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1.
Cereb Cortex ; 34(5)2024 May 02.
Artigo em Inglês | MEDLINE | ID: mdl-38745556

RESUMO

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.


Assuntos
Células Piramidais , Humanos , Células Piramidais/fisiologia , Animais , Masculino , Feminino , Camundongos , Adulto , Espinhas Dendríticas/fisiologia , Espinhas Dendríticas/ultraestrutura , Lobo Temporal/citologia , Dendritos/fisiologia , Pessoa de Meia-Idade , Axônios/fisiologia , Especificidade da Espécie
2.
Cereb Cortex ; 33(4): 1074-1089, 2023 02 07.
Artigo em Inglês | MEDLINE | ID: mdl-35353195

RESUMO

At present, many studies support the notion that after stroke, remote regions connected to the infarcted area are also affected and may contribute to functional outcome. In the present study, we have analyzed possible microanatomical alterations in pyramidal neurons from the contralesional hemisphere after induced stroke. We performed intracellular injections of Lucifer yellow in pyramidal neurons from layer III in the somatosensory cortex of the contralesional hemisphere in an ischemic stroke mouse model. A detailed 3-dimensional analysis of the neuronal complexity and morphological alterations of dendritic spines was then performed. Our results demonstrate that pyramidal neurons from layer III in the somatosensory cortex of the contralesional hemisphere show selective changes in their dendritic arbors, namely, less dendritic complexity of the apical dendritic arbor-but no changes in the basal dendritic arbor. In addition, we found differences in spine morphology in both apical and basal dendrites comparing the contralesional hemisphere with the lesional hemisphere. Our results show that pyramidal neurons of remote areas connected to the infarct zone exhibit a series of selective changes in neuronal complexity and morphological distribution of dendritic spines, supporting the hypothesis that remote regions connected to the peri-infarcted area are also affected after stroke.


Assuntos
AVC Isquêmico , Acidente Vascular Cerebral , Camundongos , Animais , Córtex Somatossensorial , Células Piramidais/fisiologia , Neurônios , Dendritos/fisiologia
3.
Cereb Cortex ; 31(8): 3592-3609, 2021 07 05.
Artigo em Inglês | MEDLINE | ID: mdl-33723567

RESUMO

Pyramidal neurons are the most abundant and characteristic neuronal type in the cerebral cortex and their dendritic spines are the main postsynaptic elements of cortical excitatory synapses. Previous studies have shown that pyramidal cell structure differs across layers, cortical areas, and species. However, within the human cortex, the pyramidal dendritic morphology has been quantified in detail in relatively few cortical areas. In the present work, we performed intracellular injections of Lucifer Yellow at several distances from the temporal pole. We found regional differences in pyramidal cell morphology, which showed large inter-individual variability in most of the morphological variables measured. However, some values remained similar in all cases. The smallest and least complex cells in the most posterior temporal region showed the greatest dendritic spine density. Neurons in the temporal pole showed the greatest sizes with the highest number of spines. Layer V cells were larger, more complex, and had a greater number of dendritic spines than those in layer III. The present results suggest that, while some aspects of pyramidal structure are conserved, there are specific variations across cortical regions, and species.


Assuntos
Células Piramidais/ultraestrutura , Lobo Temporal/ultraestrutura , Adulto , Dendritos , Espinhas Dendríticas/ultraestrutura , Epilepsia/patologia , Epilepsia/cirurgia , Feminino , Humanos , Processamento de Imagem Assistida por Computador , Imageamento Tridimensional , Individualidade , Masculino , Pessoa de Meia-Idade , Neuroimagem , Neurônios/ultraestrutura , Lobo Temporal/citologia
4.
Cereb Cortex ; 30(2): 730-752, 2020 03 21.
Artigo em Inglês | MEDLINE | ID: mdl-31268532

RESUMO

Pyramidal neurons are the most common cell type and are considered the main output neuron in most mammalian forebrain structures. In terms of function, differences in the structure of the dendrites of these neurons appear to be crucial in determining how neurons integrate information. To further shed light on the structure of the human pyramidal neurons we investigated the geometry of pyramidal cells in the human and mouse CA1 region-one of the most evolutionary conserved archicortical regions, which is critically involved in the formation, consolidation, and retrieval of memory. We aimed to assess to what extent neurons corresponding to a homologous region in different species have parallel morphologies. Over 100 intracellularly injected and 3D-reconstructed cells across both species revealed that dendritic and axonal morphologies of human cells are not only larger but also have structural differences, when compared to mouse. The results show that human CA1 pyramidal cells are not a stretched version of mouse CA1 cells. These results indicate that there are some morphological parameters of the pyramidal cells that are conserved, whereas others are species-specific.


Assuntos
Região CA1 Hipocampal/citologia , Células Piramidais/citologia , Animais , Axônios , Dendritos , Feminino , Humanos , Imuno-Histoquímica , Masculino , Camundongos Endogâmicos C57BL , Pessoa de Meia-Idade , Especificidade da Espécie
5.
Cereb Cortex ; 26(6): 2811-2822, 2016 06.
Artigo em Inglês | MEDLINE | ID: mdl-26762857

RESUMO

Pyramidal cell structure varies between different cortical areas and species, indicating that the cortical circuits that these cells participate in are likely to be characterized by different functional capabilities. Structural differences between cortical layers have been traditionally reported using either the Golgi method or intracellular labeling, but the structure of pyramidal cells has not previously been systematically analyzed across all cortical layers at a particular age. In the present study, we investigated the dendritic architecture of complete basal arbors of pyramidal neurons in layers II, III, IV, Va, Vb, and VI of the hindlimb somatosensory cortical region of postnatal day 14 rats. We found that the characteristics of basal dendritic morphologies are statistically different in each cortical layer. The variations in size and branching pattern that exist between pyramidal cells of different cortical layers probably reflect the particular functional properties that are characteristic of the cortical circuit in which they participate. This new set of complete basal dendritic arbors of 3D-reconstructed pyramidal cell morphologies across each cortical layer will provide new insights into interlaminar information processing in the cerebral cortex.


