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result(s) for
"Serrat, Roman"
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Glucose metabolism links astroglial mitochondria to cannabinoid effects
by
Bouzier-Sore, Anne-Karine
,
Hebert-Chatelain, Etienne
,
Bellocchio, Luigi
in
13/1
,
13/31
,
14/28
2020
Astrocytes take up glucose from the bloodstream to provide energy to the brain, thereby allowing neuronal activity and behavioural responses
1
–
5
. By contrast, astrocytes are under neuronal control through specific neurotransmitter receptors
5
–
7
. However, whether the activation of astroglial receptors can directly regulate cellular glucose metabolism to eventually modulate behavioural responses is unclear. Here we show that activation of mouse astroglial type-1 cannabinoid receptors associated with mitochondrial membranes (mtCB
1
) hampers the metabolism of glucose and the production of lactate in the brain, resulting in altered neuronal functions and, in turn, impaired behavioural responses in social interaction assays. Specifically, activation of astroglial mtCB
1
receptors reduces the phosphorylation of the mitochondrial complex I subunit NDUFS4, which decreases the stability and activity of complex I. This leads to a reduction in the generation of reactive oxygen species by astrocytes and affects the glycolytic production of lactate through the hypoxia-inducible factor 1 pathway, eventually resulting in neuronal redox stress and impairment of behavioural responses in social interaction assays. Genetic and pharmacological correction of each of these effects abolishes the effect of cannabinoid treatment on the observed behaviour. These findings suggest that mtCB
1
receptor signalling can directly regulate astroglial glucose metabolism to fine-tune neuronal activity and behaviour in mice.
In mice, persistent activation of mitochondrial cannabinoid receptors in astroglia impairs cellular glucose metabolism and lactate production, leading to an increase in redox stress in neurons and altered behavioural responses.
Journal Article
A cannabinoid link between mitochondria and memory
by
Elezgarai, Izaskun
,
Hebert-Chatelain, Etienne
,
Bellocchio, Luigi
in
631/378/1595
,
631/378/340
,
Adenylyl Cyclases - metabolism
2016
Cannabinoids affect CB
1
receptors on the mitochondrial membranes in the brain, triggering a decrease in downstream cAMP-dependent signalling; this leads to a decrease in brain mitochondrial activity and to cannabinoid-induced amnesia.
Bioenergetics deficiency and memory
The pathological effect of chronic mitochondrial dysfunction on cognitive function is well established, however the acute modulation of neural processing by mitochondrial signalling is less well understood. These authors demonstrate that acute functional disruption of the brain by cannabinoids involves the activation and signalling from mitochondrial cannabinoid receptors. Thus, even acute mitochondrial bioenergetic changes or disruption can have a short-term effect on cognition, underscoring the role that mitochondria have in regulating normal brain activity.
Cellular activity in the brain depends on the high energetic support provided by mitochondria, the cell organelles which use energy sources to generate ATP
1
,
2
,
3
,
4
. Acute cannabinoid intoxication induces amnesia in humans and animals
5
,
6
, and the activation of type-1 cannabinoid receptors present at brain mitochondria membranes (mtCB
1
) can directly alter mitochondrial energetic activity
7
,
8
,
9
. Although the pathological impact of chronic mitochondrial dysfunctions in the brain is well established
1
,
2
, the involvement of acute modulation of mitochondrial activity in high brain functions, including learning and memory, is unknown. Here, we show that acute cannabinoid-induced memory impairment in mice requires activation of hippocampal mtCB
1
receptors. Genetic exclusion of CB
1
receptors from hippocampal mitochondria prevents cannabinoid-induced reduction of mitochondrial mobility, synaptic transmission and memory formation. mtCB
1
receptors signal through intra-mitochondrial Gα
i
protein activation and consequent inhibition of soluble-adenylyl cyclase (sAC). The resulting inhibition of protein kinase A (PKA)-dependent phosphorylation of specific subunits of the mitochondrial electron transport system eventually leads to decreased cellular respiration. Hippocampal inhibition of sAC activity or manipulation of intra-mitochondrial PKA signalling or phosphorylation of the Complex I subunit NDUFS2 inhibit bioenergetic and amnesic effects of cannabinoids. Thus, the G protein-coupled mtCB
1
receptors regulate memory processes via modulation of mitochondrial energy metabolism. By directly linking mitochondrial activity to memory formation, these data reveal that bioenergetic processes are primary acute regulators of cognitive functions.
