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1.
Sci Rep ; 14(1): 12252, 2024 05 28.
Article in English | MEDLINE | ID: mdl-38806649

ABSTRACT

Sex hormones affect structural and functional plasticity in the rodent hippocampus. However, hormone levels not only differ between males and females, but also fluctuate across the female estrous cycle. While sex- and cycle-dependent differences in dendritic spine density and morphology have been found in the rodent CA1 region, but not in the CA3 or the dentate gyrus, comparable structural data on CA2, i.e. the hippocampal region involved in social recognition memory, is so far lacking. In this study, we, therefore, used wildtype male and female mice in diestrus or proestrus to analyze spines on dendritic segments from identified CA2 neurons. In basal stratum oriens, we found no differences in spine density, but a significant shift towards larger spine head areas in male mice compared to females. Conversely, in apical stratum radiatum diestrus females had a significantly higher spine density, and females in either cycle stage had a significant shift towards larger spine head areas as compared to males, with diestrus females showing the larger shift. Our results provide further evidence for the sexual dimorphism of hippocampal area CA2, and underscore the importance of considering not only the sex, but also the stage of the estrous cycle when interpreting morphological data.


Subject(s)
CA2 Region, Hippocampal , Dendritic Spines , Estrous Cycle , Animals , Male , Female , Dendritic Spines/metabolism , Dendritic Spines/physiology , Mice , Estrous Cycle/physiology , CA2 Region, Hippocampal/physiology , CA2 Region, Hippocampal/metabolism , Sex Characteristics , Neurons/metabolism
2.
Zool Res ; 45(3): 535-550, 2024 May 18.
Article in English | MEDLINE | ID: mdl-38747058

ABSTRACT

Proper regulation of synapse formation and elimination is critical for establishing mature neuronal circuits and maintaining brain function. Synaptic abnormalities, such as defects in the density and morphology of postsynaptic dendritic spines, underlie the pathology of various neuropsychiatric disorders. Protocadherin 17 (PCDH17) is associated with major mood disorders, including bipolar disorder and depression. However, the molecular mechanisms by which PCDH17 regulates spine number, morphology, and behavior remain elusive. In this study, we found that PCDH17 functions at postsynaptic sites, restricting the number and size of dendritic spines in excitatory neurons. Selective overexpression of PCDH17 in the ventral hippocampal CA1 results in spine loss and anxiety- and depression-like behaviors in mice. Mechanistically, PCDH17 interacts with actin-relevant proteins and regulates actin filament (F-actin) organization. Specifically, PCDH17 binds to ROCK2, increasing its expression and subsequently enhancing the activity of downstream targets such as LIMK1 and the phosphorylation of cofilin serine-3 (Ser3). Inhibition of ROCK2 activity with belumosudil (KD025) ameliorates the defective F-actin organization and spine structure induced by PCDH17 overexpression, suggesting that ROCK2 mediates the effects of PCDH17 on F-actin content and spine development. Hence, these findings reveal a novel mechanism by which PCDH17 regulates synapse development and behavior, providing pathological insights into the neurobiological basis of mood disorders.


Subject(s)
Actin Cytoskeleton , Cadherins , Dendritic Spines , rho-Associated Kinases , Animals , Dendritic Spines/metabolism , Dendritic Spines/physiology , Mice , Actin Cytoskeleton/metabolism , Cadherins/metabolism , Cadherins/genetics , rho-Associated Kinases/metabolism , rho-Associated Kinases/genetics , Gene Expression Regulation
3.
Int J Mol Sci ; 25(10)2024 May 17.
Article in English | MEDLINE | ID: mdl-38791517

ABSTRACT

Maternal immune activation (MIA) is a risk factor for multiple neurodevelopmental disorders; however, animal models developed to explore MIA mechanisms are sensitive to experimental factors, which has led to complexity in previous reports of the MIA phenotype. We sought to characterize an MIA protocol throughout development to understand how prenatal immune insult alters the trajectory of important neurodevelopmental processes, including the microglial regulation of synaptic spines and complement signaling. We used polyinosinic:polycytidylic acid (polyI:C) to induce MIA on gestational day 9.5 in CD-1 mice, and measured their synaptic spine density, microglial synaptic pruning, and complement protein expression. We found reduced dendritic spine density in the somatosensory cortex starting at 3-weeks-of-age with requisite increases in microglial synaptic pruning and phagocytosis, suggesting spine density loss was caused by increased microglial synaptic pruning. Additionally, we showed dysregulation in complement protein expression persisting into adulthood. Our findings highlight disruptions in the prenatal environment leading to alterations in multiple dynamic processes through to postnatal development. This could potentially suggest developmental time points during which synaptic processes could be measured as risk factors or targeted with therapeutics for neurodevelopmental disorders.


