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1.
Sci Rep ; 14(1): 11721, 2024 05 22.
Article in English | MEDLINE | ID: mdl-38777823

ABSTRACT

It has recently been shown that KAT8, a genome-wide association study candidate risk gene for Parkinson's Disease, is involved in PINK1/Parkin-dependant mitophagy. The KAT8 gene encodes a lysine acetyltransferase and represents the catalytically active subunit of the non-specific lethal epigenetic remodelling complex. In the current study, we show that contrary to KAT5 inhibition, dual inhibition of KAT5 and KAT8 via the MG149 compound inhibits the initial steps of the PINK1-dependant mitophagy process. More specifically, our study shows that following mitochondrial depolarisation induced by mitochondrial toxins, MG149 treatment inhibits PINK1-dependant mitophagy initiation by impairing PINK1 activation, and subsequent phosphorylation of Parkin and ubiquitin. While this inhibitory effect of MG149 on PINK1-activation is potent, MG149 treatment in the absence of mitochondrial toxins is sufficient to depolarise the mitochondrial membrane, recruit PINK1 and promote partial downstream recruitment of the autophagy receptor p62, leading to an increase in mitochondrial delivery to the lysosomes. Altogether, our study provides additional support for KAT8 as a regulator of mitophagy and autophagy processes.


Subject(s)
Mitochondria , Mitophagy , Protein Kinases , Ubiquitin-Protein Ligases , Mitophagy/drug effects , Humans , Protein Kinases/metabolism , Protein Kinases/genetics , Ubiquitin-Protein Ligases/metabolism , Ubiquitin-Protein Ligases/genetics , Mitochondria/metabolism , Mitochondria/drug effects , Histone Acetyltransferases/metabolism , Histone Acetyltransferases/antagonists & inhibitors , Phosphorylation/drug effects , Membrane Potential, Mitochondrial/drug effects , HeLa Cells
2.
FEBS J ; 2024 May 06.
Article in English | MEDLINE | ID: mdl-38708447

ABSTRACT

Around 10% of Parkinson's disease (PD) cases are associated with mutations in various genes, including FBXO7, which encodes the substrate-recognition component for the Skp1-Cullin-F-box (SCF) class of ubiquitin E3 ligases that target proteins for proteasomal degradation. In their recent study, Al Rawi et al. characterized a new mutation in FBXO7, L250P, in a pediatric patient. Their findings reveal that the L250P mutation abolishes Fbxo7 interaction with the proteasome regulator, proteasome inhibitor 31kD (PI31), affecting proteasomal activity and the ubiquitination of some of the ligase's targets. Furthermore, the authors show that this previously undescribed mutation impairs mitochondrial function and mitophagy, emphasizing the importance of mitochondrial and proteasomal dysfunction in PD pathogenesis.

3.
Mol Neurobiol ; 2024 Mar 02.
Article in English | MEDLINE | ID: mdl-38429623

ABSTRACT

Heat shock protein 70 (HSP70) is activated under stress response. Its involvement in cell protection, including energy metabolism and quality control makes it a promising pharmacological target. A strategy to increase HSP70 levels inside the cells is the application of recombinant HSP70. However, cell permeability and functionality of these exogenously applied proteins inside the cells is still disputable. Here, using fluorescence- labeled HSP70, we have studied permeability and distribution of HSP70 inside primary neurons and astrocytes, and how exogenous HSP70 changes mitochondrial metabolism and mitophagy. We have found that exogenous recombinant HSP70 can penetrate the neurons and astrocytes and distributes in mitochondria, lysosomes and in lesser degree in the endoplasmic reticulum. HSP70 increases mitochondrial membrane potential in control neurons and astrocytes, and in fibroblasts of patients with familial Parkinson´s disease (PD) with PINK1 and LRRK2 mutations. Increased mitochondrial membrane potential was associated with higher mitochondrial ROS production and activation of mitophagy. Importantly, preincubation of the cells with HSP70 protected neurons and astrocytes against cell death in a toxic model of PD induced by rotenone, and in the PINK1 and LRRK2 PD human fibroblasts. Thus, exogenous recombinant HSP70 is cell permeable, and acts as endogenous HSP70 protecting cells in the case of toxic model and familial forms of Parkinson's Disease.