Journal Article
Astrocyte CB1 receptors drive blood-brain barrier disruption in central nervous system inflammatory disease
by
Bernal-Chico, Ana
,
Sánchez-Martín, Ester
,
Uribe-Irusta, Aitziber
in
Astrocyte
,
Astrocytes
,
B cells
2026
Reactive astrocytes shape central nervous system (CNS) inflammation and participate in myelin damage and repair mechanisms in multiple sclerosis (MS). Through the activation of cannabinoid CB
1
receptors (CB
1
R) expressed by neurons and oligodendrocyte lineage cells, endocannabinoid signaling restricts neurodegeneration and promotes remyelination in preclinical MS models. However, despite accumulating evidence that supports cell-specific roles for CB
1
R in brain physiology and pathology, the implications of astrocyte CB
1
R signaling in MS initiation and progression remain uncertain. Using complementary in vivo disease models, here we investigated the effects of targeted genetic deletion of astrocyte CB
1
R on the expression of MS-like pathology in mice. Interestingly, astrocyte-specific deletion of CB
1
R reduced demyelinating neuropathology, attenuated astrocyte reactivity and improved clinical deficits during the time-course of experimental autoimmune encephalomyelitis (EAE). Mice with astrocyte CB
1
R inactivation displayed unaltered oligodendrocyte populations both in EAE plaques and in lysolecithin-induced remyelinating spinal cord lesions, likely excluding that CB
1
R expressed by astroglial cells modulate myelin repair processes. Conversely, inactivation of CB
1
R in astrocytes restricted humoral and leukocyte parenchymal infiltration and reduced the expression of vascular effectors in EAE lesions. Finally, loss of blood-brain barrier (BBB) function induced by cortical microinjection of VEGF-A was less severe in astrocyte CB
1
R null mice. These results show that astrocyte CB
1
R signaling constitutes a significant pro-inflammatory mechanism in experimental MS and bring to light a deleterious role for endocannabinoid-mediated modulation of astroglial cells with potential implications in the etiopathology and therapy of neuroinflammatory disorders.
Journal Article
The Eutherian Armcx genes regulate mitochondrial trafficking in neurons and interact with Miro and Trak2
by
Burgaya, Ferrán
,
Vitureira, Nathalia
,
D'Aniello, Salvatore
in
631/181/2474
,
631/378
,
631/443/319/333
2012
Brain function requires neuronal activity-dependent energy consumption. Neuronal energy supply is controlled by molecular mechanisms that regulate mitochondrial dynamics, including Kinesin motors and Mitofusins, Miro1-2 and Trak2 proteins. Here we show a new protein family that localizes to the mitochondria and controls mitochondrial dynamics. This family of proteins is encoded by an array of armadillo (Arm) repeat-containing genes located on the X chromosome. The Armcx cluster is unique to Eutherian mammals and evolved from a single ancestor gene (Armc10). We show that these genes are highly expressed in the developing and adult nervous system. Furthermore, we demonstrate that Armcx3 expression levels regulate mitochondrial dynamics and trafficking in neurons, and that Alex3 interacts with the Kinesin/Miro/Trak2 complex in a Ca2 + -dependent manner. Our data provide evidence of a new Eutherian-specific family of mitochondrial proteins that controls mitochondrial dynamics and indicate that this key process is differentially regulated in the brain of higher vertebrates.
Journal Article
Signaling-specific inhibition of the CB1 receptor for cannabis use disorder: phase 1 and phase 2a randomized trials
by
Vallée, Monique
,
Cooper, Ziva D.
