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1.
Histol Histopathol ; 39(4): 411-423, 2024 Apr.
Article in English | MEDLINE | ID: mdl-37966087

ABSTRACT

The morphophysiology of the nervous system changes and adapts in response to external environmental inputs and the experiences of individuals throughout their lives. Other changes in the organisms internal environment can also contribute to nervous system restructuring in the form of plastic changes that underlie its capacity to adapt to emerging psychophysiological conditions. These adaptive processes lead to subtle modifications of the organisms internal homeostasis which is closely related with the activity of chemical messengers, such as neurotransmitters and hormones. Hormones reach the brain through the bloodstream, where they activate specific receptors through which certain biochemical, physiological, and morphological changes take place in numerous regions. Fetal development, infancy, puberty, and adulthood are all periods of substantial hormone-mediated brain remodeling in both males and females. Adulthood, specifically, is associated with a broad range of life events, including reproductive cycles in both sexes, and pregnancy and menopause in women. Events of this kind occur concomitantly with eventual modifications in behavioral performance and, especially, in cognitive abilities like learning and memory that underlie, at least in part, plastic changes in the dendritic spines of the neuronal cells in cerebral areas involved in processing cognitive information. Estrogens form a family that consists of three molecules [17ß-estradiol (E2), estrone, estriol] which are deeply involved in regulating numerous bodily functions in different stages of the life-cycle, including the modulation of cognitive performance. This review addresses the effects of E2 on the dendritic spine-mediated synaptic organization of cognitive performance throughout the life span.


Subject(s)
Dendritic Spines , Estradiol , Male , Humans , Female , Estradiol/pharmacology , Dendritic Spines/physiology , Longevity , Estrogens/pharmacology , Brain , Neuronal Plasticity/physiology
2.
Behav Brain Res ; 447: 114437, 2023 06 05.
Article in English | MEDLINE | ID: mdl-37059188

ABSTRACT

Sexual experience improves copulatory performance in male rats. Copulatory performance has been associated with dendritic spines density in the medial prefrontal cortex (mPFC) and nucleus accumbens (NAcc), structures involved in the processing of sexual stimuli and the manifestation of sexual behavior. Dendritic spines modulate excitatory synaptic contacts, and their morphology is associated with the ability to learn from experience. This study was designed to determine the effect of sexual experience on the density of different types or shapes of dendritic spines in the mPFC and NAcc of male rats. A total of 16 male rats were used, half of them were sexually experienced while the other half were sexually inexperienced. After three sessions of sexual interaction to ejaculation, the sexually-experienced males presented shorter mount, intromission, and ejaculation latencies. Those rats presented a higher total dendritic density in the mPFC, and a higher numerical density of thin, mushroom, stubby, and wide spines. Sexual experience also increased the numerical density of mushroom spines in the NAcc. In both the mPFC and NAcc of the sexually experienced rats, there was a lower proportional density of thin spines and a higher proportional density of mushroom spines. Results show that the improvement in copulatory efficiency resulting from prior sexual experience in male rats is associated with changes in the proportional density of thin and mushroom dendritic spines in the mPFC and NAcc. This could represent the consolidation of afferent synaptic information in these brain regions, derived from the stimulus-sexual reward association.


Subject(s)
Agaricales , Nucleus Accumbens , Rats , Male , Animals , Sexual Behavior, Animal , Copulation , Prefrontal Cortex , Dendritic Spines
3.
Epilepsy Behav ; 137(Pt A): 108922, 2022 12.
Article in English | MEDLINE | ID: mdl-36279807