Subject(s)
Complement System Proteins , Dendritic Spines , Microglia , Poly I-C , Animals , Microglia/metabolism , Microglia/drug effects , Microglia/immunology , Mice , Female , Pregnancy , Dendritic Spines/metabolism , Poly I-C/pharmacology , Complement System Proteins/metabolism , Complement System Proteins/immunology , Prenatal Exposure Delayed Effects , Phagocytosis , Disease Models, Animal , Somatosensory Cortex/drug effects , Somatosensory Cortex/metabolism , Synapses/metabolism , Synapses/drug effects , Neuronal Plasticity/drug effects
4.
Sci Rep ; 14(1): 11713, 2024 05 22.
Article in English | MEDLINE | ID: mdl-38778177

ABSTRACT

The development of neurons is regulated by several spatiotemporally changing factors, which are crucial to give the ability of neurons to form functional networks. While external physical stimuli may impact the early developmental stages of neurons, the medium and long-term consequences of these influences have yet to be thoroughly examined. Using an animal model, this study focuses on the morphological and transcriptome changes of the hippocampus that may occur as a consequence of fetal ultrasound examination. We selectively labeled CA1 neurons of the hippocampus with in-utero electroporation to analyze their morphological features. Furthermore, certain samples also went through RNA sequencing after repetitive ultrasound exposure. US exposure significantly changed several morphological properties of the basal dendritic tree. A notable increase was also observed in the density of spines on the basal dendrites, accompanied by various alterations in individual spine morphology. Transcriptome analysis revealed several up or downregulated genes, which may explain the molecular background of these alterations. Our results suggest that US-derived changes in the dendritic trees of CA1 pyramidal cells might be connected to modification of the transcriptome of the hippocampus and may lead to an increased dendritic input.


Subject(s)
CA1 Region, Hippocampal , Dendrites , Transcriptome , Animals , CA1 Region, Hippocampal/metabolism , Dendrites/metabolism , Female , Pregnancy , Pyramidal Cells/metabolism , Mice , Hippocampus/metabolism , Gene Expression Profiling , Dendritic Spines/metabolism , Ultrasonography, Prenatal
5.
Cereb Cortex ; 34(5)2024 May 02.
Article in English | MEDLINE | ID: mdl-38745556

ABSTRACT

The basic building block of the cerebral cortex, the pyramidal cell, has been shown to be characterized by a markedly different dendritic structure among layers, cortical areas, and species. Functionally, differences in the structure of their dendrites and axons are critical in determining how neurons integrate information. However, within the human cortex, these neurons have not been quantified in detail. In the present work, we performed intracellular injections of Lucifer Yellow and 3D reconstructed over 200 pyramidal neurons, including apical and basal dendritic and local axonal arbors and dendritic spines, from human occipital primary visual area and associative temporal cortex. We found that human pyramidal neurons from temporal cortex were larger, displayed more complex apical and basal structural organization, and had more spines compared to those in primary sensory cortex. Moreover, these human neocortical neurons displayed specific shared and distinct characteristics in comparison to previously published human hippocampal pyramidal neurons. Additionally, we identified distinct morphological features in human neurons that set them apart from mouse neurons. Lastly, we observed certain consistent organizational patterns shared across species. This study emphasizes the existing diversity within pyramidal cell structures across different cortical areas and species, suggesting substantial species-specific variations in their computational properties.


Subject(s)
Pyramidal Cells , Humans , Pyramidal Cells/physiology , Animals , Male , Female , Mice , Adult , Dendritic Spines/physiology , Dendritic Spines/ultrastructure , Temporal Lobe/cytology , Dendrites/physiology , Middle Aged , Axons/physiology , Species Specificity
6.
Commun Biol ; 7(1): 642, 2024 May 27.
Article in English | MEDLINE | ID: mdl-38802535

ABSTRACT

Alterations in the experience-dependent and autonomous elaboration of neural circuits are assumed to underlie autism spectrum disorder (ASD), though it is unclear what synaptic traits are responsible. Here, utilizing a valproic acid-induced ASD marmoset model, which shares common molecular features with idiopathic ASD, we investigate changes in the structural dynamics of tuft dendrites of upper-layer pyramidal neurons and adjacent axons in the dorsomedial prefrontal cortex through two-photon microscopy. In model marmosets, dendritic spine turnover is upregulated, and spines are generated in clusters and survived more often than in control marmosets. Presynaptic boutons in local axons, but not in commissural long-range axons, demonstrate hyperdynamic turnover in model marmosets, suggesting alterations in projection-specific plasticity. Intriguingly, nasal oxytocin administration attenuates clustered spine emergence in model marmosets. Enhanced clustered spine generation, possibly unique to certain presynaptic partners, may be associated with ASD and be a potential therapeutic target.


