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1.
Neuropharmacology ; 254: 109993, 2024 Aug 15.
Artículo en Inglés | MEDLINE | ID: mdl-38735368

RESUMEN

In the last decades, the consumption of energy drinks has risen dramatically, especially among young people, adolescents and athletes, driven by the constant search for ergogenic effects, such as the increase in physical and cognitive performance. In parallel, mixed consumption of energy drinks and ethanol, under a binge drinking modality, under a binge drinking modality, has similarly grown among adolescents. However, little is known whether the combined consumption of these drinks, during adolescence, may have long-term effects on central function, raising the question of the risks of this habit on brain maturation. Our study was designed to evaluate, by behavioral, electrophysiological and molecular approaches, the long-term effects on hippocampal plasticity of ethanol (EtOH), energy drinks (EDs), or alcohol mixed with energy drinks (AMED) in a rat model of binge-like drinking adolescent administration. The results show that AMED binge-like administration produces adaptive hippocampal changes at the molecular level, associated with electrophysiological and behavioral alterations, which develop during the adolescence and are still detectable in adult animals. Overall, the study indicates that binge-like drinking AMED adolescent exposure represents a habit that may affect permanently hippocampal plasticity.


Asunto(s)
Consumo Excesivo de Bebidas Alcohólicas , Bebidas Energéticas , Etanol , Hipocampo , Plasticidad Neuronal , Animales , Hipocampo/efectos de los fármacos , Hipocampo/crecimiento & desarrollo , Etanol/farmacología , Etanol/administración & dosificación , Masculino , Bebidas Energéticas/efectos adversos , Plasticidad Neuronal/efectos de los fármacos , Ratas , Consumo Excesivo de Bebidas Alcohólicas/fisiopatología , Ratas Wistar , Depresores del Sistema Nervioso Central/farmacología , Depresores del Sistema Nervioso Central/toxicidad
2.
Synapse ; 78(4): e22292, 2024 Jul.
Artículo en Inglés | MEDLINE | ID: mdl-38813758

RESUMEN

N-methyl-d-aspartate receptors (NMDARs) at hippocampal excitatory synapses undergo a late postnatal shift in subunit composition, from an initial prevalence of GluN2B subunit incorporation to a later predominance of GluN2A. This GluN2B to GluN2A shift alters NMDAR calcium conductance dynamics and intracellular molecular signaling that are individually regulated by distinct GluN2 signaling domains and temporally align with developmental alterations in dendritic and synaptic plasticity. However, the impacts of individual GluN2B to GluN2A signaling domains on neuronal development remain unknown. Ionotropic and intracellular signaling domains of GluN2 subunits were separated by creating chimeric GluN2 subunits that were expressed in two transgenic mouse lines. Western blot and immunoprecipitation revealed that roughly one third of native synaptic NMDARs were replaced by transformed NMDARs without altering total synaptic NMDAR content. Schaffer collateral synaptic strength was transiently increased in acutely prepared hippocampal slices at just over 3 weeks of age in animals overexpressing the GluN2B carboxy terminus. Long-term potentiation (LTP) induction following lower frequency stimulation was regulated by GluN2 ionotropic signaling domains in an age-dependent manner and LTP maintenance was enhanced by overexpression of the GluN2B CTD in mature animals. After higher frequency stimulation, the induction and maintenance of LTP were increased in young adult animals overexpressing the GluN2B ionotropic signaling domains but reduced in juveniles just over 3 weeks of age. Confocal imaging of green fluorescent protein (GFP)- labeled CA1 pyramidal neurons revealed no alterations in dendritic morphology or spine density in mice expressing chimeric GluN2 subunits. These results illustrate how individual GluN2 subunit signaling domains do or do not control physiological and morphological development of hippocampal excitatory neurons and better clarify the neurobiological factors that govern hippocampal maturation. SIGNIFICANCE STATEMENT: A developmental reduction in the magnitude of hippocampal long-term synaptic potentiation (LTP) and a concomitant improvement in spatial maze performance coincide with greater incorporation of GluN2A subunits into synaptic NMDARs. Corroborating our prior discovery that overexpression of GluN2A-type ionotropic signaling domains enables context-based navigation in immature mice, GluN2A-type ionotropic signaling domain overexpression reduces LTP induction threshold and magnitude in immature mice. Also, we previously found that GluN2B carboxy terminal domain (CTD) overexpression enhances long-term spatial memory in mature mice and now report that the GluN2B CTD is associated with greater amplitude of LTP after induction in mature mice. Thus, the late postnatal maturation of context encoding likely relies on a shift toward GluN2A-type ionotropic signaling and a reduction in the threshold to induce LTP while memory consolidation and LTP maintenance are regulated by GluN2B subunit CTD signaling.