4.
Redox Biol ; 62: 102672, 2023 06.
Article in English | MEDLINE | ID: mdl-36940606

ABSTRACT

The transcription factor Nrf2 and its repressor Keap1 mediate cell stress adaptation by inducing expression of genes regulating cellular detoxification, antioxidant defence and energy metabolism. Energy production and antioxidant defence employ NADH and NADPH respectively as essential metabolic cofactors; both are generated in distinct pathways of glucose metabolism, and both pathways are enhanced by Nrf2 activation. Here, we examined the role of Nrf2 on glucose distribution and the interrelation between NADH production in energy metabolism and NADPH homeostasis using glio-neuronal cultures isolated from wild-type, Nrf2-knockout and Keap1-knockdown mice. Employing advanced microscopy imaging of single live cells, including multiphoton fluorescence lifetime imaging microscopy (FLIM) to discriminate between NADH and NADPH, we found that Nrf2 activation increases glucose uptake into neurons and astrocytes. Glucose consumption is prioritized in brain cells for mitochondrial NADH and energy production, with a smaller contribution to NADPH synthesis in the pentose phosphate pathway for redox reactions. As Nrf2 is suppressed during neuronal development, this strategy leaves neurons reliant on astrocytic Nrf2 to maintain redox balance and energy homeostasis.


Subject(s)
Antioxidants , NF-E2-Related Factor 2 , Animals , Mice , Astrocytes/metabolism , Glucose/metabolism , Kelch-Like ECH-Associated Protein 1/genetics , Kelch-Like ECH-Associated Protein 1/metabolism , NAD/metabolism , NADP/metabolism , Neurons/metabolism , NF-E2-Related Factor 2/genetics , NF-E2-Related Factor 2/metabolism
6.
Nat Neurosci ; 25(9): 1134-1148, 2022 09.
Article in English | MEDLINE | ID: mdl-36042314

ABSTRACT

Aggregation of alpha-synuclein (α-Syn) drives Parkinson's disease (PD), although the initial stages of self-assembly and structural conversion have not been directly observed inside neurons. In this study, we tracked the intracellular conformational states of α-Syn using a single-molecule Förster resonance energy transfer (smFRET) biosensor, and we show here that α-Syn converts from a monomeric state into two distinct oligomeric states in neurons in a concentration-dependent and sequence-specific manner. Three-dimensional FRET-correlative light and electron microscopy (FRET-CLEM) revealed that intracellular seeding events occur preferentially on membrane surfaces, especially at mitochondrial membranes. The mitochondrial lipid cardiolipin triggers rapid oligomerization of A53T α-Syn, and cardiolipin is sequestered within aggregating lipid-protein complexes. Mitochondrial aggregates impair complex I activity and increase mitochondrial reactive oxygen species (ROS) generation, which accelerates the oligomerization of A53T α-Syn and causes permeabilization of mitochondrial membranes and cell death. These processes were also observed in induced pluripotent stem cell (iPSC)-derived neurons harboring A53T mutations from patients with PD. Our study highlights a mechanism of de novo α-Syn oligomerization at mitochondrial membranes and subsequent neuronal toxicity.


Subject(s)
Parkinson Disease , alpha-Synuclein , Cardiolipins/metabolism , Humans , Mitochondria/metabolism , Mitochondrial Membranes/metabolism , Neurons/metabolism , Neurons/pathology , Parkinson Disease/genetics , Parkinson Disease/metabolism , alpha-Synuclein/metabolism
7.
Free Radic Biol Med ; 189: 136-153, 2022 08 20.
Article in English | MEDLINE | ID: mdl-35918014

ABSTRACT

Mitochondria are unique and essential organelles that mediate many vital cellular processes including energy metabolism and cell death. The transcription factor Nrf2 (NF-E2 p45-related factor 2) has emerged in the last few years as an important modulator of multiple aspects of mitochondrial function. Well-known for controlling cellular redox homeostasis, the cytoprotective effects of Nrf2 extend beyond its ability to regulate a diverse network of antioxidant and detoxification enzymes. Here, we review the role of Nrf2 in the regulation of mitochondrial function and structure. We focus on Nrf2 involvement in promoting mitochondrial quality control and regulation of basic aspects of mitochondrial function, including energy production, reactive oxygen species generation, calcium signalling, and cell death induction. Given the importance of mitochondria in the development of multiple diseases, these findings reinforce the pharmacological activation of Nrf2 as an attractive strategy to counteract mitochondrial dysfunction.