Subject(s)
Callithrix , Disease Models, Animal , Neuronal Plasticity , Oxytocin , Animals , Oxytocin/metabolism , Male , Synapses/metabolism , Dendritic Spines/metabolism , Dendritic Spines/pathology , Dendritic Spines/drug effects , Autism Spectrum Disorder/metabolism , Autistic Disorder/metabolism , Autistic Disorder/pathology , Prefrontal Cortex/metabolism , Prefrontal Cortex/pathology , Prefrontal Cortex/drug effects , Pyramidal Cells/metabolism , Pyramidal Cells/pathology , Valproic Acid/pharmacology , Presynaptic Terminals/metabolism , Female , Axons/metabolism
7.
Dis Model Mech ; 17(6)2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38785269

ABSTRACT

Rett syndrome (RTT) is a neurodevelopmental disorder caused by mutations in MECP2, which encodes methyl-CpG-binding protein 2, a transcriptional regulator of many genes, including brain-derived neurotrophic factor (BDNF). BDNF levels are lower in multiple brain regions of Mecp2-deficient mice, and experimentally increasing BDNF levels improve atypical phenotypes in Mecp2 mutant mice. Due to the low blood-brain barrier permeability of BDNF itself, we tested the effects of LM22A-4, a brain-penetrant, small-molecule ligand of the BDNF receptor TrkB (encoded by Ntrk2), on dendritic spine density and form in hippocampal pyramidal neurons and on behavioral phenotypes in female Mecp2 heterozygous (HET) mice. A 4-week systemic treatment of Mecp2 HET mice with LM22A-4 restored spine volume in MeCP2-expressing neurons to wild-type (WT) levels, whereas spine volume in MeCP2-lacking neurons remained comparable to that in neurons from female WT mice. Female Mecp2 HET mice engaged in aggressive behaviors more than WT mice, the levels of which were reduced to WT levels by the 4-week LM22A-4 treatment. These data provide additional support to the potential usefulness of novel therapies not only for RTT but also to other BDNF-related disorders.


Subject(s)
Behavior, Animal , Dendritic Spines , Methyl-CpG-Binding Protein 2 , Phenotype , Receptor, trkB , Rett Syndrome , Animals , Rett Syndrome/pathology , Rett Syndrome/drug therapy , Dendritic Spines/drug effects , Dendritic Spines/metabolism , Dendritic Spines/pathology , Female , Receptor, trkB/metabolism , Methyl-CpG-Binding Protein 2/metabolism , Methyl-CpG-Binding Protein 2/genetics , Behavior, Animal/drug effects , Ligands , Pyramidal Cells/drug effects , Pyramidal Cells/metabolism , Pyramidal Cells/pathology , Mice , Brain-Derived Neurotrophic Factor/metabolism , Hippocampus/pathology , Hippocampus/metabolism , Hippocampus/drug effects , Heterozygote , Mice, Inbred C57BL , Disease Models, Animal , Benzamides
8.
Neuropharmacology ; 254: 109988, 2024 Aug 15.
Article in English | MEDLINE | ID: mdl-38744401

ABSTRACT

Neuropathic pain (NP) is usually treated with analgesics and symptomatic therapy with poor efficacy and numerous side effects, highlighting the urgent need for effective treatment strategies. Recent studies have reported an important role for peroxisome proliferator-activated receptor alpha (PPARα) in regulating metabolism as well as inflammatory responses. Through pain behavioral assessment, we found that activation of PPARα prevented chronic constriction injury (CCI)-induced mechanical allodynia and thermal hyperalgesia. In addition, PPARα ameliorated inflammatory cell infiltration at the injury site and decreased microglial activation, NOD-like receptor protein 3 (NLRP3) inflammasome production, and spinal dendritic spine density, as well as improved serum and spinal cord metabolic levels in mice. Administration of PPARα antagonists eliminates the analgesic effect of PPARα agonists. PPARα relieves NP by inhibiting neuroinflammation and functional synaptic plasticity as well as modulating metabolic mechanisms, suggesting that PPARα may be a potential molecular target for NP alleviation. However, the effects of PPARα on neuroinflammation and synaptic plasticity should be further explored.