Asunto(s)
Dendritas , Hipocampo , Ratones Transgénicos , Plasticidad Neuronal , Receptores de N-Metil-D-Aspartato , Animales , Receptores de N-Metil-D-Aspartato/metabolismo , Receptores de N-Metil-D-Aspartato/genética , Hipocampo/metabolismo , Hipocampo/crecimiento & desarrollo , Hipocampo/fisiología , Dendritas/fisiología , Dendritas/metabolismo , Ratones , Plasticidad Neuronal/fisiología , Potenciación a Largo Plazo/fisiología , Transmisión Sináptica/fisiología , Potenciales Postsinápticos Excitadores/fisiología , Transducción de Señal/fisiología , Ratones Endogámicos C57BL , Masculino
3.
Gut Microbes ; 16(1): 2359729, 2024.
Artículo en Inglés | MEDLINE | ID: mdl-38816999

RESUMEN

Early life environment influences mammalian brain development, a growing area of research within the Developmental Origins of Health and Disease framework, necessitating a deeper understanding of early life factors on children's brain development. This study introduces a mouse model, LAO1 knockout mice, to investigate the relationship between breast milk, the gut microbiome, and brain development. The results reveal that breast milk's reactive oxygen species (ROS) are vital in shaping the neonatal gut microbiota. Decreased hydrogen peroxide (H2O2) levels in milk disrupt the gut microbiome and lead to abnormal metabolite production, including D-glucaric acid. This metabolite inhibits hippocampal myelin formation during infancy, potentially contributing to behavioral abnormalities observed in adulthood. These findings suggest that H2O2 in breast milk is crucial for normal gut microbiota formation and brain development, with implications for understanding and potentially treating neurodevelopmental disorders in humans.


Asunto(s)
Animales Recién Nacidos , Microbioma Gastrointestinal , Peróxido de Hidrógeno , Ratones Noqueados , Leche Humana , Vaina de Mielina , Animales , Vaina de Mielina/metabolismo , Ratones , Animales Recién Nacidos/crecimiento & desarrollo , Leche Humana/química , Leche Humana/metabolismo , Humanos , Femenino , Peróxido de Hidrógeno/metabolismo , Encéfalo/metabolismo , Encéfalo/crecimiento & desarrollo , Especies Reactivas de Oxígeno/metabolismo , Hipocampo/metabolismo , Hipocampo/crecimiento & desarrollo , Masculino , Ratones Endogámicos C57BL
4.
Neuropsychopharmacology ; 49(6): 1024-1032, 2024 May.
Artículo en Inglés | MEDLINE | ID: mdl-38431758

RESUMEN

The 22q11.2 locus contains genes critical for brain development. Reciprocal Copy Number Variations (CNVs) at this locus impact risk for neurodevelopmental and psychiatric disorders. Both 22q11.2 deletions (22qDel) and duplications (22qDup) are associated with autism, but 22qDel uniquely elevates schizophrenia risk. Understanding brain phenotypes associated with these highly penetrant CNVs can provide insights into genetic pathways underlying neuropsychiatric disorders. Human neuroimaging and animal models indicate subcortical brain alterations in 22qDel, yet little is known about developmental differences across specific nuclei between reciprocal 22q11.2 CNV carriers and typically developing (TD) controls. We conducted a longitudinal MRI study in a total of 385 scans from 22qDel (n = 96, scans = 191, 53.1% female), 22qDup (n = 37, scans = 64, 45.9% female), and TD controls (n = 80, scans = 130, 51.2% female), across a wide age range (5.5-49.5 years). Volumes of the thalamus, hippocampus, amygdala, and anatomical subregions were estimated using FreeSurfer, and the linear effects of 22q11.2 gene dosage and non-linear effects of age were characterized with generalized additive mixed models (GAMMs). Positive gene dosage effects (volume increasing with copy number) were observed for total intracranial and whole hippocampus volumes, but not whole thalamus or amygdala volumes. Several amygdala subregions exhibited similar positive effects, with bi-directional effects found across thalamic nuclei. Distinct age-related trajectories were observed across the three groups. Notably, both 22qDel and 22qDup carriers exhibited flattened development of hippocampal CA2/3 subfields relative to TD controls. This study provides novel insights into the impact of 22q11.2 CNVs on subcortical brain structures and their developmental trajectories.


Asunto(s)
Variaciones en el Número de Copia de ADN , Síndrome de DiGeorge , Dosificación de Gen , Imagen por Resonancia Magnética , Humanos , Femenino , Masculino , Variaciones en el Número de Copia de ADN/genética , Adulto , Adolescente , Niño , Adulto Joven , Persona de Mediana Edad , Preescolar , Síndrome de DiGeorge/genética , Síndrome de DiGeorge/patología , Síndrome de DiGeorge/diagnóstico por imagen , Estudios Longitudinales , Hipocampo/diagnóstico por imagen , Hipocampo/patología , Hipocampo/crecimiento & desarrollo , Encéfalo/diagnóstico por imagen , Encéfalo/patología , Encéfalo/crecimiento & desarrollo , Amígdala del Cerebelo/diagnóstico por imagen , Amígdala del Cerebelo/patología , Tálamo/diagnóstico por imagen , Tálamo/crecimiento & desarrollo , Tálamo/patología , Tamaño de los Órganos
5.
Brain Res ; 1827: 148758, 2024 03 15.
Artículo en Inglés | MEDLINE | ID: mdl-38199308