Subject(s)
NF-E2-Related Factor 2 , Oxidative Stress , Antioxidants/pharmacology , Energy Metabolism , Mitochondria/metabolism , NF-E2-Related Factor 2/genetics , NF-E2-Related Factor 2/metabolism
8.
Sci Rep ; 12(1): 12766, 2022 07 27.
Article in English | MEDLINE | ID: mdl-35896565

ABSTRACT

All forms of dementia including Alzheimer's disease are currently incurable. Mitochondrial dysfunction and calcium alterations are shown to be involved in the mechanism of neurodegeneration in Alzheimer's disease. Previously we have described the ability of compound Tg-2112x to protect neurons via sequestration of mitochondrial calcium uptake and we suggest that it can also be protective against neurodegeneration and development of dementia. Using primary co-culture neurons and astrocytes we studied the effect of Tg-2112x and its derivative Tg-2113x on ß-amyloid-induced changes in calcium signal, mitochondrial membrane potential, mitochondrial calcium, and cell death. We have found that both compounds had no effect on ß-amyloid or acetylcholine-induced calcium changes in the cytosol although Tg2113x, but not Tg2112x reduced glutamate-induced calcium signal. Both compounds were able to reduce mitochondrial calcium uptake and protected cells against ß-amyloid-induced mitochondrial depolarization and cell death. Behavioral effects of Tg-2113x on learning and memory in fear conditioning were also studied in 3 mouse models of neurodegeneration: aged (16-month-old) C57Bl/6j mice, scopolamine-induced amnesia (3-month-old mice), and 9-month-old 5xFAD mice. It was found that Tg-2113x prevented age-, scopolamine- and cerebral amyloidosis-induced decrease in fear conditioning. In addition, Tg-2113x restored fear extinction of aged mice. Thus, reduction of the mitochondrial calcium uptake protects neurons and astrocytes against ß-amyloid-induced cell death and contributes to protection against dementia of different ethology. These compounds could be used as background for the developing of a novel generation of disease-modifying neuroprotective agents.


Subject(s)
Alzheimer Disease , Neurotoxicity Syndromes , Alzheimer Disease/drug therapy , Alzheimer Disease/metabolism , Amyloid beta-Peptides/metabolism , Amyloid beta-Peptides/toxicity , Animals , Calcium/metabolism , Disease Models, Animal , Extinction, Psychological , Fear , Mice , Mice, Inbred C57BL , Mice, Transgenic , Scopolamine Derivatives
9.
FEBS J ; 289(3): 699-711, 2022 02.
Article in English | MEDLINE | ID: mdl-34528385

ABSTRACT

Parkinson's disease (PD) is a progressive neurodegenerative disorder induced by the loss of dopaminergic neurons in midbrain. The mechanism of neurodegeneration is associated with aggregation of misfolded proteins, oxidative stress, and mitochondrial dysfunction. Considering this, the process of removal of unwanted organelles or proteins by autophagy is vitally important in neurons, and activation of these processes could be protective in PD. Short-time acidification of the cytosol can activate mitophagy and autophagy. Here, we used sodium pyruvate and sodium lactate to induce changes in intracellular pH in human fibroblasts with PD mutations (Pink1, Pink1/Park2, α-synuclein triplication, A53T). We have found that both lactate and pyruvate in millimolar concentrations can induce a short-time acidification of the cytosol in these cells. This induced activation of mitophagy and autophagy in control and PD fibroblasts and protected against cell death. Importantly, application of lactate to acute brain slices of WT and Pink1 KO mice also induced a reduction of pH in neurons and astrocytes that increased the level of mitophagy. Thus, acidification of the cytosol by compounds, which play an important role in cell metabolism, can also activate mitophagy and autophagy and protect cells in the familial form of PD.


Subject(s)
Parkinson Disease/genetics , Protein Kinases/genetics , Ubiquitin-Protein Ligases/genetics , alpha-Synuclein/genetics , Animals , Astrocytes/drug effects , Astrocytes/metabolism , Autophagy/drug effects , Autophagy/genetics , Cytoprotection/drug effects , Dopaminergic Neurons/drug effects , Dopaminergic Neurons/metabolism , Dopaminergic Neurons/pathology , Fibroblasts/drug effects , Humans , Hydrogen-Ion Concentration/drug effects , Mice , Mice, Knockout , Mitochondria/drug effects , Mitochondria/genetics , Mitophagy/drug effects , Mitophagy/genetics , Oxidative Stress/drug effects , Parkinson Disease/diagnostic imaging , Parkinson Disease/metabolism , Parkinson Disease/pathology , Pyruvic Acid/pharmacology , Sodium Lactate/pharmacology
10.
Alzheimers Dement ; 18(2): 318-338, 2022 02.
Article in English | MEDLINE | ID: mdl-34057756