Subject(s)
Mice, Inbred C57BL , Neuralgia , PPAR alpha , Spinal Cord , Animals , PPAR alpha/metabolism , Neuralgia/drug therapy , Neuralgia/metabolism , Male , Mice , Spinal Cord/metabolism , Spinal Cord/drug effects , Hyperalgesia/drug therapy , Hyperalgesia/metabolism , Metabolomics , Microglia/drug effects , Microglia/metabolism , NLR Family, Pyrin Domain-Containing 3 Protein/metabolism , NLR Family, Pyrin Domain-Containing 3 Protein/antagonists & inhibitors , Neuroinflammatory Diseases/drug therapy , Neuroinflammatory Diseases/metabolism , Dendritic Spines/drug effects , Dendritic Spines/metabolism , Dendritic Spines/pathology , Inflammasomes/metabolism , Inflammasomes/drug effects
9.
Neuroreport ; 35(10): 657-663, 2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38813907

ABSTRACT

Cisplatin-induced cognitive impairment (chemobrain) affects a considerable percentage of cancer patients and has no established pharmacological treatment. Chemobrain can be associated with neuroinflammation and oxidative stress. Melatonin, a pineal hormone, is known to have antioxidant, anti-inflammatory and neuroprotective potential. In this study, we investigated cisplatin-induced cognitive impairment in rats and whether melatonin can improve or reverse this impairment. Behavioral testing involved measuring working memory using the novel location recognition test (NLRT) under conditions of cisplatin or cisplatin + melatonin treatment, followed by the collection of rats' brains. The brains were subsequently stained with Golgi-Cox stain and then the hippocampus area CA3 of each one was examined, and dendritic spine density was calculated. Treatment with cisplatin resulted in deficits in the rats' performance in the NLRT (P < 0.05). These deficits were prevented by the coadministration of melatonin (P < 0.05). Cisplatin also reduced the density of dendritic spines in the hippocampus (P < 0.0001), specifically CA3 area, while the coadministration of melatonin significantly reversed this reduction (P < 0.001). This study showed that melatonin can ameliorate cisplatin-induced spatial memory deficits and dendritic spines density abnormalities in rats. Given that melatonin is a safe and wildly used supplement, it is feasible to explore its use as a palliative intervention in cancer treatment.


Subject(s)
Cisplatin , Dendritic Spines , Hippocampus , Melatonin , Animals , Melatonin/pharmacology , Cisplatin/toxicity , Dendritic Spines/drug effects , Dendritic Spines/pathology , Male , Hippocampus/drug effects , Hippocampus/pathology , Hippocampus/metabolism , Rats , Cognitive Dysfunction/chemically induced , Cognitive Dysfunction/prevention & control , Cognitive Dysfunction/drug therapy , Cognitive Dysfunction/pathology , Antineoplastic Agents/toxicity , Neuroprotective Agents/pharmacology , Antioxidants/pharmacology , Rats, Wistar , Chemotherapy-Related Cognitive Impairment , Memory, Short-Term/drug effects
10.
PLoS Comput Biol ; 20(5): e1012110, 2024 May.
Article in English | MEDLINE | ID: mdl-38743789

ABSTRACT

Filopodia are thin synaptic protrusions that have been long known to play an important role in early development. Recently, they have been found to be more abundant in the adult cortex than previously thought, and more plastic than spines (button-shaped mature synapses). Inspired by these findings, we introduce a new model of synaptic plasticity that jointly describes learning of filopodia and spines. The model assumes that filopodia exhibit strongly competitive learning dynamics -similarly to additive spike-timing-dependent plasticity (STDP). At the same time it proposes that, if filopodia undergo sufficient potentiation, they consolidate into spines. Spines follow weakly competitive learning, classically associated with multiplicative, soft-bounded models of STDP. This makes spines more stable and sensitive to the fine structure of input correlations. We show that our learning rule has a selectivity comparable to additive STDP and captures input correlations as well as multiplicative models of STDP. We also show how it can protect previously formed memories and perform synaptic consolidation. Overall, our results can be seen as a phenomenological description of how filopodia and spines could cooperate to overcome the individual difficulties faced by strong and weak competition mechanisms.