ABSTRACT

Pentylenetetrazol (PTZ) blocks the inhibitory action of GABA, triggering a Glu-mediated hyperexcitation of the dendritic spines in hippocampal CA1 pyramidal neurons that leads to the generation of epileptiform seizures. The aim of this work was to determine the effect of PTZ on the electrical activity of the hippocampal pyramidal neurons in male rats. Bipolar electrodes were implanted stereotaxically in the right and left hippocampal CA1 fields of adults, and PTZ (65 mg/kg) was administered i.p. Simultaneous recordings of the field activity and the firing rate (multiunitary activity, MUA) were analyzed at 10, 20, and 30 min post-administration of PTZ. Only rats that presented tonic-clonic seizures during the first 1-5 min after PTZ treatment were included in the study. The recordings of the field activity were analyzed in 4 frequency bands. In both the right and left hippocampal CA1 fields, the relative power corresponding to the slow waves (4-7 Hz) increased, while in the bands 13-30 Hz and 31-50 Hz, it decreased at 10, 20, and 30 min post-PTZ. MUA recordings were analyzed at four levels. The highest levels corresponded to larger amplitudes of the action potentials in the pyramidal neurons. The firing rates of the PTZ-treated rats did not differ from baseline but presented a significant decrement at 10, 20, and 30 min post-PTZ. The decreased firing rate of the hippocampal CA1 pyramidal neurons after PTZ treatment could be associated with plastic changes of dendritic spines along with some microenvironmental adaptations at synaptic level, after neuronal PTZ-mediated hyperexcitation.


Subject(s)
Pentylenetetrazole , Pyramidal Cells , Rats , Male , Animals , Pentylenetetrazole/pharmacology , Seizures/chemically induced , Hippocampus , Action Potentials
4.
J Chem Neuroanat ; 125: 102159, 2022 11.
Article in English | MEDLINE | ID: mdl-36087877

ABSTRACT

Lesions to the corticospinal tract result in several neurological symptoms and several rehabilitation protocols have proven useful in attempts to direct underlying plastic phenomena. However, the effects that such protocols may exert on the dendritic spines of motoneurons to enhance accuracy during rehabilitation are unknown. Thirty three female Sprague-Dawley adult rats were injected stereotaxically at the primary motor cerebral cortex (Fr1) with saline (CTL), or kainic acid (INJ), or kainic acid and further rehabilitation on a treadmill 16 days after lesion (INJ+RB). Motor performance was evaluated with the the Basso, Beatie and Bresnahan (BBB) locomotion scale and in the Rotarod. Spine density was quantified in a primary dendrite of motoneurons in Lamina IX in the ventral horn of the thoracolumbar spinal cord as well as spine morphology. AMPA, BDNF, PSD-95 and synaptophysin expression was evaluated by Western blot. INJ+RB group showed higher scores in motor performance. Animals from the INJ+RB group showed more thin, mushroom, stubby and wide spines than the CTL group, while the content of AMPA, BDNF, PSD-95 and Synaptophysin was not different between the groups INJ+RB and CTL. AMPA and synaptophysin content was greater in INJ group than in CTL and INJ+RB groups. The increase in the proportion of each type of spine observed in INJ+RB group suggest spinogenesis and a greater capability to integrate the afferent information to motoneurons under relatively stable molecular conditions at the synaptic level.


Subject(s)
Motor Cortex , Animals , Female , Rats , alpha-Amino-3-hydroxy-5-methyl-4-isoxazolepropionic Acid , Brain-Derived Neurotrophic Factor/metabolism , Dendritic Spines/physiology , Kainic Acid , Motor Cortex/metabolism , Motor Neurons/metabolism , Rats, Sprague-Dawley
5.
Neurotox Res ; 39(6): 1970-1980, 2021 Dec.
Article in English | MEDLINE | ID: mdl-34533753

ABSTRACT

There is solid epidemiological evidence that arsenic exposure leads to cognitive impairment, while experimental work supports the hypothesis that it also contributes to neurodegeneration. Energy deficit, oxidative stress, demyelination, and defective neurotransmission are demonstrated arsenic effects, but it remains unclear whether synaptic structure is also affected. Employing both a triple-transgenic Alzheimer's disease model and Wistar rats, the cortical microstructure and synapses were analyzed under chronic arsenic exposure. Male animals were studied at 2 and 4 months of age, after exposure to 3 ppm sodium arsenite in drinking water during gestation, lactation, and postnatal development. Through nuclear magnetic resonance, diffusion-weighted images were acquired and anisotropy (integrity; FA) and apparent diffusion coefficient (dispersion degree; ADC) metrics were derived. Postsynaptic density protein and synaptophysin were analyzed by means of immunoblot and immunohistochemistry, while dendritic spine density and morphology of cortical pyramidal neurons were quantified after Golgi staining. A structural reorganization of the cortex was evidenced through high-ADC and low-FA values in the exposed group. Similar changes in synaptic protein levels in the 2 models suggest a decreased synaptic connectivity at 4 months of age. An abnormal dendritic arborization was observed at 4 months of age, after increased spine density at 2 months. These findings demonstrate alterations of cortical synaptic connectivity and microstructure associated to arsenic exposure appearing in young rodents and adults, and these subtle and non-adaptive plastic changes in dendritic spines and in synaptic markers may further progress to the degeneration observed at older ages.