ABSTRACT

INTRODUCTION: The second most common form of early-onset dementia-frontotemporal dementia (FTD)-is often characterized by the aggregation of the microtubule-associated protein tau. Here we studied the mechanism of tau-induced neuronal dysfunction in neurons with the FTD-related 10+16 MAPT mutation. METHODS: Live imaging, electrophysiology, and redox proteomics were used in 10+16 induced pluripotent stem cell-derived neurons and a model of tau spreading in primary cultures. RESULTS: Overproduction of mitochondrial reactive oxygen species (ROS) in 10+16 neurons alters the trafficking of specific glutamate receptor subunits via redox regulation. Increased surface expression of α-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid (AMPA) and N-methyl-D-aspartate (NMDA) receptors containing GluA1 and NR2B subunits leads to impaired glutamatergic signaling, calcium overload, and excitotoxicity. Mitochondrial antioxidants restore the altered response and prevent neuronal death. Importantly, extracellular 4R tau induces the same pathological response in healthy neurons, thus proposing a mechanism for disease propagation. DISCUSSION: These results demonstrate mitochondrial ROS modulate glutamatergic signaling in FTD, and suggest a new therapeutic strategy.


Subject(s)
Frontotemporal Dementia , Induced Pluripotent Stem Cells , Frontotemporal Dementia/genetics , Humans , Induced Pluripotent Stem Cells/metabolism , Mitochondria , Neurons/metabolism , Reactive Oxygen Species/metabolism , Receptors, N-Methyl-D-Aspartate/metabolism , tau Proteins/metabolism
11.
J Cell Mol Med ; 26(4): 1327-1331, 2022 02.
Article in English | MEDLINE | ID: mdl-34951131

ABSTRACT

The microtubule-associated protein tau gene (MAPT) 10+16 intronic mutation causes frontotemporal lobar degeneration (FTLD) by increasing expression of four-repeat (4R)-tau isoforms. We investigated the potential role for astrocytes in the pathogenesis of FTLD by studying the expression of 4R-tau. We derived astrocytes and neurons from induced pluripotent stem cells from two asymptomatic 10+16 carriers which, compared to controls, showed persistently increased 4R:3R-tau transcript and protein ratios in both cell types. However, beyond 300 days culture, 10+16 neurons showed less marked increase of this 4R:3R-tau transcript ratio compared to astrocytes. Interestingly, throughout maturation, both 10+16 carriers consistently displayed different 4R:3R-tau transcript and protein ratios. These elevated levels of 4R-tau in astrocytes implicate glial cells in the pathogenic process and also suggests a cell-type-specific regulation and may inform and help on treatment of pre-clinical tauopathies.


Subject(s)
Frontotemporal Lobar Degeneration , Tauopathies , tau Proteins , Astrocytes/metabolism , Humans , Mutation/genetics , Protein Isoforms/genetics , Tauopathies/genetics , Tauopathies/metabolism , tau Proteins/genetics , tau Proteins/metabolism
12.
Cell Death Dis ; 12(8): 716, 2021 07 17.
Article in English | MEDLINE | ID: mdl-34274950

ABSTRACT

Human iPSC lines represent a powerful translational model of tauopathies. We have recently described a pathophysiological phenotype of neuronal excitability of human cells derived from the patients with familial frontotemporal dementia and parkinsonism (FTDP-17) caused by the MAPT 10+16 splice-site mutation. This mutation leads to the increased splicing of 4R tau isoforms. However, the role of different isoforms of tau protein in initiating neuronal dementia-related dysfunction, and the causality between the MAPT 10+16 mutation and altered neuronal activity have remained unclear. Here, we employed genetically engineered cells, in which the IVS10+16 mutation was introduced into healthy donor iPSCs to increase the expression of 4R tau isoform in exon 10, aiming to explore key physiological traits of iPSC-derived MAPT IVS10+16 neurons using patch-clamp electrophysiology and multiphoton fluorescent imaging techniques. We found that during late in vitro neurogenesis (from ~180 to 230 days) iPSC-derived cortical neurons of the control group (parental wild-type tau) exhibited membrane properties compatible with "mature" neurons. In contrast, MAPT IVS10+16 neurons displayed impaired excitability, as reflected by a depolarized resting membrane potential, an increased input resistance, and reduced voltage-gated Na+- and K+-channel-mediated currents. The mutation changed the channel properties of fast-inactivating Nav and decreased the Nav1.6 protein level. MAPT IVS10+16 neurons exhibited reduced firing accompanied by a changed action potential waveform and severely disturbed intracellular Ca2+ dynamics, both in the soma and dendrites, upon neuronal depolarization. These results unveil a causal link between the MAPT 10+16 mutation, hence overproduction of 4R tau, and a dysfunction of human cells, identifying a biophysical basis of changed neuronal activity in 4R tau-triggered dementia. Our study lends further support to using iPSC lines as a suitable platform for modelling tau-induced human neuropathology in vitro.