RESUMEN

BACKGROUND: Subarachnoid hemorrhage (SAH) is a life-threatening neurological disease that usually has a poor prognosis. Neurogenesis is a potential therapeutic target for brain injury. Ketone metabolism also plays neuroprotective roles in many neurological disorders. OXCT1 (3-Oxoacid CoA-Transferase 1) is the rate-limiting enzyme of ketone body oxidation. In this study, we explored whether increasing ketone oxidation by upregulating OXCT1 in neurons could promote neurogenesis after SAH, and evaluated the potential mechanism involved in this process. METHODS: The ß-hydroxybutyrate content was measured using an enzymatic colorimetric assay. Adeno-associated virus targeting neurons was injected to overexpress OXCT1, and the expression and localization of proteins were evaluated by western blotting and immunofluorescence staining. Adult hippocampal neurogenesis was evaluated by dual staining with doublecortin and 5-Ethynyl-2'-Deoxyuridine. LY294002 was intracerebroventricularly administered to inhibit Akt activity. The Morris water maze and Y-maze tests were employed to assess cognitive function after SAH. RESULTS: The results showed that OXCT1 expression and hippocampal neurogenesis significantly decreased in the early stage of SAH. Overexpression of OXCT1 successfully increased hippocampal neurogenesis via activation of Akt/GSK-3ß/ß-catenin signaling and improved cognitive function, both of which were reversed by administration of LY294002. CONCLUSIONS: OXCT1 regulated hippocampal ketone body metabolism and increased neurogenesis through mechanisms mediated by the Akt/GSK-3ß/ß-catenin pathway, improving cognitive impairment after SAH.


Asunto(s)
Coenzima A Transferasas , Disfunción Cognitiva , Hipocampo , Neurogénesis , Hemorragia Subaracnoidea , Ácido 3-Hidroxibutírico , beta Catenina , Coenzima A Transferasas/genética , Coenzima A Transferasas/metabolismo , Glucógeno Sintasa Quinasa 3 beta , Hipocampo/crecimiento & desarrollo , Proteínas Proto-Oncogénicas c-akt , Animales , Ratones
6.
Commun Biol ; 6(1): 440, 2023 04 21.
Artículo en Inglés | MEDLINE | ID: mdl-37085665

RESUMEN

RAB35 is a multifunctional small GTPase that regulates endocytic recycling, cytoskeletal rearrangement, and cytokinesis. However, its physiological functions in mammalian development remain unclear. Here, we generated Rab35-knockout mice and found that RAB35 is essential for early embryogenesis. Interestingly, brain-specific Rab35-knockout mice displayed severe defects in hippocampal lamination owing to impaired distribution of pyramidal neurons, although defects in cerebral cortex formation were not evident. In addition, Rab35-knockout mice exhibited defects in spatial memory and anxiety-related behaviors. Quantitative proteomics indicated that the loss of RAB35 significantly affected the levels of other RAB proteins associated with endocytic trafficking, as well as some neural cell adhesion molecules, such as contactin-2. Collectively, our findings revealed that RAB35 is required for precise neuronal distribution in the developing hippocampus by regulating the expression of cell adhesion molecules, thereby influencing spatial memory.


Asunto(s)
Hipocampo , Neuronas , Proteínas de Unión al GTP rab , Animales , Ratones , Transporte Biológico , Hipocampo/crecimiento & desarrollo , Hipocampo/metabolismo , Mamíferos , Ratones Noqueados , Neuronas/metabolismo , Proteínas de Unión al GTP rab/metabolismo
7.
J Neurosci ; 42(24): 4812-4827, 2022 06 15.
Artículo en Inglés | MEDLINE | ID: mdl-35589394

RESUMEN

Neonatal brain injury renders the developing brain vulnerable to oxidative stress, leading to cognitive deficit. However, oxidative stress-induced damage to hippocampal circuits and the mechanisms underlying long-term changes in memory and learning are poorly understood. We used high oxygen tension or hyperoxia (HO) in neonatal mice of both sexes to investigate the role of oxidative stress in hippocampal damage. Perinatal HO induces reactive oxygen species and cell death, together with reduced interneuron maturation, inhibitory postsynaptic currents, and dentate progenitor proliferation. Postinjury interneuron stimulation surprisingly improved inhibitory activity and memory tasks, indicating reversibility. With decreased hippocampal levels of Wnt signaling components and somatostatin, HO aberrantly activated glycogen synthase kinase 3 ß activity. Pharmacological inhibition or ablation of interneuron glycogen synthase kinase 3 ß during HO challenge restored progenitor cell proliferation, interneuron development, inhibitory/excitatory balance, as well as hippocampal-dependent behavior. Biochemical targeting of interneuron function may benefit learning deficits caused by oxidative damage.SIGNIFICANCE STATEMENT Premature infants are especially vulnerable to oxidative stress, as their antioxidant defenses are underdeveloped. Indeed, high oxygen tension is associated with poor neurologic outcomes. Because of its sustained postnatal development and role in learning and memory, the hippocampus is especially vulnerable to oxidative damage in premature infants. However, the role of oxidative stress in the developing hippocampus has yet to be explored. With ever-rising rates of neonatal brain injury and no universally viable approach to maximize functional recovery, a better understanding of the mechanisms underlying neonatal brain injury is needed. Addressing this need, this study uses perinatal hyperoxia to study cognitive deficits, pathophysiology, and molecular mechanisms of oxidative damage in the developing hippocampus.