Subject(s)
Arsenic Poisoning/pathology , Cerebral Cortex/drug effects , Synapses/drug effects , Animals , Arsenic Poisoning/diagnostic imaging , Blotting, Western , Cerebral Cortex/diagnostic imaging , Cerebral Cortex/pathology , Diffusion Tensor Imaging , Female , Male , Mice, Transgenic , Neuronal Plasticity/drug effects , Rats , Rats, Wistar , Synapses/pathology
6.
Behav Brain Res ; 406: 113198, 2021 05 21.
Article in English | MEDLINE | ID: mdl-33657439

ABSTRACT

Epilepsy is a chronic neurobehavioral disorder whereby an imbalance between neurochemical excitation and inhibition at the synaptic level provokes seizures. Various experimental models have been used to study epilepsy, including that based on acute or chronic administration of Pentylenetetrazol (PTZ). In this study, a single PTZ dose (60 mg/kg) was administered to adult male rats and 30 min later, various neurobiological parameters were studied related to the transmission and modulation of excitatory impulses in pyramidal neurons of the hippocampal CA1 field. Rats experienced generalized seizures 1-3 min after PTZ administration, accompanied by elevated levels of Synaptophysin and Glutaminase. This response suggests presynaptic glutamate release is exacerbated to toxic levels, which eventually provokes neuronal death as witnessed by the higher levels of Caspase-3, TUNEL and GFAP. Similarly, the increase in PSD-95 suggests that viable dendritic spines are functional. Indeed, the increase in stubby and wide spines is likely related to de novo spinogenesis, and the regulation of neuronal excitability, which could represent a plastic response to the synaptic over-excitation. Furthermore, the increase in mushroom spines could be associated with the storage of cognitive information and the potentiation of thin spines until they are transformed into mushroom spines. However, the reduction in BDNF suggests that the activity of these spines would be down-regulated, may in part be responsible for the cognitive decline related to hippocampal function in patients with epilepsy.


Subject(s)
Brain-Derived Neurotrophic Factor/drug effects , CA1 Region, Hippocampal/drug effects , Dendritic Spines/drug effects , Epilepsy/chemically induced , Epilepsy/metabolism , GABA Antagonists/pharmacology , Neuronal Plasticity/drug effects , Pentylenetetrazole/pharmacology , Pyramidal Cells/drug effects , Animals , Disease Models, Animal , GABA Antagonists/administration & dosage , Male , Pentylenetetrazole/administration & dosage , Rats , Rats, Sprague-Dawley
7.
Eur J Pharmacol ; 896: 173883, 2021 Apr 05.
Article in English | MEDLINE | ID: mdl-33513334

ABSTRACT

The lesions induced by Ibotenic acid (IA) emulate some of the symptoms associated with schizophrenia, such as impaired working memory that is predominantly organized by the medial prefrontal cortex (mPFC), or difficulties in social interactions that aremainly organized by the amygdala (AMG). The plastic capacity of dendritic spines in neurons of the mPFC and AMG is modulated by molecules that participate in the known deterioration of working memory, although the influence of these on the socialization of schizophrenic patients is unknown. Here, the effect of a neonatal IA induced lesion on social behavior and working memory was evaluated in adult rats, along with the changes in cytoarchitecture of dendritic spines and their protein content, specifically the postsynaptic density protein 95 (PSD-95), Synaptophysin (Syn), AMPA receptors, and brain-derived neurotrophic factor (BDNF). Both working memory and social behavior were impaired, and the density of the spines, as well as their PSD-95, Syn, AMPA receptor and BDNF content was lower in IA lesioned animals. The proportional density of thin, mushroom, stubby and wide spines resulted in plastic changes that suggest the activation of compensatory processes in the face of the adverse effects of the lesion. In addition, the reduction in the levels of the modulating factors also suggests that the signaling pathways in which such factors are implicated would be altered in the brains of patients with schizophrenia. Accordingly, the experimental study of such signaling pathways is likely to aid the development of more effective pharmacological strategies for the treatment of schizophrenia.


