein interactions that mediate PSD-95 function and trafficking to the postsynaptic region. PSD-95 is also a target of several signaling pathways that induce posttranslational modifications, including palmitoylation, phosphorylation, ubiquitination, nitrosylation, and neddylation; these modifications determine the synaptic stability and function of PSD-95 and thus regulate the fates of individual dendritic spines in the nervous system. In the present work, we review the posttranslational modifications that regulate the synaptic localization of PSD-95 and describe their functional consequences. We also explore the signaling pathways that induce such changes.


Subject(s)
Disks Large Homolog 4 Protein/analysis , Disks Large Homolog 4 Protein/metabolism , Post-Synaptic Density/chemistry , Post-Synaptic Density/metabolism , Protein Processing, Post-Translational/physiology , Animals , Disks Large Homolog 4 Protein/genetics , Humans , Nervous System Diseases/genetics , Nervous System Diseases/metabolism , Neuronal Plasticity/physiology , Post-Synaptic Density/genetics , Synapses/chemistry , Synapses/genetics , Synapses/metabolism
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