Asunto(s)
Lesiones Encefálicas , Glucógeno Sintasa Quinasa 3 beta/metabolismo , Hipocampo/metabolismo , Hiperoxia , Estrés Oxidativo , Animales , Femenino , Hipocampo/crecimiento & desarrollo , Humanos , Hiperoxia/metabolismo , Masculino , Ratones , Oxígeno/metabolismo , Embarazo
8.
J Comp Neurol ; 530(15): 2711-2748, 2022 10.
Artículo en Inglés | MEDLINE | ID: mdl-35603771

RESUMEN

Little is known about the development of the human entorhinal cortex (EC), a major hub in a widespread network for learning and memory, spatial navigation, high-order processing of object information, multimodal integration, attention and awareness, emotion, motivation, and perception of time. We analyzed a series of 20 fetal and two adult human brains using Nissl stain, acetylcholinesterase (AChE) histochemistry, and immunocytochemistry for myelin basic protein (MBP), neuronal nuclei antigen (NeuN), a pan-axonal neurofilament marker, and synaptophysin, as well as postmortem 3T MRI. In comparison with other parts of the cerebral cortex, the cytoarchitectural differentiation of the EC begins remarkably early, in the 10th week of gestation (w.g.). The differentiation occurs in a superficial magnocellular layer in the deep part of the marginal zone, accompanied by cortical plate (CP) condensation and multilayering of the deep part of CP. These processes last until the 13-14th w.g. At 14 w.g., the superficial lamina dissecans (LD) is visible, which divides the CP into the lamina principalis externa (LPE) and interna (LPI). Simultaneously, the rostral LPE separates into vertical cell-dense islands, whereas in the LPI, the deep LD emerges as a clear acellular layer. In the 16th w.g., the LPE remodels into vertical cell-dense and cell-sparse zones with a caudorostral gradient. At 20 w.g., NeuN immunoreactivity is most pronounced in the islands of layer II cells, whereas migration and differentiation inside-out gradients are seen simultaneously in both the upper (LPE) and the lower (LPI) pyramidal layers. At this stage, the EC adopts for the first time an adult-like cytoarchitectural organization, the superficial LD becomes discernible by 3T MRI, MBP-expressing oligodendrocytes first appear in the fimbria and the perforant path (PP) penetrates the subiculum to reach its molecular layer and travels along through the Cornu Ammonis fields to reach the suprapyramidal blade of the dentate gyrus, whereas the entorhinal-dentate branch perforates the hippocampal sulcus about 2-3 weeks later. The first AChE reactivity appears as longitudinal stripes at 23 w.g. in layers I and II of the rostrolateral EC and then also as AChE-positive in-growing fibers in islands of superficial layer III and layer II neurons. At 40 w.g., myelination of the PP starts as patchy MBP-immunoreactive oligodendrocytes and their processes. Our results refute the possibility of an inside-out pattern of the EC development and support the key role of layer II prospective stellate cells in the EC lamination. As the early cytoarchitectural differentiation of the EC is paralleled by the neurochemical development, these developmental milestones in EC structure and connectivity have implications for understanding its normal function, including its puzzling modular organization and potential contribution to consciousness content (awareness), as well as for its insufficiently explored deficits in developmental, psychiatric, and degenerative brain disorders.


Asunto(s)
Acetilcolinesterasa , Corteza Entorrinal , Desarrollo Fetal , Acetilcolinesterasa/metabolismo , Adulto , Corteza Entorrinal/crecimiento & desarrollo , Femenino , Feto , Hipocampo/crecimiento & desarrollo , Humanos , Neuronas/metabolismo , Embarazo , Estudios Prospectivos
9.
Proc Natl Acad Sci U S A ; 119(22): e2118240119, 2022 05 31.
Artículo en Inglés | MEDLINE | ID: mdl-35613055

RESUMEN

Adult hippocampal neurogenesis is critical for learning and memory, and aberrant adult neurogenesis has been implicated in cognitive decline associated with aging and neurological diseases [J. T. Gonçalves, S. T. Schafer, F. H. Gage, Cell 167, 897­914 (2016)]. In previous studies, we observed that the delayed-rectifier voltage-gated potassium channel Kv1.1 controls the membrane potential of neural stem and progenitor cells and acts as a brake on neurogenesis during neonatal hippocampal development [S. M. Chou et al., eLife 10, e58779 (2021)]. To assess the role of Kv1.1 in adult hippocampal neurogenesis, we developed an inducible conditional knockout mouse to specifically remove Kv1.1 from adult neural stem cells via tamoxifen administration. We determined that Kv1.1 deletion in adult neural stem cells causes overproliferation and depletion of radial glia-like neural stem cells, prevents proper adult-born granule cell maturation and integration into the dentate gyrus, and moderately impairs hippocampus-dependent contextual fear learning and memory. Taken together, these findings support a critical role for this voltage-gated ion channel in adult neurogenesis.