Subject(s)
Amygdala/pathology , Behavior, Animal , Dendritic Spines/pathology , Neuronal Plasticity , Prefrontal Cortex/pathology , Schizophrenia/pathology , Schizophrenic Psychology , Amygdala/metabolism , Amygdala/physiopathology , Animals , Brain-Derived Neurotrophic Factor/metabolism , Dendritic Spines/metabolism , Disease Models, Animal , Disks Large Homolog 4 Protein/metabolism , Ibotenic Acid , Male , Maze Learning , Memory, Short-Term , Prefrontal Cortex/metabolism , Prefrontal Cortex/physiopathology , Rats, Sprague-Dawley , Receptors, AMPA/metabolism , Schizophrenia/chemically induced , Schizophrenia/metabolism , Schizophrenia/physiopathology , Social Behavior , Synaptophysin/metabolism
8.
Neurobiol Learn Mem ; 172: 107247, 2020 07.
Article in English | MEDLINE | ID: mdl-32416137

ABSTRACT

Spatial learning and memory enables individuals to orientate themselves in an external environment. Synaptic stimulation of dendritic spines on hippocampal place cells underlies adaptive cognitive performance, inducing plastic changes such as spinogenesis, pruning and structural interconversion. Such plastic changes are driven by complex molecular machinery that relies on several actin cytoskeleton-associated proteins (ACAP's), these interacting with actin filaments in the postsynaptic density to guide the conformational changes to spines in accordance with the synaptic information they receive. However, the specific dynamics of the plastic changes in spines driven by ACAP's are poorly understood. Adult rats exhibit efficient allocentric reference memory 30 days after training in a spatial learning paradigm in the Morris water maze. A Golgi study revealed this behavior to be associated with a reduction in both spine density and in mushroom spines, as well as a concomitant increase in thin spines. These changes were accompanied by the overexpression of mRNA encoding ß-actin, Spinophilin and Cortactin, whilst the expression of Profilin, α-actinin, Drebrin, Synaptopodin and Myosin decreased. By contrast, no changes were evident in Cofilin, Gelsolin and Arp2/3 mRNA. From this analysis, it appears that neither spinogenesis nor new mushroom spines are necessary for long-term spatial information retrieval, while thin spines could be potentiated to retrieve pre-learned spatial information. Further studies that focus on the signaling pathways and their related molecules may shed further light on the molecular dynamics of the plastic changes to dendritic spines that underlie cognitive performance, both under normal and pathological conditions.


Subject(s)
CA1 Region, Hippocampal/physiology , Cytoskeletal Proteins/physiology , Dendritic Spines/physiology , Memory, Long-Term/physiology , Neuronal Plasticity , Animals , Male , Rats, Sprague-Dawley , Spatial Learning/physiology , Spatial Memory/physiology
9.
Pharmacol Biochem Behav ; 175: 116-122, 2018 12.
Article in English | MEDLINE | ID: mdl-30267796

ABSTRACT

Attention Deficit Hyperactivity Disorder (ADHD) causes impaired visuospatial working memory (VWM), which primarily maps to the prefrontal cortex. However, little is known about the synaptic processes underlying cognitive loss in ADHD, or those ultimately involved in the preventive effect observed through the clinical use of Atomoxetine (ATX). To investigate the plasticity underlying ADHD related cognitive loss, and that potentially involved in the preventive action of Atomoxetine, allocentric VWM was assessed, as well as the dendritic spine number and proportional density on pyramidal neurons in the prefrontal cerebral cortex layer III of neonatal 6-hydroxydopamine-lesioned rats. The effect of acute ATX treatment was also assessed at 28 days of age. 6-OHDA induced lesions produced increased motor activity and a loss of VWM, concomitant with a reduction in thin spine density. ATX administration reversed cognitive loss, in conjunction with a decrease in thin spines and an increase in mushroom spines. A reduction in the proportion of spines involved in learning in hyperactive animals could account for the loss in cognitive function observed. Considering thin spine density was also reduced after ATX administration, we hypothesized that the restoration in cognitive function recorded could be brought about by an increase in memory related mushroom spines.


