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1.
Neuropharmacology ; 257: 110029, 2024 Oct 01.
Artículo en Inglés | MEDLINE | ID: mdl-38852838

RESUMEN

Microglia, a vital homeostasis-keeper of the central nervous system, perform critical functions such as synaptic pruning, clearance of cellular debris, and participation in neuroinflammatory processes. Recent research has shown that microglia exhibit strong circadian rhythms that not only actively regulate their own immune activity, but also affect neuronal function. Disruptions of the circadian clock have been linked to a higher risk of developing a variety of diseases. In this article we will provide an overview of how lifestyle factors impact microglial function, with a focus on disruptions caused by irregular sleep-wake patterns, reduced physical activity, and eating at the wrong time-of-day. We will also discuss the potential connection between these lifestyle factors, disrupted circadian rhythms, and the role of microglia in keeping brain health. This article is part of the Special Issue on "Microglia".


Asunto(s)
Ritmo Circadiano , Estilo de Vida , Microglía , Microglía/fisiología , Microglía/metabolismo , Ritmo Circadiano/fisiología , Humanos , Animales , Sueño/fisiología , Ejercicio Físico/fisiología , Encéfalo/fisiología
2.
Acta Neuropathol ; 147(1): 64, 2024 03 31.
Artículo en Inglés | MEDLINE | ID: mdl-38556574

RESUMEN

Prader-Willi Syndrome (PWS) is a rare neurodevelopmental disorder of genetic etiology, characterized by paternal deletion of genes located at chromosome 15 in 70% of cases. Two distinct genetic subtypes of PWS deletions are characterized, where type I (PWS T1) carries four extra haploinsufficient genes compared to type II (PWS T2). PWS T1 individuals display more pronounced physiological and cognitive abnormalities than PWS T2, yet the exact neuropathological mechanisms behind these differences remain unclear. Our study employed postmortem hypothalamic tissues from PWS T1 and T2 individuals, conducting transcriptomic analyses and cell-specific protein profiling in white matter, neurons, and glial cells to unravel the cellular and molecular basis of phenotypic severity in PWS sub-genotypes. In PWS T1, key pathways for cell structure, integrity, and neuronal communication are notably diminished, while glymphatic system activity is heightened compared to PWS T2. The microglial defect in PWS T1 appears to stem from gene haploinsufficiency, as global and myeloid-specific Cyfip1 haploinsufficiency in murine models demonstrated. Our findings emphasize microglial phagolysosome dysfunction and altered neural communication as crucial contributors to the severity of PWS T1's phenotype.


Asunto(s)
Síndrome de Prader-Willi , Humanos , Ratones , Animales , Síndrome de Prader-Willi/genética , Síndrome de Prader-Willi/psicología , Microglía , Proteínas Portadoras/genética , Fenotipo , Fagosomas , Proteínas Adaptadoras Transductoras de Señales/genética
3.
Cell Metab ; 36(2): 438-453.e6, 2024 02 06.
Artículo en Inglés | MEDLINE | ID: mdl-38325338

RESUMEN

The hypothalamus plays a crucial role in the progression of obesity and diabetes; however, its structural complexity and cellular heterogeneity impede targeted treatments. Here, we profiled the single-cell and spatial transcriptome of the hypothalamus in obese and sporadic type 2 diabetic macaques, revealing primate-specific distributions of clusters and genes as well as spatial region, cell-type-, and gene-feature-specific changes. The infundibular (INF) and paraventricular nuclei (PVN) are most susceptible to metabolic disruption, with the PVN being more sensitive to diabetes. In the INF, obesity results in reduced synaptic plasticity and energy sensing capability, whereas diabetes involves molecular reprogramming associated with impaired tanycytic barriers, activated microglia, and neuronal inflammatory response. In the PVN, cellular metabolism and neural activity are suppressed in diabetic macaques. Spatial transcriptomic data reveal microglia's preference for the parenchyma over the third ventricle in diabetes. Our findings provide a comprehensive view of molecular changes associated with obesity and diabetes.


Asunto(s)
Diabetes Mellitus , Núcleo Hipotalámico Paraventricular , Animales , Núcleo Hipotalámico Paraventricular/metabolismo , Transcriptoma/genética , Hipotálamo/metabolismo , Obesidad/metabolismo , Diabetes Mellitus/metabolismo , Perfilación de la Expresión Génica
4.
Acta Neuropathol Commun ; 11(1): 107, 2023 07 03.
Artículo en Inglés | MEDLINE | ID: mdl-37400893