Subject(s)
Dendritic Spines , Learning , Models, Neurological , Neuronal Plasticity , Pseudopodia , Pseudopodia/physiology , Neuronal Plasticity/physiology , Dendritic Spines/physiology , Learning/physiology , Animals , Humans , Computational Biology , Synapses/physiology , Neurons/physiology , Action Potentials/physiology
11.
Brain Res ; 1835: 148929, 2024 Jul 15.
Article in English | MEDLINE | ID: mdl-38599510

ABSTRACT

Temporal order memory is impaired in autism spectrum disorder (ASD) and schizophrenia (SCZ). These disorders, more prevalent in males, result in abnormal dendritic spine pruning during adolescence in layer 3 (L3) medial prefrontal cortex (mPFC), yielding either too many (ASD) or too few (SCZ) spines. Here we tested whether altering spine density in neural circuits including the mPFC could be associated with impaired temporal order memory in male mice. We have shown that α4ßδ GABAA receptors (GABARs) emerge at puberty on spines of L5 prelimbic mPFC (PL) where they trigger pruning. We show here that α4ßδ receptors also increase at puberty in L3 PL (P < 0.0001) and used these receptors as a target to manipulate spine density here. Pubertal injection (14 d) of the GABA agonist gaboxadol, at a dose (3 mg/kg) selective for α4ßδ, reduced L3 spine density by half (P < 0.0001), while α4 knock-out increased spine density âˆ¼ 40 % (P < 0.0001), mimicking spine densities in SCZ and ASD, respectively. In both cases, performance on the mPFC-dependent temporal order recognition task was impaired, resulting in decreases in the discrimination ratio which assesses preference for the novel object: -0.39 ± 0.15, gaboxadol versus 0.52 ± 0.09, vehicle; P = 0.0002; -0.048 ± 0.10, α4 KO versus 0.49 ± 0.04, wild-type; P < 0.0001. In contrast, the number of approaches was unaltered, reflecting unchanged locomotion. These data suggest that altering α4ßδ GABAR expression/activity alters spine density in L3 mPFC and impairs temporal order memory to mimic changes in ASD and SCZ. These findings may provide insight into these disorders.


Subject(s)
Dendritic Spines , Prefrontal Cortex , Receptors, GABA-A , Schizophrenia , Prefrontal Cortex/metabolism , Prefrontal Cortex/drug effects , Animals , Receptors, GABA-A/metabolism , Male , Schizophrenia/metabolism , Mice , Dendritic Spines/metabolism , Dendritic Spines/drug effects , Mice, Knockout , Neuronal Plasticity/drug effects , Neuronal Plasticity/physiology , Mice, Inbred C57BL , Isoxazoles/pharmacology , Autistic Disorder/metabolism , Autistic Disorder/pathology , GABA-A Receptor Agonists/pharmacology , Autism Spectrum Disorder/metabolism , Recognition, Psychology/physiology , Recognition, Psychology/drug effects
12.
EMBO Rep ; 25(5): 2348-2374, 2024 May.
Article in English | MEDLINE | ID: mdl-38589666

ABSTRACT

Microglia sculpt developing neural circuits by eliminating excess synapses in a process called synaptic pruning, by removing apoptotic neurons, and by promoting neuronal survival. To elucidate the role of microglia during embryonic and postnatal brain development, we used a mouse model deficient in microglia throughout life by deletion of the fms-intronic regulatory element (FIRE) in the Csf1r locus. Surprisingly, young adult Csf1rΔFIRE/ΔFIRE mice display no changes in excitatory and inhibitory synapse number and spine density of CA1 hippocampal neurons compared with Csf1r+/+ littermates. However, CA1 neurons are less excitable, receive less CA3 excitatory input and show altered synaptic properties, but this does not affect novel object recognition. Cytokine profiling indicates an anti-inflammatory state along with increases in ApoE levels and reactive astrocytes containing synaptic markers in Csf1rΔFIRE/ΔFIRE mice. Notably, these changes in Csf1rΔFIRE/ΔFIRE mice closely resemble the effects of acute microglial depletion in adult mice after normal development. Our findings suggest that microglia are not mandatory for synaptic pruning, and that in their absence pruning can be achieved by other mechanisms.


Subject(s)
Hippocampus , Microglia , Synapses , Animals , Microglia/metabolism , Synapses/metabolism , Mice , Hippocampus/metabolism , Hippocampus/cytology , Dendritic Spines/metabolism , Receptors, Granulocyte-Macrophage Colony-Stimulating Factor/metabolism , Receptors, Granulocyte-Macrophage Colony-Stimulating Factor/genetics , Neuronal Plasticity , Neurons/metabolism , Glutamic Acid/metabolism
13.
J Alzheimers Dis ; 99(1): 121-143, 2024.
Article in English | MEDLINE | ID: mdl-38640149