Subject(s)
Atomoxetine Hydrochloride/pharmacology , Memory, Short-Term/drug effects , Neuronal Plasticity/drug effects , Prefrontal Cortex/drug effects , Pyramidal Cells/drug effects , Animals , Female , Male , Prefrontal Cortex/cytology , Rats , Rats, Sprague-Dawley
10.
PLoS One ; 12(11): e0188239, 2017.
Article in English | MEDLINE | ID: mdl-29176874

ABSTRACT

The structural effect of neurturin (NRTN) on the nigrostriatal dopaminergic system in animals remains unknown, although NRTN has been shown to be effective in Parkinson's disease animal models. Herein, we aimed to demonstrate that NRTN overexpression in dopaminergic neurons stimulates both neurite outgrowths in the nigrostriatal pathway and striatal dendritic spines in aging rats with chronic 6-hydroxydopamine (6-OHDA) lesion. At week 12 after lesion, pTracer-mNRTN-His or pGreenLantern-1 plasmids were intranigrally transfected using the NTS-polyplex nanoparticles system. We showed that the transgenic expression in dopaminergic neurons remained until the end of the study (12 weeks). Only animals expressing NRTN-His showed recovery of tyrosine hydroxylase (TH)+ cells (28 ± 2%), their neurites (32 ± 2%) and the neuron-specific cytoskeletal marker ß-III-tubulin in the substantia nigra; striatal TH(+) fibers were also recovered (52 ± 3%), when compared to the healthy condition. Neurotensin receptor type 1 levels were also significantly recovered in the substantia nigra and striatum. Dopamine recovery was 70 ± 4% in the striatum and complete in the substantia nigra. The number of dendritic spines of striatal medium spiny neurons was also significantly increased, but the recovery was not complete. Drug-activated circling behavior decreased by 73 ± 2% (methamphetamine) and 89 ± 1% (apomorphine). Similar decrease was observed in the spontaneous motor behavior. Our results demonstrate that NRTN causes presynaptic and postsynaptic restoration of the nigrostriatal dopaminergic system after a 6-OHDA-induced chronic lesion. However, those improvements did not reach the healthy condition, suggesting that NRTN exerts lesser neurotrophic effects than other neurotrophic approaches.


Subject(s)
Dopaminergic Neurons/metabolism , Neurturin/metabolism , Presynaptic Terminals/metabolism , Animals , Corpus Striatum/metabolism , Corpus Striatum/pathology , Cytoskeleton/metabolism , Dendritic Spines/metabolism , Dopamine/metabolism , Enzyme-Linked Immunosorbent Assay , Forelimb/physiology , Male , Mice , Neurites/metabolism , Oxidopamine , Rats, Wistar , Receptors, Neurotensin/metabolism , Substantia Nigra/metabolism , Substantia Nigra/pathology , Transfection , Vibrissae/physiology
11.
Neurosci Lett ; 657: 27-31, 2017 Sep 14.
Article in English | MEDLINE | ID: mdl-28760460

ABSTRACT

Rehabilitation is a process which favors recovery after brain damage involving motor systems, and neural plasticity is the only real resource the brain has for inducing neurobiological events in order to bring about re-adaptation. Rats were placed on a treadmill and made to walk, in different groups, at different velocities and with varying degrees of inclination. Plastic changes in the spines of the apical and basal dendrites of fifth-layer pyramidal neurons in the motor cortices of the rats were detected after study with the Golgi method. Numbers of dendritic spines increased in the three experimental groups, and thin, mushroom, stubby, wide, and branched spines increased or decreased in proportion depending on the motor demands made of each group. Along with the numerical increase of spines, the present findings provide evidence that dendritic spines' geometrical plasticity is involved in the differential performance of motor activity.