Asunto(s)
Condicionamiento Clásico , Hipocampo , Canal de Potasio Kv.1.1 , Células-Madre Neurales , Neurogénesis , Neuronas , Animales , Miedo , Hipocampo/citología , Hipocampo/crecimiento & desarrollo , Canal de Potasio Kv.1.1/genética , Canal de Potasio Kv.1.1/fisiología , Ratones , Ratones Noqueados , Neurogénesis/genética , Neurogénesis/fisiología , Neuronas/citología , Neuronas/fisiología
10.
Science ; 376(6590): eabn8861, 2022 04 15.
Artículo en Inglés | MEDLINE | ID: mdl-35420933

RESUMEN

Terreros-Roncal et al. investigated the impacts of human neurodegeneration on immunostainings assumed to be associated with neurogenesis. However, the study provides no evidence that putative proliferating cells are linked to neurogenesis, that multipolar nestin+ astrocytes are progenitors, or that mature-looking doublecortin+ neurons are adult-born. Their histology-marker expression differs from what is observed in species where adult hippocampal neurogenesis is well documented.


Asunto(s)
Hipocampo , Enfermedades Neurodegenerativas , Neurogénesis , Adulto , Astrocitos , Hipocampo/citología , Hipocampo/crecimiento & desarrollo , Humanos , Enfermedades Neurodegenerativas/metabolismo , Neurogénesis/fisiología , Neuronas/fisiología
11.
Proc Natl Acad Sci U S A ; 119(13): e2023784119, 2022 03 29.
Artículo en Inglés | MEDLINE | ID: mdl-35333654

RESUMEN

Neural stem cells, the source of newborn neurons in the adult hippocampus, are intimately involved in learning and memory, mood, and stress response. Despite considerable progress in understanding the biology of neural stem cells and neurogenesis, regulating the neural stem cell population precisely has remained elusive because we have lacked the specific targets to stimulate their proliferation and neurogenesis. The orphan nuclear receptor TLX/NR2E1 governs neural stem and progenitor cell self-renewal and proliferation, but the precise mechanism by which it accomplishes this is not well understood because its endogenous ligand is not known. Here, we identify oleic acid (18:1ω9 monounsaturated fatty acid) as such a ligand. We first show that oleic acid is critical for neural stem cell survival. Next, we demonstrate that it binds to TLX to convert it from a transcriptional repressor to a transcriptional activator of cell-cycle and neurogenesis genes, which in turn increases neural stem cell mitotic activity and drives hippocampal neurogenesis in mice. Interestingly, oleic acid-activated TLX strongly up-regulates cell cycle genes while only modestly up-regulating neurogenic genes. We propose a model in which sufficient quantities of this endogenous ligand must bind to TLX to trigger the switch to proliferation and drive the progeny toward neuronal lineage. Oleic acid thus serves as a metabolic regulator of TLX activity that can be used to selectively target neural stem cells, paving the way for future therapeutic manipulations to counteract pathogenic impairments of neurogenesis.


Asunto(s)
Hipocampo , Neurogénesis , Ácido Oléico , Receptores Citoplasmáticos y Nucleares , Animales , Proliferación Celular , Hipocampo/crecimiento & desarrollo , Hipocampo/metabolismo , Ligandos , Ratones , Neurogénesis/fisiología , Ácido Oléico/metabolismo , Receptores Nucleares Huérfanos , Receptores Citoplasmáticos y Nucleares/metabolismo
12.
Toxicol Ind Health ; 38(1): 41-52, 2022 Jan.
Artículo en Inglés | MEDLINE | ID: mdl-35075925

RESUMEN

Silicon dioxide nanoparticles (SiO2-NPs) are among the most widely used nanoparticles because of their chemical-physical properties. Since most brain maturation occurs in the neonatal period in humans and many mammals, it is important to understand how NPs may affect this process. This study tested the hypothesis that SiO2-NPs from treated dams could affect the hippocampus of neonatal rats during lactation. Twenty-four pregnant rats, after delivery, were divided into three groups of control, SiO2-NPs (25 mg/kg) and SiO2-NPs (100 mg/kg). The rats were treated from 2nd to 21st days post-delivery by gavage and the effects of these NPs were evaluated in the offspring's hippocampi to reveal the effects of maternal exposure to SiO2-NPs during lactation on the offspring's hippocampi. The offspring in the SiO2-NPs groups had higher malondialdehyde concentration and lower antioxidant activity in the hippocampi than the non-treated control group. The mean number of doublecortin positive (DCX+) cells and synaptophysin expression in the hippocampi of the SiO2-NPs groups were significantly lower than the control group, whereas the mean number of dark neurons was significantly higher. Also, animals in the SiO2-NPs groups had a weak cognitive performance in adulthood. In conclusion, maternal exposure to SiO2-NPs via breastfeeding could affect offspring's hippocampal neurogenesis and synaptogenesis, leading to impaired cognitive performance.