,
Shaham, Yavin
in
631/154/436/2387
,
631/378/1788
,
692/308/153
2023
Cannabis use disorder (CUD) is widespread, and there is no pharmacotherapy to facilitate its treatment. AEF0117, the first of a new pharmacological class, is a signaling-specific inhibitor of the cannabinoid receptor 1 (CB
1
-SSi). AEF0117 selectively inhibits a subset of intracellular effects resulting from Δ
9
-tetrahydrocannabinol (THC) binding without modifying behavior per se. In mice and non-human primates, AEF0117 decreased cannabinoid self-administration and THC-related behavioral impairment without producing significant adverse effects. In single-ascending-dose (0.2 mg, 0.6 mg, 2 mg and 6 mg;
n
= 40) and multiple-ascending-dose (0.6 mg, 2 mg and 6 mg;
n
= 24) phase 1 trials, healthy volunteers were randomized to ascending-dose cohorts (
n
= 8 per cohort; 6:2 AEF0117 to placebo randomization). In both studies, AEF0117 was safe and well tolerated (primary outcome measurements). In a double-blind, placebo-controlled, crossover phase 2a trial, volunteers with CUD were randomized to two ascending-dose cohorts (0.06 mg,
n
= 14; 1 mg,
n
= 15). AEF0117 significantly reduced cannabis’ positive subjective effects (primary outcome measurement, assessed by visual analog scales) by 19% (0.06 mg) and 38% (1 mg) compared to placebo (
P
< 0.04). AEF0117 (1 mg) also reduced cannabis self-administration (
P
< 0.05). In volunteers with CUD, AEF0117 was well tolerated and did not precipitate cannabis withdrawal. These data suggest that AEF0117 is a safe and potentially efficacious treatment for CUD.
ClinicalTrials.gov identifiers:
NCT03325595
,
NCT03443895
and
NCT03717272
.
The signaling-specific inhibitor AEF0117 selectively inhibits CB
1
activation by THC and reduces self-administration and subjective effects of cannabis in clinical trials, making it a potential treatment for cannabis use disorder.
Journal Article
The Non-Canonical Wnt/PKC Pathway Regulates Mitochondrial Dynamics through Degradation of the Arm-Like Domain-Containing Protein Alex3
by
Mirra, Serena
,
Burgaya, Ferrán
,
López-Doménech, Guillermo
in
Agglomeration
,
Amino Acid Motifs
,
Analysis
2013
The regulation of mitochondrial dynamics is vital in complex cell types, such as neurons, that transport and localize mitochondria in high energy-demanding cell domains. The Armcx3 gene encodes a mitochondrial-targeted protein (Alex3) that contains several arm-like domains. In a previous study we showed that Alex3 protein regulates mitochondrial aggregation and trafficking. Here we studied the contribution of Wnt proteins to the mitochondrial aggregation and dynamics regulated by Alex3. Overexpression of Alex3 in HEK293 cells caused a marked aggregation of mitochondria, which was attenuated by treatment with several Wnts. We also found that this decrease was caused by Alex3 degradation induced by Wnts. While the Wnt canonical pathway did not alter the pattern of mitochondrial aggregation induced by Alex3, we observed that the Wnt/PKC non-canonical pathway regulated both mitochondrial aggregation and Alex3 protein levels, thereby rendering a mitochondrial phenotype and distribution similar to control patterns. Our data suggest that the Wnt pathway regulates mitochondrial distribution and dynamics through Alex3 protein degradation.
Journal Article
ARMCX3 Mediates Susceptibility to Hepatic Tumorigenesis Promoted by Dietary Lipotoxicity
by
Burgaya, Ferran
,
Uriarte, Iker
,
Villarroya, Francesc
in
Apoptosis
,
Carcinogenesis
,
Cell death
2021
ARMCX3 is encoded by a member of the Armcx gene family and is known to be involved in nervous system development and function. We found that ARMCX3 is markedly upregulated in mouse liver in response to high lipid availability, and that hepatic ARMCX3 is upregulated in patients with NAFLD and hepatocellular carcinoma (HCC). Mice were subjected to ARMCX3 invalidation (inducible ARMCX3 knockout) and then exposed to a high-fat diet and diethylnitrosamine-induced hepatocarcinogenesis. The effects of experimental ARMCX3 knockdown or overexpression in HCC cell lines were also analyzed. ARMCX3 invalidation protected mice against high-fat-diet-induced NAFLD and chemically induced hepatocarcinogenesis. ARMCX3 invalidation promoted apoptotic cell death and macrophage infiltration in livers of diethylnitrosamine-treated mice maintained on a high-fat diet. ARMCX3 downregulation reduced the viability, clonality and migration of HCC cell lines, whereas ARMCX3 overexpression caused the reciprocal effects. SOX9 was found to mediate the effects of ARMCX3 in hepatic cells, with the SOX9 interaction required for the effects of ARMCX3 on hepatic cell proliferation. In conclusion, ARMCX3 is identified as a novel molecular actor in liver physiopathology and carcinogenesis. ARMCX3 downregulation appears to protect against hepatocarcinogenesis, especially under conditions of high dietary lipid-mediated hepatic insult.