Subject(s)
Dendritic Spines/physiology , Motor Activity/physiology , Motor Cortex/physiology , Neuronal Plasticity/physiology , Pyramidal Cells/physiology , Animals , Male , Motor Cortex/cytology , Pyramidal Cells/cytology , Rats , Rats, Sprague-Dawley , Silver Staining
12.
Arch Med Res ; 48(7): 609-615, 2017 10.
Article in English | MEDLINE | ID: mdl-29530339

ABSTRACT

BACKGROUND: Spinal cord injury (SCI) is highly incapacitating, and the neurobiological factors involved in an eventual functional recovery remain uncertain. Plastic changes to dendritic spines are closely related with the functional modifications of behavior. AIM OF THE STUDY: To explore the plastic response of dendritic spines in motoneurons after SCI. METHODS: Female rats were assigned to either of three groups: Intact (no manipulations), Sham (T9 laminectomy), and SCI (T9 laminectomy and spinal cord contusion). RESULTS: Motor function according to a BBBscale was progressively recovered from 2 week through 8 week postinjury, reaching a plateau through week 16. Dendritic spine density was greater in SCI vs. control groups, rostral as well as caudal to the lesion, at 8 and 16 weeks postinjury. Thin and stubby/wide spines were more abundant at both locations and time points, whereas mushroom spines predominated at 2 and 4 months in rostral to the lesion. Filopodia and atypical structures resembling dendritic spines were observed. Synaptophysin expression was lower in SCI at the caudal portion at 8 weeks, and was higher at week 16. CONCLUSION: Spinogenesis in spinal motoneurons may be a crucial plastic response to favor spontaneous recovery after SCI.


Subject(s)
Dendritic Spines/physiology , Motor Neurons/physiology , Neuronal Plasticity , Spinal Cord Injuries/physiopathology , Wound Healing/physiology , Animals , Female , Rats , Rats, Long-Evans , Rats, Sprague-Dawley , Recovery of Function , Thoracic Vertebrae
13.
Behav Brain Res ; 298(Pt B): 261-7, 2016 Feb 01.
Article in English | MEDLINE | ID: mdl-26589803

ABSTRACT

The prefrontal cortex participates in the rectification of information related to motor activity that favors motor learning. Dendritic spine plasticity is involved in the modifications of motor patterns that underlie both motor activity and motor learning. To study this association in more detail, adult male rats were trained over six days in an acrobatic motor learning paradigm and they were subjected to a behavioral evaluation on each day of training. Also, a Golgi-based morphological study was carried out to determine the spine density and the proportion of the different spine types. In the learning paradigm, the number of errors diminished as motor training progressed. Concomitantly, spine density increased on days 1 and 3 of training, particularly reflecting an increase in the proportion of thin (day 1), stubby (day 1) and branched (days 1, 2 and 5) spines. Conversely, mushroom spines were less prevalent than in the control rats on days 5 and 6, as were stubby spines on day 6, together suggesting that this plasticity might enhance motor learning. The increase in stubby spines on day 1 suggests a regulation of excitability related to the changes in synaptic input to the prefrontal cortex. The plasticity to thin spines observed during the first 3 days of training could be related to the active rectification induced by the information relayed to the prefrontal cortex -as the behavioral findings indeed showed-, which in turn could be linked to the lower proportion of mushroom and stubby spines seen in the last days of training.


Subject(s)
Dendritic Spines/physiology , Learning/physiology , Motor Activity/physiology , Prefrontal Cortex/physiology , Pyramidal Cells/physiology , Animals , Male , Neuronal Plasticity , Photomicrography , Prefrontal Cortex/cytology , Pyramidal Cells/cytology , Rats, Sprague-Dawley
14.
Horm Behav ; 74: 19-27, 2015 Aug.
Article in English | MEDLINE | ID: mdl-25921586

ABSTRACT

This article is part of a Special Issue "Estradiol and Cognition". Estradiol participates in the regulation of the function and plasticity of synaptic circuits in key cognitive brain regions, such as the prefrontal cortex and the hippocampus. The mechanisms elicited by estradiol are mediated by the regulation of transcriptional activity by nuclear estrogen receptors and by intracellular signaling cascades activated by estrogen receptors associated with the plasma membrane. In addition, the mechanisms include the interaction of estradiol with the signaling of other factors involved in the regulation of cognition, such as brain derived neurotrophic factor, insulin-like growth factor-1 and Wnt. Modifications in these signaling pathways by aging or by a long-lasting ovarian hormone deprivation after menopause may impair the enhancing effects of estradiol on synaptic plasticity and cognition.