Asunto(s)
Hipocampo/efectos de los fármacos , Hipocampo/crecimiento & desarrollo , Exposición Materna/efectos adversos , Nanopartículas/toxicidad , Neurogénesis/efectos de los fármacos , Dióxido de Silicio/toxicidad , Animales , Femenino , Lactancia , Embarazo , Ratas
13.
J Neurosci ; 42(4): 601-618, 2022 01 26.
Artículo en Inglés | MEDLINE | ID: mdl-34844990

RESUMEN

Precise information flow from the hippocampus (HP) to prefrontal cortex (PFC) emerges during early development and accounts for cognitive processing throughout life. On flip side, this flow is selectively impaired in mental illness. In mouse models of psychiatric risk mediated by gene-environment interaction (GE), the prefrontal-hippocampal coupling is disrupted already shortly after birth. While this impairment relates to local miswiring in PFC and HP, it might be also because of abnormal connectivity between the two brain areas. Here, we test this hypothesis by combining in vivo electrophysiology and optogenetics with in-depth tracing of projections and monitor the morphology and function of hippocampal afferents in the PFC of control and GE mice of either sex throughout development. We show that projections from the hippocampal CA1 area preferentially target layer 5/6 pyramidal neurons and interneurons, and to a lesser extent layer 2/3 neurons of prelimbic cortex (PL), a subdivision of PFC. In neonatal GE mice, sparser axonal projections from CA1 pyramidal neurons with decreased release probability reach the PL. Their ability to entrain layer 5/6 oscillatory activity and firing is decreased. These structural and functional deficits of hippocampal-prelimbic connectivity persist, yet are less prominent in prejuvenile GE mice. Thus, besides local dysfunction of HP and PL, weaker connectivity between the two brain areas is present in GE mice throughout development.SIGNIFICANCE STATEMENT Poor cognitive performance in mental disorders comes along with prefrontal-hippocampal dysfunction. Recent data from mice that model the psychiatric risk mediated by gene-environment (GE) interaction identified the origin of deficits during early development, when the local circuits in both areas are compromised. Here, we show that sparser and less efficient connectivity as well as cellular dysfunction are the substrate of the weaker excitatory drive from hippocampus (HP) to prefrontal cortex (PFC) as well as of poorer oscillatory coupling between the two brain areas in these mice. While the structural and functional connectivity deficits persist during the entire development, their magnitude decreases with age. The results add experimental evidence for the developmental miswiring hypothesis of psychiatric disorders.


Asunto(s)
Interacción Gen-Ambiente , Hipocampo/crecimiento & desarrollo , Trastornos Mentales/genética , Trastornos Mentales/fisiopatología , Red Nerviosa/crecimiento & desarrollo , Corteza Prefrontal/crecimiento & desarrollo , Animales , Animales Recién Nacidos , Modelos Animales de Enfermedad , Potenciales Postsinápticos Excitadores/fisiología , Femenino , Hipocampo/química , Masculino , Trastornos Mentales/psicología , Ratones , Ratones Endogámicos C57BL , Ratones Transgénicos , Red Nerviosa/química , Corteza Prefrontal/química , Factores de Riesgo
14.
J Comp Neurol ; 530(1): 6-503, 2022 01.
Artículo en Inglés | MEDLINE | ID: mdl-34525221

RESUMEN

Increasing interest in studies of prenatal human brain development, particularly using new single-cell genomics and anatomical technologies to create cell atlases, creates a strong need for accurate and detailed anatomical reference atlases. In this study, we present two cellular-resolution digital anatomical atlases for prenatal human brain at postconceptional weeks (PCW) 15 and 21. Both atlases were annotated on sequential Nissl-stained sections covering brain-wide structures on the basis of combined analysis of cytoarchitecture, acetylcholinesterase staining, and an extensive marker gene expression dataset. This high information content dataset allowed reliable and accurate demarcation of developing cortical and subcortical structures and their subdivisions. Furthermore, using the anatomical atlases as a guide, spatial expression of 37 and 5 genes from the brains, respectively, at PCW 15 and 21 was annotated, illustrating reliable marker genes for many developing brain structures. Finally, the present study uncovered several novel developmental features, such as the lack of an outer subventricular zone in the hippocampal formation and entorhinal cortex, and the apparent extension of both cortical (excitatory) and subcortical (inhibitory) progenitors into the prenatal olfactory bulb. These comprehensive atlases provide useful tools for visualization, segmentation, targeting, imaging, and interpretation of brain structures of prenatal human brain, and for guiding and interpreting the next generation of cell census and connectome studies.