ABSTRACT

Background: Previous work from our group has shown that chronic exposure to Vanadium pentoxide (V2O5) causes cytoskeletal alterations suggesting that V2O5 can interact with cytoskeletal proteins through polymerization and tyrosine phosphatases inhibition, causing Alzheimer's disease (AD)-like hippocampal cell death. Objective: This work aims to characterize an innovative AD experimental model through chronic V2O5 inhalation, analyzing the spatial memory alterations and the presence of neurofibrillary tangles (NFTs), amyloid-ß (Aß) senile plaques, cerebral amyloid angiopathy, and dendritic spine loss in AD-related brain structures. Methods: 20 male Wistar rats were divided into control (deionized water) and experimental (0.02 M V2O5 1 h, 3/week for 6 months) groups (n = 10). The T-maze test was used to assess spatial memory once a month. After 6 months, histological alterations of the frontal and entorhinal cortices, CA1, subiculum, and amygdala were analyzed by performing Congo red, Bielschowsky, and Golgi impregnation. Results: Cognitive results in the T-maze showed memory impairment from the third month of V2O5 inhalation. We also noted NFTs, Aß plaque accumulation in the vascular endothelium and pyramidal neurons, dendritic spine, and neuronal loss in all the analyzed structures, CA1 being the most affected. Conclusions: This model characterizes neurodegenerative changes specific to AD. Our model is compatible with Braak AD stage IV, which represents a moment where it is feasible to propose therapies that have a positive impact on stopping neuronal damage.


Subject(s)
Alzheimer Disease , Disease Models, Animal , Memory Disorders , Rats, Wistar , Vanadium Compounds , Animals , Alzheimer Disease/pathology , Alzheimer Disease/chemically induced , Male , Vanadium Compounds/pharmacology , Rats , Memory Disorders/pathology , Memory Disorders/chemically induced , Maze Learning/drug effects , Brain/pathology , Brain/drug effects , Brain/metabolism , Spatial Memory/drug effects , Neurofibrillary Tangles/pathology , Neurofibrillary Tangles/drug effects , Plaque, Amyloid/pathology , Dendritic Spines/drug effects , Dendritic Spines/pathology , Administration, Inhalation
14.
Cell Death Dis ; 15(4): 264, 2024 Apr 13.
Article in English | MEDLINE | ID: mdl-38615035

ABSTRACT

Cognitive dysfunction and dementia are critical symptoms of Lewy Body dementias (LBD). Specifically, alpha-synuclein (αSyn) accumulation in the hippocampus leading to synaptic dysfunction is linked to cognitive deficits in LBD. Here, we investigated the pathological impact of αSyn on hippocampal neurons. We report that either αSyn overexpression or αSyn pre-formed fibrils (PFFs) treatment triggers the formation of cofilin-actin rods, synapse disruptors, in cultured hippocampal neurons and in the hippocampus of synucleinopathy mouse models and of LBD patients. In vivo, cofilin pathology is present concomitantly with synaptic impairment and cognitive dysfunction. Rods generation prompted by αSyn involves the co-action of the cellular prion protein (PrPC) and the chemokine receptor 5 (CCR5). Importantly, we show that CCR5 inhibition, with a clinically relevant peptide antagonist, reverts dendritic spine impairment promoted by αSyn. Collectively, we detail the cellular and molecular mechanism through which αSyn disrupts hippocampal synaptic structure and we identify CCR5 as a novel therapeutic target to prevent synaptic impairment and cognitive dysfunction in LBD.


Subject(s)
Cognition Disorders , Lewy Body Disease , Animals , Mice , Humans , alpha-Synuclein , Dendritic Spines , Actin Depolymerizing Factors , Receptors, CCR5/genetics
15.
Neural Comput ; 36(5): 781-802, 2024 Apr 23.
Article in English | MEDLINE | ID: mdl-38658027

ABSTRACT

Variation in the strength of synapses can be quantified by measuring the anatomical properties of synapses. Quantifying precision of synaptic plasticity is fundamental to understanding information storage and retrieval in neural circuits. Synapses from the same axon onto the same dendrite have a common history of coactivation, making them ideal candidates for determining the precision of synaptic plasticity based on the similarity of their physical dimensions. Here, the precision and amount of information stored in synapse dimensions were quantified with Shannon information theory, expanding prior analysis that used signal detection theory (Bartol et al., 2015). The two methods were compared using dendritic spine head volumes in the middle of the stratum radiatum of hippocampal area CA1 as well-defined measures of synaptic strength. Information theory delineated the number of distinguishable synaptic strengths based on nonoverlapping bins of dendritic spine head volumes. Shannon entropy was applied to measure synaptic information storage capacity (SISC) and resulted in a lower bound of 4.1 bits and upper bound of 4.59 bits of information based on 24 distinguishable sizes. We further compared the distribution of distinguishable sizes and a uniform distribution using Kullback-Leibler divergence and discovered that there was a nearly uniform distribution of spine head volumes across the sizes, suggesting optimal use of the distinguishable values. Thus, SISC provides a new analytical measure that can be generalized to probe synaptic strengths and capacity for plasticity in different brain regions of different species and among animals raised in different conditions or during learning. How brain diseases and disorders affect the precision of synaptic plasticity can also be probed.