Subject(s)
Dementia/genetics , Dementia/physiopathology , Genetic Engineering , Induced Pluripotent Stem Cells/pathology , Mutation/genetics , Neurons/pathology , tau Proteins/genetics , Action Potentials , Cell Line , Cell Membrane/metabolism , Humans , Mutant Proteins/metabolism , Neurogenesis , Potassium Channels/metabolism , Sodium Channels/metabolism
13.
J Cell Physiol ; 236(9): 6496-6506, 2021 09.
Article in English | MEDLINE | ID: mdl-33570767

ABSTRACT

The receptor for advanced glycation end products (RAGE) is a signal receptor first shown to be activated by advanced glycation end products, but also by a variety of signal molecules, including pathological advanced oxidation protein products and ß-amyloid. However, most of the RAGE activators have multiple intracellular targets, making it difficult to unravel the exact pathway of RAGE activation. Here, we show that the cell-impermeable RAGE fragment sequence (60-76) of the V-domain of the receptor is able to activate RAGE present on the plasma membrane of neurons and, preferentially, astrocytes. This leads to the exocytosis of vesicular glutamate transporter vesicles and the release of glutamate from astrocytes, which stimulate NMDA and AMPA/kainate receptors, resulting in calcium signals predominantly in neurons. Thus, we show a specific mechanism of RAGE activation by the RAGE fragment and propose a mechanism by which RAGE activation can contribute to the neuronal-astrocytic communication in physiology and pathology.


Subject(s)
Astrocytes/metabolism , Calcium Signaling , Glutamic Acid/metabolism , Neurons/metabolism , Receptor for Advanced Glycation End Products/metabolism , Animals , Astrocytes/drug effects , Calcium/metabolism , Calcium Signaling/drug effects , Cell Membrane/drug effects , Cell Membrane/metabolism , Excitatory Amino Acid Antagonists/pharmacology , Extracellular Space/metabolism , Humans , Neurons/drug effects , Peptides/pharmacology , Protein Domains , Rabbits , Rats, Sprague-Dawley , Receptor for Advanced Glycation End Products/chemistry , Receptors, AMPA/metabolism , Receptors, Glutamate/metabolism , Receptors, N-Methyl-D-Aspartate/metabolism
14.
FEBS J ; 288(1): 127-141, 2021 01.
Article in English | MEDLINE | ID: mdl-32338825

ABSTRACT

Most neurodegenerative disorders are associated with aggregation and accumulation of misfolded proteins. One of these proteins, tau, is involved in a number of pathologies including Alzheimer's disease and frontotemporal dementia. Aggregation and phosphorylation of tau have been shown to be a trigger for abnormal signal transduction and disruption of cellular homeostasis. Here, we have studied the effect of extracellular tau at different stages of aggregation in cortical co-cultures of neurons and astrocytes, to understand how this process affects tau pathogenicity. We found that the species formed after prolonged in vitro aggregation of tau (longer than 1 day) are able to stimulate reactive oxygen species (ROS) production through the activation of NADPH oxidase without decreasing the level of the endogenous antioxidant glutathione. The same late insoluble aggregates of tau induced calcium signals in neurons and a gradual increase in the ionic current of artificial membranes. Both tau-induced calcium signals and ROS production in NADPH oxidase were reduced in the presence of the inhibitor of voltage-gated calcium channels (VGCC) nifedipine. This suggests that insoluble aggregates of tau incorporate into the membrane and modify ionic currents, changing plasma membrane potential and activating VGCCs, which induces a calcium influx that triggers ROS production in NADPH oxidase. The combination of all these effects likely leads to toxicity, as only the same insoluble tau aggregates which demonstrated membrane-active properties produced neuronal cell death.