Asunto(s)
Atlas como Asunto , Encéfalo/crecimiento & desarrollo , Corteza Entorrinal/crecimiento & desarrollo , Hipocampo/crecimiento & desarrollo , Animales , Femenino , Humanos , Embarazo
15.
Neurosci Lett ; 771: 136398, 2022 02 06.
Artículo en Inglés | MEDLINE | ID: mdl-34923042

RESUMEN

Aging has been recognized as a major driving force of the Alzheimer's disease's (AD) progression, however, the relationship between brain aging and AD is still unclear. There is also a lack of studies investigating the influence of AD risk factors on brain aging in cognitively normal people. Here, the "Brain Age Gap Estimation" (BrainAGE) framework was applied to investigate the effects of AD risk factors on individual brain aging. Across a total of 165 cognitively normal elderly subjects, although no significant difference was observed in the BrainAGE scores among the three groups, AD risk dose (i.e., the number of AD risk factors) is tend to associated with an increased BrainAGE scores (high-risk > middle risk > low risk). Female exhibited more advanced brain aging (P = 0.004), and higher education years were associated with preserved brain aging (P < 0.001). APOE-ɛ4 (P = 0.846) and family history (FH) of dementia (P = 0.209) did not increase BrainAGE scores. When comparing 52 aMCI patients with 38 cognitively normal controls from ADNI dataset, aMCI patients showed significantly increased BrainAGE scores. BrainAGE scores were negatively correlated with CSF Aß42 levels in the aMCI group (r = -0.275, P = 0.048). With an accuracy of 68.9%, BrainAGE outperformed APOE-ɛ4 and hippocampus gray matter volume (GMV) in predicting aMCI. In conclusion, AD is independently associated with structural changes in the brain that reflect advanced aging. Potentially, BrainAGE combined with APOE-ɛ4 and hippocampus GMV could be used as a pre-screening tool in early-stage AD.


Asunto(s)
Envejecimiento/fisiología , Enfermedad de Alzheimer/epidemiología , Cognición , Hipocampo/fisiología , Anciano , Enfermedad de Alzheimer/genética , Apolipoproteínas E/genética , China , Escolaridad , Femenino , Hipocampo/diagnóstico por imagen , Hipocampo/crecimiento & desarrollo , Humanos , Imagen por Resonancia Magnética , Masculino , Persona de Mediana Edad , Factores Sexuales
16.
Biomolecules ; 13(1)2022 12 22.
Artículo en Inglés | MEDLINE | ID: mdl-36671403

RESUMEN

Non-coding RNAs (ncRNAs), including miRNAs, lncRNAs, circRNAs, and piRNAs, do not encode proteins. Nonetheless, they have critical roles in a variety of cellular activities-such as development, neurogenesis, degeneration, and the response to injury to the nervous system-via protein translation, RNA splicing, gene activation, silencing, modifications, and editing; thus, they may serve as potential targets for disease treatment. The activity of adult neural stem cells (NSCs) in the subgranular zone of the hippocampal dentate gyrus critically influences hippocampal function, including learning, memory, and emotion. ncRNAs have been shown to be involved in the regulation of hippocampal neurogenesis, including proliferation, differentiation, and migration of NSCs and synapse formation. The interaction among ncRNAs is complex and diverse and has become a major topic within the life science. This review outlines advances in research on the roles of ncRNAs in modulating NSC bioactivity in the hippocampus and discusses their potential applications in the treatment of illnesses affecting the hippocampus.


Asunto(s)
Hipocampo , Células-Madre Neurales , Neurogénesis , ARN Largo no Codificante , Adulto , Humanos , Diferenciación Celular , Proliferación Celular , Hipocampo/crecimiento & desarrollo , Células-Madre Neurales/metabolismo , Neurogénesis/genética , ARN Largo no Codificante/genética , ARN Largo no Codificante/metabolismo
17.
Sci Rep ; 11(1): 23897, 2021 12 13.
Artículo en Inglés | MEDLINE | ID: mdl-34903845

RESUMEN

Early-life exposure to environmental toxins like tobacco can permanently re-program body structure and function. Here, we investigated the long-term effects on mouse adult sleep phenotype exerted by early-life exposure to nicotine or to its principal metabolite, cotinine. Moreover, we investigated whether these effects occurred together with a reprogramming of the activity of the hippocampus, a key structure to coordinate the hormonal stress response. Adult male mice born from dams subjected to nicotine (NIC), cotinine (COT) or vehicle (CTRL) treatment in drinking water were implanted with electrodes for sleep recordings. NIC and COT mice spent significantly more time awake than CTRL mice at the transition between the rest (light) and the activity (dark) period. NIC and COT mice showed hippocampal glucocorticoid receptor (GR) downregulation compared to CTRL mice, and NIC mice also showed hippocampal mineralocorticoid receptor downregulation. Hippocampal GR expression significantly and inversely correlated with the amount of wakefulness at the light-to-dark transition, while no changes in DNA methylation were found. We demonstrated that early-life exposure to nicotine (and cotinine) concomitantly entails long-lasting reprogramming of hippocampal activity and sleep phenotype suggesting that the adult sleep phenotype may be modulated by events that occurred during that critical period of life.