Subject(s)
Information Theory , Neuronal Plasticity , Synapses , Animals , Synapses/physiology , Neuronal Plasticity/physiology , Dendritic Spines/physiology , CA1 Region, Hippocampal/physiology , Models, Neurological , Information Storage and Retrieval , Male , Hippocampus/physiology , Rats
16.
J Neurosci Res ; 102(4): e25319, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38629777

ABSTRACT

The central amygdaloid nucleus (CeA) has an ancient phylogenetic development and functions relevant for animal survival. Local cells receive intrinsic amygdaloidal information that codes emotional stimuli of fear, integrate them, and send cortical and subcortical output projections that prompt rapid visceral and social behavior responses. We aimed to describe the morphology of the neurons that compose the human CeA (N = 8 adult men). Cells within CeA coronal borders were identified using the thionine staining and were further analyzed using the "single-section" Golgi method followed by open-source software procedures for two-dimensional and three-dimensional image reconstructions. Our results evidenced varied neuronal cell body features, number and thickness of primary shafts, dendritic branching patterns, and density and shape of dendritic spines. Based on these criteria, we propose the existence of 12 morphologically different spiny neurons in the human CeA and discuss the variability in the dendritic architecture within cellular types, including likely interneurons. Some dendritic shafts were long and straight, displayed few collaterals, and had planar radiation within the coronal neuropil volume. Most of the sampled neurons showed a few to moderate density of small stubby/wide spines. Long spines (thin and mushroom) were observed occasionally. These novel data address the synaptic processing and plasticity in the human CeA. Our morphological description can be combined with further transcriptomic, immunohistochemical, and electrophysiological/connectional approaches. It serves also to investigate how neurons are altered in neurological and psychiatric disorders with hindered emotional perception, in anxiety, following atrophy in schizophrenia, and along different stages of Alzheimer's disease.


Subject(s)
Central Amygdaloid Nucleus , Male , Adult , Animals , Humans , Phylogeny , Dendritic Spines/physiology , Neurons/physiology , Interneurons
17.
J Vis Exp ; (205)2024 Mar 29.
Article in English | MEDLINE | ID: mdl-38619263

ABSTRACT

Brown adipose tissue (BAT)-mediated thermogenesis plays an important role in the regulation of metabolism, and its morphology and function can be greatly impacted by environmental stimuli in mice and humans. Currently, murine interscapular BAT (iBAT), which is located between two scapulae in the upper dorsal flank of mice, is the main BAT depot used by research laboratories to study BAT function. Recently, a few previously unknown BAT depots were identified in mice, including one analogous to human supraclavicular brown adipose tissue. Unlike iBAT, murine supraclavicular brown adipose tissue (scBAT) is situated in the intermediate layer of the neck and thus cannot be accessed as readily. To facilitate the study of newly identified mouse scBAT, presented herein is a protocol detailing the steps to dissect intact scBAT from postnatal and adult mice. Due to scBAT's small size relative to other adipose depots, procedures have been modified and optimized specifically for processing scBAT. Among these modifications is the use of a dissecting microscope during tissue collection to increase the precision and homogenization of frozen scBAT samples to raise the efficiency of subsequent qPCR analysis. With these optimizations, the identification of, morphological appearance of, and molecular characterization of the scBAT can be determined in mice.


Subject(s)
Adipose Tissue, Brown , Dissection , Adult , Humans , Animals , Mice , Gene Expression Profiling , Dendritic Spines , Neck
18.
Cell Mol Neurobiol ; 44(1): 42, 2024 Apr 26.
Article in English | MEDLINE | ID: mdl-38668880

ABSTRACT

Lewy Body Dementias (LBD), including Parkinson's disease dementia and Dementia with Lewy Bodies, are characterized by widespread accumulation of intracellular alpha-Synuclein protein deposits in regions beyond the brainstem, including in the cortex. However, the impact of local pathology in the cortex is unknown. To investigate this, we employed viral overexpression of human alpha-Synuclein protein targeting the mouse prefrontal cortex (PFC). We then used in vivo 2-photon microscopy to image awake head-fixed mice via an implanted chronic cranial window to assess the early consequences of alpha-Synuclein overexpression in the weeks following overexpression. We imaged apical tufts of Layer V pyramidal neurons in the PFC of Thy1-YFP transgenic mice at 1-week intervals from 1 to 2 weeks before and 9 weeks following viral overexpression, allowing analysis of dynamic changes in dendritic spines. We found an increase in the relative dendritic spine density following local overexpression of alpha-Synuclein, beginning at 5 weeks post-injection, and persisting for the remainder of the study. We found that alpha-Synuclein overexpression led to an increased percentage and longevity of newly-persistent spines, without significant changes in the total density of newly formed or eliminated spines. A follow-up study utilizing confocal microscopy revealed that the increased spine density is found in cortical cells within the alpha-Synuclein injection site, but negative for alpha-Synuclein phosphorylation at Serine-129, highlighting the potential for effects of dose and local circuits on spine survival. These findings have important implications for the physiological role and early pathological stages of alpha-Synuclein in the cortex.