RESUMEN

Evidence from animal experiments has shown that the hypothalamic paraventricular nucleus (PVN) plays a key role in regulating body weight and blood glucose levels. However, it is unclear whether neuron populations in the human PVN are involved in the development of type 2 diabetes mellitus (T2DM). To address this, we investigated the neuronal and glial populations in the PVN of 26 T2DM patients and 20 matched controls. Our findings revealed a significant reduction in oxytocin (Oxt) neuron density in the PVN of T2DM patients compared to controls, while other neuronal populations remained unchanged. This suggests that Oxt neurons may play a specific role in the pathophysiology of T2DM. Interestingly, the reduction in Oxt neurons was accompanied by a decreased melanocortinergic input in to the PVN as reflected by a reduction in alpha-MSH immunoreactivity. We also analysed two glial cell populations, as they are important for maintaining a healthy neural microenvironment. We found that microglial density, phagocytic capacity, and their proximity to neurons were not altered in T2DM patients, indicating that the loss of Oxt neurons is independent of changes in microglial immunity. However, we did observe a reduction in the number of astrocytes, which are crucial for providing trophic support to local neurons. Moreover, a specific subpopulation of astrocytes characterized by aquaporin 4 expression was overrepresented in T2DM patients. Since this subset of astrocytes is linked to the glymphatic system, their overrepresentation might point to alterations in the hypothalamic waste clearance system in T2DM. Our study shows selective loss of Oxt neurons in the PVN of T2DM individuals in association with astrocytic reduction and gliovascular remodelling. Therefore, hypothalamic Oxt neurons may represent a potential target for T2DM treatment modalities.


Asunto(s)
Diabetes Mellitus Tipo 2 , Oxitocina , Humanos , Peso Corporal , Diabetes Mellitus Tipo 2/metabolismo , Neuronas/metabolismo , Oxitocina/metabolismo , Núcleo Hipotalámico Paraventricular/metabolismo
5.
Sci Signal ; 15(733): eabj8204, 2022 05 10.
Artículo en Inglés | MEDLINE | ID: mdl-35536884

RESUMEN

Variants in the gene encoding ankyrin repeat and SOCS box-containing 4 (ASB4) are linked to human obesity. Here, we characterized the pathways underlying the metabolic functions of ASB4. Hypothalamic Asb4 expression was suppressed by fasting in wild-type mice but not in mice deficient in AgRP, which encodes Agouti-related protein (AgRP), an appetite-stimulating hormone, suggesting that ASB4 is a negative target of AgRP. Many ASB4 neurons in the brain were adjacent to AgRP terminals, and feeding induced by AgRP neuronal activation was disrupted in Asb4-deficient mice. Acute knockdown of Asb4 in the brain caused marked hyperphagia due to increased meal size, and Asb4 deficiency led to increased meal size and food intake at the onset of refeeding, when very large meals were consumed. Asb4-deficient mice were resistant to the meal-terminating effects of exogenously administered calcitonin and showed decreased neuronal expression of Calcr, which encodes the calcitonin receptor. Pro-opiomelanocortin (POMC) neurons in the arcuate nucleus in mice are involved in glucose homeostasis, and Asb4 deficiency specifically in POMC neurons resulted in glucose intolerance that was independent of obesity. Furthermore, individuals with type 2 diabetes showed reduced ASB4 abundance in the infundibular nuclei, the human equivalent of the arcuate nucleus. Together, our results indicate that ASB4 acts in the brain to improve glucose homeostasis and to induce satiety after substantial meals, particularly those after food deprivation.


Asunto(s)
Diabetes Mellitus Tipo 2 , Neuropéptidos , Proteína Relacionada con Agouti/genética , Proteína Relacionada con Agouti/metabolismo , Proteína Relacionada con Agouti/farmacología , Animales , Calcitonina/metabolismo , Calcitonina/farmacología , Diabetes Mellitus Tipo 2/metabolismo , Glucosa/metabolismo , Homeostasis , Hipotálamo/metabolismo , Ratones , Neuronas/metabolismo , Neuropéptidos/metabolismo , Obesidad/genética , Obesidad/metabolismo , Proopiomelanocortina/genética , Proopiomelanocortina/metabolismo , Proopiomelanocortina/farmacología
6.
Int J Mol Sci ; 23(6)2022 Mar 08.
Artículo en Inglés | MEDLINE | ID: mdl-35328354

RESUMEN

Obesity and type 2 diabetes mellitus (T2DM) are highly prevalent disorders, associated with insulin resistance and chronic inflammation. The brain is key for energy homeostasis and contains many insulin receptors. Microglia, the resident brain immune cells, are known to express insulin receptors (InsR) and to be activated by a hypercaloric environment. The aim of this study was to evaluate whether microglial insulin signaling is involved in the control of systemic energy homeostasis and whether this function is sex-dependent. We generated a microglia-specific knockout of the InsR gene in male and female mice and exposed them to control or obesogenic dietary conditions. Following 10 weeks of diet exposure, we evaluated insulin tolerance, energy metabolism, microglial morphology and phagocytic function, and neuronal populations. Lack of microglial InsR resulted in increased plasma insulin levels and insulin resistance in obese female mice. In the brain, loss of microglial InsR led to a decrease in microglial primary projections in both male and female mice, irrespective of the diet. In addition, in obese male mice lacking microglial InsR the number of proopiomelanocortin neurons was decreased, compared to control diet, while no differences were observed in female mice. Our results demonstrate a sex-dependent effect of microglial InsR-signaling in physiology and obesity, and stress the importance of a heterogeneous approach in the study of diseases such as obesity and T2DM.