Subject(s)
Astrocytes/drug effects , Calcium Channels/genetics , Gene Expression Regulation/drug effects , NADPH Oxidases/genetics , Neurons/drug effects , tau Proteins/pharmacology , Amyloid beta-Peptides/agonists , Amyloid beta-Peptides/genetics , Amyloid beta-Peptides/metabolism , Animals , Animals, Newborn , Astrocytes/cytology , Astrocytes/metabolism , Calcium/metabolism , Calcium Channels/metabolism , Cell Death/drug effects , Coculture Techniques , Humans , NADPH Oxidases/metabolism , Neurons/cytology , Neurons/metabolism , Nifedipine/pharmacology , Oxidation-Reduction , Primary Cell Culture , Protein Aggregates , Rats , Rats, Sprague-Dawley , Reactive Oxygen Species/agonists , Reactive Oxygen Species/metabolism , Thapsigargin/pharmacology , Verapamil/pharmacology , tau Proteins/genetics , tau Proteins/metabolism
15.
Med Res Rev ; 41(2): 770-784, 2021 03.
Article in English | MEDLINE | ID: mdl-32656815

ABSTRACT

The world's population aging progression renders age-related neurodegenerative diseases to be one of the biggest unsolved problems of modern society. Despite the progress in studying the development of pathology, finding ways for modifying neurodegenerative disorders remains a high priority. One common feature of neurodegenerative diseases is mitochondrial dysfunction and overproduction of reactive oxygen species, resulting in oxidative stress. Although lipid peroxidation is one of the markers for oxidative stress, it also plays an important role in cell physiology, including activation of phospholipases and stimulation of signaling cascades. Excessive lipid peroxidation is a hallmark for most neurodegenerative disorders including Alzheimer's disease, Parkinson's disease, amyotrophic lateral sclerosis, and many other neurological conditions. The products of lipid peroxidation have been shown to be the trigger for necrotic, apoptotic, and more specifically for oxidative stress-related, that is, ferroptosis and neuronal cell death. Here we discuss the involvement of lipid peroxidation in the mechanism of neuronal loss and some novel therapeutic directions to oppose it.


Subject(s)
Mitochondria , Neurodegenerative Diseases , Humans , Lipid Peroxidation , Mitochondria/metabolism , Neurodegenerative Diseases/metabolism , Oxidative Stress , Reactive Oxygen Species/metabolism
16.
J Neurochem ; 157(4): 1234-1243, 2021 05.
Article in English | MEDLINE | ID: mdl-33190229

ABSTRACT

Brain is not homogenous and neurons from various brain regions are known to have different vulnerabilities to mitochondrial mutations and mitochondrial toxins. However, it is not clear if this vulnerability is connected to different energy metabolism in specific brain regions. Here, using live-cell imaging, we compared mitochondrial membrane potential and nicotinamide adenine dinucleotide (NADH) redox balance in acute rat brain slices in different brain regions and further detailed the mitochondrial metabolism in primary neurons and astrocytes from rat cortex, midbrain and cerebellum. We have found that mitochondrial membrane potential is higher in brain slices from the hippocampus and brain stem. In primary co-cultures, mitochondrial membrane potential in astrocytes was lower than in neurons, whereas in midbrain cells it was higher than in cortex and cerebellum. The rate of NADH production and mitochondrial NADH pool were highest in acute slices from midbrain and midbrain primary neurons and astrocytes. Although the level of adenosine tri phosphate (ATP) was similar among primary neurons and astrocytes from cortex, midbrain and cerebellum, the rate of ATP consumption was highest in midbrain cells that lead to faster neuronal and astrocytic collapse in response to inhibitors of ATP production. Thus, midbrain neurons and astrocytes have a higher metabolic rate and ATP consumption that makes them more vulnerable to energy deprivation.