Subject(s)
Dendritic Spines , Mice, Transgenic , Prefrontal Cortex , alpha-Synuclein , Animals , Humans , Male , Mice , alpha-Synuclein/metabolism , Cell Survival/physiology , Dendritic Spines/metabolism , Mice, Inbred C57BL , Prefrontal Cortex/metabolism , Prefrontal Cortex/pathology , Pyramidal Cells/metabolism , Pyramidal Cells/pathology
19.
Mol Biol Cell ; 35(6): mr3, 2024 Jun 01.
Article in English | MEDLINE | ID: mdl-38630519

ABSTRACT

Dendritic spines, the mushroom-shaped extensions along dendritic shafts of excitatory neurons, are critical for synaptic function and are one of the first neuronal structures disrupted in neurodevelopmental and neurodegenerative diseases. Microtubule (MT) polymerization into dendritic spines is an activity-dependent process capable of affecting spine shape and function. Studies have shown that MT polymerization into spines occurs specifically in spines undergoing plastic changes. However, discerning the function of MT invasion of dendritic spines requires the specific inhibition of MT polymerization into spines, while leaving MT dynamics in the dendritic shaft, synaptically connected axons and associated glial cells intact. This is not possible with the unrestricted, bath application of pharmacological compounds. To specifically disrupt MT entry into spines we coupled a MT elimination domain (MTED) from the Efa6 protein to the actin filament-binding peptide LifeAct. LifeAct was chosen because actin filaments are highly concentrated in spines and are necessary for MT invasions. Temporally controlled expression of this LifeAct-MTED construct inhibits MT entry into dendritic spines, while preserving typical MT dynamics in the dendrite shaft. Expression of this construct will allow for the determination of the function of MT invasion of spines and more broadly, to discern how MT-actin interactions affect cellular processes.


Subject(s)
Dendritic Spines , Microtubules , Polymerization , Microtubules/metabolism , Dendritic Spines/metabolism , Animals , Actins/metabolism , Actin Cytoskeleton/metabolism , Neurons/metabolism , Rats , Microfilament Proteins/metabolism
20.
Cell Rep ; 43(5): 114117, 2024 May 28.
Article in English | MEDLINE | ID: mdl-38630590

ABSTRACT

Endoplasmic reticulum-plasma membrane (ER-PM) junctions mediate Ca2+ flux across neuronal membranes. The properties of these membrane contact sites are defined by their lipid content, but little attention has been given to glycosphingolipids (GSLs). Here, we show that GM1-ganglioside, an abundant GSL in neuronal membranes, is integral to ER-PM junctions; it interacts with synaptic proteins/receptors and regulates Ca2+ signaling. In a model of the neurodegenerative lysosomal storage disease, GM1-gangliosidosis, pathogenic accumulation of GM1 at ER-PM junctions due to ß-galactosidase deficiency drastically alters neuronal Ca2+ homeostasis. Mechanistically, we show that GM1 interacts with the phosphorylated N-methyl D-aspartate receptor (NMDAR) Ca2+ channel, thereby increasing Ca2+ flux, activating extracellular signal-regulated kinase (ERK) signaling, and increasing the number of synaptic spines without increasing synaptic connectivity. Thus, GM1 clustering at ER-PM junctions alters synaptic plasticity and worsens the generalized neuronal cell death characteristic of GM1-gangliosidosis.


Subject(s)
Calcium Signaling , Endoplasmic Reticulum , G(M1) Ganglioside , Gangliosidosis, GM1 , Receptors, N-Methyl-D-Aspartate , Animals , Receptors, N-Methyl-D-Aspartate/metabolism , Gangliosidosis, GM1/metabolism , Gangliosidosis, GM1/pathology , G(M1) Ganglioside/metabolism , Endoplasmic Reticulum/metabolism , Mice , Cell Membrane/metabolism , Humans , Neurons/metabolism , Calcium/metabolism , Disease Models, Animal , Synapses/metabolism , Dendritic Spines/metabolism , Neuronal Plasticity
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