Assuntos
Dendritos , Células Piramidais/citologia , Córtex Somatossensorial/citologia , Animais , Imageamento Tridimensional , Fotomicrografia , Ratos Wistar , Córtex Somatossensorial/crescimento & desenvolvimento
6.
Addict Biol ; 22(1): 78-92, 2017 Jan.
Artigo em Inglês | MEDLINE | ID: mdl-26332690

RESUMO

We previously showed that cocaine self-administration increases spine density in CA1 hippocampal neurons in Lewis (LEW) but not in Fischer 344 (F344) rats. Dendritic spine morphology is intimately related to its function. Thus, we conducted a 3D morphological analysis of CA1 dendrites and dendritic spines in these two strains of rats. Strain-specific differences were observed prior to cocaine self-administration: LEW rats had significantly larger dendritic diameters but lower spine density than the F344 strain. After cocaine self-administration, proximal dendritic volume, dendritic surface area and spine density were increased in LEW rats, where a higher percentage of larger spines were also observed. In addition, we found a strong positive correlation between dendritic volume and spine morphology, and a moderate correlation between dendritic volume and spine density in cocaine self-administered LEW rats, an effect that was not evident in any other condition. By contrast, after cocaine self-administration, F334 rats showed decreased spine head volumes. Our findings suggest that genetic differences could play a key role in the structural plasticity induced by cocaine in CA1 pyramidal neurons. These cocaine-induced alterations could be related to differences in the memory processing of drug reward cues that could potentially explain differential individual vulnerability to cocaine addiction.


Assuntos
Cocaína/farmacologia , Espinhas Dendríticas/efeitos dos fármacos , Inibidores da Captação de Dopamina/farmacologia , Hipocampo/efeitos dos fármacos , Autoadministração , Animais , Comportamento Animal/efeitos dos fármacos , Cocaína/administração & dosagem , Inibidores da Captação de Dopamina/administração & dosagem , Masculino , Modelos Animais , Ratos , Ratos Endogâmicos F344 , Ratos Endogâmicos Lew , Especificidade da Espécie
7.
J Neurosci ; 34(30): 10078-84, 2014 Jul 23.
Artigo em Inglês | MEDLINE | ID: mdl-25057209

RESUMO

Dendritic spines establish most excitatory synapses in the brain and are located in Purkinje cell's dendrites along helical paths, perhaps maximizing the probability to contact different axons. To test whether spine helixes also occur in neocortex, we reconstructed >500 dendritic segments from adult human cortex obtained from autopsies. With Fourier analysis and spatial statistics, we analyzed spine position along apical and basal dendrites of layer 3 pyramidal neurons from frontal, temporal, and cingulate cortex. Although we occasionally detected helical positioning, for the great majority of dendrites we could not reject the null hypothesis of spatial randomness in spine locations, either in apical or basal dendrites, in neurons of different cortical areas or among spines of different volumes and lengths. We conclude that in adult human neocortex spine positions are mostly random. We discuss the relevance of these results for spine formation and plasticity and their functional impact for cortical circuits.


Assuntos
Córtex Cerebral/ultraestrutura , Espinhas Dendríticas/ultraestrutura , Análise de Fourier , Adulto , Idoso de 80 Anos ou mais , Córtex Cerebral/citologia , Córtex Cerebral/fisiologia , Espinhas Dendríticas/fisiologia , Humanos , Masculino , Neocórtex/citologia , Neocórtex/diagnóstico por imagem , Células Piramidais/citologia , Células Piramidais/ultraestrutura , Ultrassonografia
8.
Brain Pathol ; 34(3): e13222, 2024 May.
Artigo em Inglês | MEDLINE | ID: mdl-38012061

RESUMO

Significant progress has been made with regard to understanding how the adult brain responds after a stroke. However, a large number of patients continue to suffer lifelong disabilities without adequate treatment. In the present study, we have analyzed possible microanatomical alterations in the contralesional hippocampus from the ischemic stroke mouse model tMCAo 12-14 weeks after transient middle cerebral artery occlusion. After individually injecting Lucifer yellow into pyramidal neurons from the CA1 field of the hippocampus, we performed a detailed three-dimensional analysis of the neuronal complexity, dendritic spine density, and morphology. We found that, in both apical (stratum radiatum) and basal (stratum oriens) arbors, CA1 pyramidal neurons in the contralesional hippocampus of tMCAo mice have a significantly higher neuronal complexity, as well as reduced spine density and alterations in spine volume and spine length. Our results show that when the ipsilateral hippocampus is dramatically damaged, the contralesional hippocampus exhibits several statistically significant selective alterations. However, these alterations are not as significant as expected, which may help to explain the recovery of hippocampal function after stroke. Further anatomical and physiological studies are necessary to better understand the modifications in the "intact" contralesional lesioned brain regions, which are probably fundamental to recover functions after stroke.


Assuntos
Hipocampo , Células Piramidais , Humanos , Camundongos , Animais , Região CA1 Hipocampal , Neurônios , Infarto da Artéria Cerebral Média , Espinhas Dendríticas , Dendritos
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