Subject(s)
Astrocytes/metabolism , Brain/metabolism , Energy Metabolism/physiology , Mitochondria/physiology , Neurons/metabolism , Animals , Male , Membrane Potential, Mitochondrial/physiology , Organ Culture Techniques , Rats , Rats, Wistar
17.
J Neurosci ; 40(49): 9364-9371, 2020 12 02.
Article in English | MEDLINE | ID: mdl-33122390

ABSTRACT

Mechanosensitivity is a well-known feature of astrocytes, however, its underlying mechanisms and functional significance remain unclear. There is evidence that astrocytes are acutely sensitive to decreases in cerebral perfusion pressure and may function as intracranial baroreceptors, tuned to monitor brain blood flow. This study investigated the mechanosensory signaling in brainstem astrocytes, as these cells reside alongside the cardiovascular control circuits and mediate increases in blood pressure and heart rate induced by falls in brain perfusion. It was found that mechanical stimulation-evoked Ca2+ responses in astrocytes of the rat brainstem were blocked by (1) antagonists of connexin channels, connexin 43 (Cx43) blocking peptide Gap26, or Cx43 gene knock-down; (2) antagonists of TRPV4 channels; (3) antagonist of P2Y1 receptors for ATP; and (4) inhibitors of phospholipase C or IP3 receptors. Proximity ligation assay demonstrated interaction between TRPV4 and Cx43 channels in astrocytes. Dye loading experiments showed that mechanical stimulation increased open probability of carboxyfluorescein-permeable membrane channels. These data suggest that mechanosensory Ca2+ responses in astrocytes are mediated by interaction between TRPV4 and Cx43 channels, leading to Cx43-mediated release of ATP which propagates/amplifies Ca2+ signals via P2Y1 receptors and Ca2+ recruitment from the intracellular stores. In astrocyte-specific Cx43 knock-out mice the magnitude of heart rate responses to acute increases in intracranial pressure was not affected by Cx43 deficiency. However, these animals displayed lower heart rates at different levels of cerebral perfusion, supporting the hypothesis of connexin hemichannel-mediated release of signaling molecules by astrocytes having an excitatory action on the CNS sympathetic control circuits.SIGNIFICANCE STATEMENT There is evidence suggesting that astrocytes may function as intracranial baroreceptors that play an important role in the control of systemic and cerebral circulation. To function as intracranial baroreceptors, astrocytes must possess a specialized membrane mechanism that makes them exquisitely sensitive to mechanical stimuli. This study shows that opening of connexin 43 (Cx43) hemichannels leading to the release of ATP is the key central event underlying mechanosensory Ca2+ responses in astrocytes. This astroglial mechanism plays an important role in the autonomic control of heart rate. These data add to the growing body of evidence suggesting that astrocytes function as versatile surveyors of the CNS metabolic milieu, tuned to detect conditions of potential metabolic threat, such as hypoxia, hypercapnia, and reduced perfusion.


Subject(s)
Astrocytes/physiology , Mechanotransduction, Cellular/physiology , Adenosine Triphosphate/metabolism , Animals , Blood Pressure/drug effects , Brain Stem/cytology , Brain Stem/drug effects , Brain Stem/physiology , Calcium Signaling/drug effects , Calcium Signaling/physiology , Cerebrovascular Circulation/physiology , Connexin 43/antagonists & inhibitors , Connexin 43/genetics , Female , Heart Rate/physiology , Male , Mechanotransduction, Cellular/drug effects , Mice , Mice, Knockout , Peptides/antagonists & inhibitors , Peptides/genetics , Physical Stimulation , Rats , Receptors, Purinergic P2Y1/drug effects , TRPV Cation Channels/antagonists & inhibitors , TRPV Cation Channels/genetics
18.
Cells ; 9(9)2020 09 21.
Article in English | MEDLINE | ID: mdl-32967303

ABSTRACT

Aggregation and deposition of ß-amyloid and/or tau protein are the key neuropathological features in neurodegenerative disorders such as Alzheimer's disease (AD) and other tauopathies including frontotemporal dementia (FTD). The interaction between oxidative stress, mitochondrial dysfunction and the impairment of calcium ions (Ca2+) homeostasis induced by misfolded tau and ß-amyloid plays an important role in the progressive neuronal loss occurring in specific areas of the brain. In addition to the control of bioenergetics and ROS production, mitochondria are fine regulators of the cytosolic Ca2+ homeostasis that induce vital signalling mechanisms in excitable cells such as neurons. Impairment in the mitochondrial Ca2+ uptake through the mitochondrial Ca2+ uniporter (MCU) or release through the Na+/Ca2+ exchanger may lead to mitochondrial Ca2+ overload and opening of the permeability transition pore inducing neuronal death. Recent evidence suggests an important role for these mechanisms as the underlying causes for neuronal death in ß-amyloid and tau pathology. The present review will focus on the mechanisms that lead to cytosolic and especially mitochondrial Ca2+ disturbances occurring in AD and tau-induced FTD, and propose possible therapeutic interventions for these disorders.