Journal Article
MDMA impairs mitochondrial neuronal trafficking in a Tau- and Mitofusin2/Drp1-dependent manner
by
Mirra, Serena
,
Gómez de Barreda, Elena
,
Quevedo, Martí
in
Animals
,
Axonal Transport - drug effects
,
Biomedical and Life Sciences
2014
Identification of the mechanisms by which drugs of abuse cause neuronal dysfunction is essential for understanding the biological bases of their acute and long-lasting effects in the brain. Here, we performed real-time functional experiments of axonal transport of mitochondria to explore the role of in situ mitochondrial dysfunction in 3,4-methylenedioxymethamphetamine (MDMA; “ecstasy”)-related brain actions. We showed that MDMA dramatically reduced mitochondrial trafficking in hippocampal neurons in a Tau-dependent manner, in which glycogen synthase kinase 3β activity was implicated. Furthermore, we found that these trafficking abnormalities were rescued by over-expression of Mitofusin2 and dynamin-related protein 1, but not of Miro1. Given the relevance of mitochondrial targeting for neuronal function and neurotransmission, our data underscore a novel mechanism of action of MDMA that may contribute to our understanding of how this drug of abuse alters neuronal functioning.
Journal Article
Signaling-specific inhibition of the CB 1 receptor for cannabis use disorder: phase 1 and phase 2a randomized trials
by
Vallée, Monique
,
Shaham, Yavin
,
Hebert-Chatelain, Etienne
in
Animals
,
Cannabis
,
Double-Blind Method
2023
Cannabis use disorder (CUD) is widespread, and there is no pharmacotherapy to facilitate its treatment. AEF0117, the first of a new pharmacological class, is a signaling-specific inhibitor of the cannabinoid receptor 1 (CB
-SSi). AEF0117 selectively inhibits a subset of intracellular effects resulting from Δ
-tetrahydrocannabinol (THC) binding without modifying behavior per se. In mice and non-human primates, AEF0117 decreased cannabinoid self-administration and THC-related behavioral impairment without producing significant adverse effects. In single-ascending-dose (0.2 mg, 0.6 mg, 2 mg and 6 mg; n = 40) and multiple-ascending-dose (0.6 mg, 2 mg and 6 mg; n = 24) phase 1 trials, healthy volunteers were randomized to ascending-dose cohorts (n = 8 per cohort; 6:2 AEF0117 to placebo randomization). In both studies, AEF0117 was safe and well tolerated (primary outcome measurements). In a double-blind, placebo-controlled, crossover phase 2a trial, volunteers with CUD were randomized to two ascending-dose cohorts (0.06 mg, n = 14; 1 mg, n = 15). AEF0117 significantly reduced cannabis' positive subjective effects (primary outcome measurement, assessed by visual analog scales) by 19% (0.06 mg) and 38% (1 mg) compared to placebo (P < 0.04). AEF0117 (1 mg) also reduced cannabis self-administration (P < 0.05). In volunteers with CUD, AEF0117 was well tolerated and did not precipitate cannabis withdrawal. These data suggest that AEF0117 is a safe and potentially efficacious treatment for CUD.ClinicalTrials.gov identifiers: NCT03325595 , NCT03443895 and NCT03717272 .
Journal Article
Imaging mitochondrial calcium dynamics in the central nervous system
by
Pouvreau, Sandrine
,
Serrat, Roman
,
Marsicano, Giovanni
in
Brain
,
Calcium
,
Central nervous system
2024
Mitochondrial calcium handling is a particularly active research area in the neuroscience field, as it plays key roles in the regulation of several functions of the central nervous system, such as synaptic transmission and plasticity, astrocyte calcium signaling, neuronal activity In the last few decades, a panel of techniques have been developed to measure mitochondrial calcium dynamics, relying mostly on photonic microscopy, and including synthetic sensors, hybrid sensors and genetically encoded calcium sensors. The goal of this review is to endow the reader with a deep knowledge of the historical and latest tools to monitor mitochondrial calcium events in the brain, as well as a comprehensive overview of the current state of the art in brain mitochondrial calcium signaling. We will discuss the main calcium probes used in the field, their mitochondrial targeting strategies, their key properties and major drawbacks. In addition, we will detail the main roles of mitochondrial calcium handling in neuronal tissues through an extended report of the recent studies using mitochondrial targeted calcium sensors in neuronal and astroglial cells, in vitro and in vivo.