Subject(s)
Estradiol/pharmacology , Memory/drug effects , Neuronal Plasticity/drug effects , Aging/drug effects , Aging/genetics , Aging/metabolism , Animals , Brain/drug effects , Brain/metabolism , Brain/physiology , Cognition/drug effects , Cognition/physiology , Female , Hippocampus/drug effects , Hippocampus/physiology , Humans , Male , Neuronal Plasticity/genetics , Receptors, Estrogen/genetics , Receptors, Estrogen/metabolism , Signal Transduction/drug effects , Signal Transduction/genetics
15.
Restor Neurol Neurosci ; 33(5): 639-45, 2015.
Article in English | MEDLINE | ID: mdl-25720541

ABSTRACT

PURPOSE: The presynaptic stimulatory activity of parallel fibers on the dendritic spines of cerebellar Purkinje cells (PC) has a strong influence on the organization of motor learning. Motor learning has been shown to modify the synapses established on PC dendritic spines but the plastic changes of the different spine types, possibly underlying motor learning, have not been studied. METHODS: Adult male Sprague-Dawley rats were trained daily for 26 days using an acrobatic paradigm (AC), at the end of which dendritic spine density and the proportion of the different types of spines was assessed. RESULTS: The learning curves of AC rats reflected a robust decrease in the latency for resolution and in the errors committed during the first week of training, which subsequently stabilized until the end of training. Dendritic spine density was greater in these AC rats, reflected in a larger proportion of thin, mushroom and stubby spines. CONCLUSIONS: Since thin spines are associated with acquiring novel information whilst mushroom spines are associated with long-term information storage, there appears to be a strong relationship between AC motor learning and consolidation. The increase in stubby spines could be related to the regulation of excitatory stimulation underlying motor overactivity.


Subject(s)
Dendritic Spines/physiology , Learning/physiology , Motor Skills/physiology , Neuronal Plasticity/physiology , Purkinje Cells/physiology , Animals , Male , Photomicrography , Purkinje Cells/cytology , Rats, Sprague-Dawley
16.
Neurobiol Learn Mem ; 109: 94-103, 2014 Mar.
Article in English | MEDLINE | ID: mdl-24316372

ABSTRACT

Normal aging is characterized by slight impairments in spatial memory, and the modification of some electrophysiological parameters that underlie place learning and associated reference memory. However, the morphological mechanisms underlying these impairments remain unknown. In the present study, we analyzed the spine density and the proportion of thin, mushroom, stubby, wide, branched and double spines on pyramidal neuron dendrites in the hippocampal CA1 field of young and aged rats. These parameters were assessed both before and after evaluating place learning and reference memory in the Morris water maze. Aged rats adopted an egocentric strategy to resolve the task, swimming slower and further, and taking longer to locate the sunken platform. While probe trials revealed that aged animals could recall the platform position, these animals spent more time exploring incorrect quadrants than young rats. An increase in spine density was observed after task performance in both young and aged rats, but aging provoked a decrease in the density of thin spines. In addition, there was an increase in the density of mushroom and wide spines in aged animals after task performance as compared with the untested aged counterparts. Moreover, in aged animals there were fewer thin spines and more wide spines after task performance than in the young tested animals. These findings support the view that aging attenuates but does not abolish spatial memory, a process that may be associated with plastic changes in the type of dendritic spines on aged hippocampal CA1 neurons.


Subject(s)
Aging , Dendritic Spines/ultrastructure , Hippocampus/cytology , Maze Learning/physiology , Space Perception/physiology , Age Factors , Animals , Male , Rats , Rats, Sprague-Dawley
17.
J Alzheimers Dis ; 32(1): 233-40, 2012.
Article in English | MEDLINE | ID: mdl-22776969