Subject(s)
Alzheimer Disease/metabolism , Amyloid beta-Peptides/genetics , Calcium/metabolism , Frontotemporal Dementia/metabolism , Neuroprotective Agents/therapeutic use , tau Proteins/genetics , Alzheimer Disease/drug therapy , Alzheimer Disease/genetics , Alzheimer Disease/pathology , Amyloid beta-Peptides/metabolism , Calcium Channels/genetics , Calcium Channels/metabolism , Cell Death , Cholinesterase Inhibitors/therapeutic use , Frontotemporal Dementia/drug therapy , Frontotemporal Dementia/genetics , Frontotemporal Dementia/pathology , Gene Expression Regulation , Humans , Memantine/therapeutic use , Mitochondria/drug effects , Mitochondria/metabolism , Mitochondrial Permeability Transition Pore/metabolism , Neurons/drug effects , Neurons/metabolism , Neurons/pathology , Oxidative Stress , Reactive Oxygen Species/metabolism , Sodium-Calcium Exchanger/genetics , Sodium-Calcium Exchanger/metabolism , tau Proteins/metabolism
19.
J Cell Sci ; 133(10)2020 05 27.
Article in English | MEDLINE | ID: mdl-32299835

ABSTRACT

Frontotemporal dementia and parkinsonism (FTDP-17) caused by the 10+16 splice-site mutation in the gene encoding microtubule-associated protein tau (MAPT) provides an established platform to model tau-related dementia in vitro Neurons derived from human induced pluripotent stem cells (iPSCs) have been shown to recapitulate the neurodevelopmental profile of tau pathology during in vitro corticogenesis, as in the adult human brain. However, the neurophysiological phenotype of these cells has remained unknown, leaving unanswered questions regarding the functional relevance and the gnostic power of this disease model. In this study, we used electrophysiology to explore the membrane properties and intrinsic excitability of the generated neurons and found that human cells mature by ∼150 days of neurogenesis to become compatible with matured cortical neurons. In earlier FTDP-17, however, neurons exhibited a depolarized resting membrane potential associated with increased resistance and reduced voltage-gated Na+- and K+-channel-mediated conductance. Expression of the Nav1.6 protein was reduced in FTDP-17. These effects led to reduced cell capability of induced firing and changed the action potential waveform in FTDP-17. The revealed neuropathology might thus contribute to the clinicopathological profile of the disease. This sheds new light on the significance of human in vitro models of dementia.


Subject(s)
Frontotemporal Dementia , Induced Pluripotent Stem Cells , Adult , Frontotemporal Dementia/genetics , Humans , Mutation , Neurons , Phenotype , tau Proteins/genetics
20.
Methods Cell Biol ; 155: 221-245, 2020.
Article in English | MEDLINE | ID: mdl-32183960

ABSTRACT

Assessment of the mitochondrial membrane potential (Δψ) in living cells, although not trivial, can be used to estimate mitochondrial bioenergetic state. For this purpose, fluorescent lipophilic cations are broadly applied. These cations enter cells and accumulate primarily in the mitochondrial matrix in a Δψ-dependent manner. Here, we describe the use of the cations tetramethylrhodamine methyl ester (TMRM) and rhodamine 123 (Rhod123) for semi-quantitative Δψ analysis in living mammalian cells. Two different strategies are presented: (1) steady-state measurements that are suited to compare Δψ between different conditions (i.e., for comparing disease states or treatments) and (2) dynamic measurements allowing temporal monitoring of Δψ changes (i.e., to assess the effect of acute perturbations). We discuss the rationale for the use of TMRM and Rhod123 in their non-quenching/redistribution and quenching mode, how these modes are associated with different fluorescence responses, and how data can be interpreted. Practically, three experimental protocols are provided describing the use of TMRM and/or Rhod123 to assess Δψ in primary human skin fibroblasts (PHSFs) and neuron/astrocyte co-cultures by live-cell fluorescence microscopy.


Subject(s)
Cytological Techniques/methods , Mammals/metabolism , Membrane Potential, Mitochondrial , Animals , Cells, Cultured , Fibroblasts/metabolism , Fluorescence , Humans , Rhodamine 123/metabolism , Rhodamines/metabolism , Skin/cytology
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