Asunto(s)
Cotinina/toxicidad , Hipocampo/efectos de los fármacos , Nicotina/toxicidad , Receptores de Glucocorticoides/metabolismo , Trastornos del Sueño-Vigilia/metabolismo , Animales , Regulación hacia Abajo , Hipocampo/crecimiento & desarrollo , Hipocampo/metabolismo , Masculino , Ratones , Ratones Endogámicos C57BL , Neurogénesis , Receptores de Glucocorticoides/genética , Trastornos del Sueño-Vigilia/etiología , Contaminación por Humo de Tabaco/efectos adversos
19.
Science ; 374(6568): eabk2055, 2021 Nov 05.
Artículo en Inglés | MEDLINE | ID: mdl-34735259

RESUMEN

During development, neural circuit formation requires the stabilization of active γ-aminobutyric acid­mediated (GABAergic) synapses and the elimination of inactive ones. Here, we demonstrate that, although the activation of postsynaptic GABA type A receptors (GABAARs) and adenosine A2A receptors (A2ARs) stabilizes GABAergic synapses, only A2AR activation is sufficient. Both GABAAR- and A2AR-dependent signaling pathways act synergistically to produce adenosine 3',5'-monophosphate through the recruitment of the calcium­calmodulin­adenylyl cyclase pathway. Protein kinase A, thus activated, phosphorylates gephyrin on serine residue 303, which is required for GABAAR stabilization. Finally, the stabilization of pre- and postsynaptic GABAergic elements involves the interaction between gephyrin and the synaptogenic membrane protein Slitrk3. We propose that A2ARs act as detectors of active GABAergic synapses releasing GABA, adenosine triphosphate, and adenosine to regulate their fate toward stabilization or elimination.


Asunto(s)
Adenosina/metabolismo , Hipocampo/crecimiento & desarrollo , Neuronas/fisiología , Receptor de Adenosina A2A/metabolismo , Transducción de Señal , Sinapsis/fisiología , Ácido gamma-Aminobutírico/metabolismo , Antagonistas del Receptor de Adenosina A2 , Adenosina Trifosfato/metabolismo , Animales , Calcio/metabolismo , Cognición , AMP Cíclico/metabolismo , Proteínas Quinasas Dependientes de AMP Cíclico/metabolismo , Hipocampo/metabolismo , Masculino , Proteínas de la Membrana/metabolismo , Ratones , Proteínas del Tejido Nervioso , Fosforilación , Receptor de Adenosina A2A/genética , Receptores de GABA-A/metabolismo
20.
Nutrients ; 13(11)2021 Oct 28.
Artículo en Inglés | MEDLINE | ID: mdl-34836113

RESUMEN

Iron deficiency (ID) anemia is the foremost micronutrient deficiency worldwide, affecting around 40% of pregnant women and young children. ID during the prenatal and early postnatal periods has a pronounced effect on neurodevelopment, resulting in long-term effects such as cognitive impairment and increased risk for neuropsychiatric disorders. Treatment of ID has been complicated as it does not always resolve the long-lasting neurodevelopmental deficits. In animal models, developmental ID results in abnormal hippocampal structure and function associated with dysregulation of genes involved in neurotransmission and synaptic plasticity. Dysregulation of these genes is a likely proximate cause of the life-long deficits that follow developmental ID. However, a direct functional link between iron and gene dysregulation has yet to be elucidated. Iron-dependent epigenetic modifications are one mechanism by which ID could alter gene expression across the lifespan. The jumonji and AT-rich interaction domain-containing (JARID) protein and the Ten-Eleven Translocation (TET) proteins are two families of iron-dependent epigenetic modifiers that play critical roles during neural development by establishing proper gene regulation during critical periods of brain development. Therefore, JARIDs and TETs can contribute to the iron-mediated epigenetic mechanisms by which early-life ID directly causes stable changes in gene regulation across the life span.


Asunto(s)
Anemia Ferropénica/genética , Epigénesis Genética/fisiología , Hipocampo/metabolismo , Fenómenos Fisiológicos Nutricionales del Lactante/genética , Fenómenos Fisiologicos Nutricionales Maternos/genética , Anemia Ferropénica/complicaciones , Animales , Animales Recién Nacidos , Desarrollo Infantil/fisiología , Epigenómica , Femenino , Hipocampo/crecimiento & desarrollo , Humanos , Lactante , Recién Nacido , Trastornos del Neurodesarrollo/genética , Neurogénesis/fisiología , Plasticidad Neuronal/fisiología , Embarazo , Efectos Tardíos de la Exposición Prenatal/genética , Transmisión Sináptica/fisiología
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