ABSTRACT

SAMP8 is a strain of mice with accelerated senescence. These mice have recently been the focus of attention as they show several alterations that have also been described in Alzheimer's disease (AD) patients. The number of dendritic spines, spine plasticity, and morphology are basic to memory formation. In AD, the density of dendritic spines is severely decreased. We studied memory alterations using the object recognition test. We measured levels of synaptophysin as a marker of neurotransmission and used Golgi staining to quantify and characterize the number and morphology of dendritic spines in SAMP8 mice and in SAMR1 as control animals. While there were no memory differences at 3 months of age, the memory of both 6- and 9-month-old SAMP8 mice was impaired in comparison with age-matched SAMR1 mice or young SAMP8 mice. In addition, synaptophysin levels were not altered in young SAMP8 animals, but SAMP8 aged 6 and 9 months had less synaptophysin than SAMR1 controls and also less than 3-month-old SAMP8 mice. Moreover, while spine density remained stable with age in SAMR1 mice, the number of spines started to decrease in SAMP8 animals at 6 months, only to get worse at 9 months. Our results show that from 6 months onwards SAMP8 mice show impaired memory. This age coincides with that at which the levels of synaptophysin and spine density decrease. Thus, we conclude that together with other studies that describe several alterations at similar ages, SAMP8 mice are a very suitable model for studying AD.


Subject(s)
Alzheimer Disease/pathology , Alzheimer Disease/psychology , CA1 Region, Hippocampal/pathology , Dendritic Spines/pathology , Memory Disorders/pathology , Memory Disorders/psychology , Pyramidal Cells/pathology , Aging/psychology , Animals , Blotting, Western , Brain/pathology , Male , Mice , Mice, Transgenic , Psychomotor Performance/physiology , Recognition, Psychology/physiology , Synaptophysin/metabolism
18.
Brain Res ; 1470: 1-10, 2012 Aug 27.
Article in English | MEDLINE | ID: mdl-22750586

ABSTRACT

Cognitive impairment or its recovery has been associated with the absence or reestablishment of estrogenic actions in the central nervous system of female experimental animals or women. It has been proposed that these cognitive phenomena are related to estrogen-mediated modulatory activity of synaptic transmission in brain structures involved in cognitive functions. In the present work a morphological study was conducted in adult female ovariectomized rats to evaluate estradiol-dependent dendritic spine sprouting in hippocampal pyramidal neurons, and changes in the presynaptic marker synaptophysin. Three or ten days after estradiol treatment (10 µg/day, twice) in the ovariectomized rats, a significant increase of synaptophysin was observed, which was coincident with a significant higher numerical density of thin (22%), stubby (36%), mushroom (47%) and double spines (125%), at day 3, without significant changes of spine density at day 10, after treatment. These results may be interpreted as evidence of pre- and postsynaptic plastic events that may be involved in the modulation of cognitive-related behavioral performance after estrogen replacement therapy.


Subject(s)
CA1 Region, Hippocampal/cytology , Dendritic Spines/drug effects , Estradiol/pharmacology , Estrogens/pharmacology , Pyramidal Cells/ultrastructure , Analysis of Variance , Animals , CA1 Region, Hippocampal/drug effects , Dose-Response Relationship, Drug , Female , Gene Expression Regulation/drug effects , Ovariectomy , Pyramidal Cells/drug effects , Rats , Rats, Sprague-Dawley , Silver Staining , Synaptophysin/metabolism
20.
Neurosci Res ; 73(4): 321-7, 2012 Aug.
Article in English | MEDLINE | ID: mdl-22609361

ABSTRACT

Working memory is a cognitive ability chiefly organized by the prefrontal cortex. Working memory tests may be resolved based on allocentric or egocentric spatial strategies. Serotonergic neurotransmission is closely involved in working memory, but its role in spatial strategies for working memory performance is unknown. To address this issue, prefrontal serotonin depletion was induced to adult male rats, and three days after the behavioral expression of both allocentric and egocentric strategies were evaluated in the "Y" maze and in a crossed-arm maze, respectively. Serotonin depletion caused no effects on allocentric-related behavioral performance, but lesioned rats performed deficiently when the egocentric working memory was evaluated. These results suggest that serotonin may be more closely related with the organization of working memory that uses own movement-guided responses than with that involving the use of external visuospatial signals. Further neurochemical studies are needed to elucidate possible interactions between serotonergic activity and other neurotransmitter systems in the organization of working memory-related allocentric and egocentric strategies.


Subject(s)
Memory, Short-Term/physiology , Prefrontal Cortex/metabolism , Serotonin/metabolism , Animals , Chromatography, High Pressure Liquid , Male , Maze Learning/physiology , Rats , Spatial Behavior/physiology
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