Asunto(s)
Diabetes Mellitus Tipo 2 , Resistencia a la Insulina , Animales , Diabetes Mellitus Tipo 2/genética , Diabetes Mellitus Tipo 2/metabolismo , Femenino , Insulina/metabolismo , Resistencia a la Insulina/genética , Masculino , Ratones , Ratones Endogámicos C57BL , Ratones Obesos , Microglía/metabolismo , Obesidad/genética , Obesidad/metabolismo , Receptor de Insulina/genética , Receptor de Insulina/metabolismo
7.
ACS Appl Mater Interfaces ; 14(4): 5066-5079, 2022 Feb 02.
Artículo en Inglés | MEDLINE | ID: mdl-35041392

RESUMEN

Microglia are the major innate immune cells in the brain and are essential for maintaining homeostasis in a neuronal microenvironment. Currently, a genetic tool to modify microglial gene expression in specific brain regions is not available. In this report, we introduce a tailor-designed method that uses lipid and polymer hybridized nanoparticles (LPNPs) for the local delivery of small interfering RNAs (siRNAs), allowing the silencing of specific microglial genes in the hypothalamus. Our physical characterization proved that this LPNP-siRNA was uniform and stable. We demonstrated that, due to their natural phagocytic behavior, microglial cells are the dominant cell type taking up these LPNPs in the hypothalamus of rats. We then tested the silencing efficiency of LPNPs carrying a cluster of differentiation molecule 11b (CD11b) or Toll-like receptor 4 (TLR4) siRNA using different in vivo and in vitro approaches. In cultured microglial cells treated with LPNP-CD11b siRNA or LPNP-TLR4 siRNA, we found a silencing efficiency at protein expression levels of 65 or 77%, respectively. In line with this finding, immunohistochemistry and western blotting results from in vivo experiments showed that LPNP-CD11b siRNA significantly inhibited microglial CD11b protein expression in the hypothalamus. Furthermore, following lipopolysaccharide (LPS) stimulation of cultured microglial cells, gene expression of the TLR4 downstream signaling component myeloid differentiation factor 88 and its associated cytokines was significantly inhibited in LPNP-TLR4 siRNA-treated microglial cells compared with cells treated with LPNP-scrambled siRNA. Finally, after LPNP-TLR4 siRNA injection into the rat hypothalamus, we observed a significant reduction in microglial activation in response to LPS compared with the control rats injected with LPNP-scrambled siRNA. Our results indicate that LPNP-siRNA is a promising tool to manipulate microglial activity locally in the brain and may serve as a prophylactic approach to prevent microglial dysfunction-associated diseases.


Asunto(s)
Portadores de Fármacos/química , Expresión Génica/efectos de los fármacos , Hipotálamo/efectos de los fármacos , Microglía/efectos de los fármacos , Nanopartículas/química , ARN Interferente Pequeño/farmacología , Animales , Antígeno CD11b/antagonistas & inhibidores , Antígeno CD11b/genética , Lípidos/química , Masculino , Poliésteres/química , Polietilenglicoles/química , Ratas Wistar , Receptor Toll-Like 4/antagonistas & inhibidores , Receptor Toll-Like 4/genética
8.
FASEB J ; 36(2): e22133, 2022 02.
Artículo en Inglés | MEDLINE | ID: mdl-35032416

RESUMEN

Shift-workers show an increased incidence of type 2 diabetes mellitus (T2DM). A possible mechanism is the disruption of the circadian timing of glucose homeostasis. Skeletal muscle mitochondrial function is modulated by the molecular clock. We used time-restricted feeding (TRF) during the inactive phase to investigate how mistimed feeding affects muscle mitochondrial metabolism. Rats on an ad libitum (AL) diet were compared to those that could eat only during the light (inactive) or dark (active) phase. Mitochondrial respiration, metabolic gene expressions, and metabolite concentrations were determined in the soleus muscle. Rats on AL feeding or dark-fed TRF showed a clear daily rhythm in muscle mitochondrial respiration. This rhythm in mitochondrial oxidative phosphorylation capacity was abolished in light-fed TRF animals and overall 24h respiration was lower. The expression of several genes involved in mitochondrial biogenesis and the fission/fusion machinery was altered in light-fed animals. Metabolomics analysis indicated that light-fed animals had lost rhythmic levels of α-ketoglutarate and citric acid. Contrastingly, lipidomics showed that light-fed animals abundantly gained rhythmicity in levels of triglycerides. Furthermore, while the RER shifted entirely with the food intake in the light-fed animals, many measured metabolic parameters (e.g., activity and mitochondrial respiration) did not strictly align with the shifted timing of food intake, resulting in a mismatch between expected metabolic supply/demand (as dictated by the circadian timing system and light/dark-cycle) and the actual metabolic supply/demand (as dictated by the timing of food intake). These data suggest that shift-work impairs mitochondrial metabolism and causes metabolic inflexibility, which can predispose to T2DM.


Asunto(s)
Respiración de la Célula/fisiología , Relojes Circadianos/fisiología , Ritmo Circadiano/fisiología , Ayuno/fisiología , Mitocondrias/fisiología , Músculo Esquelético/fisiología , Animales , Diabetes Mellitus Tipo 2/fisiopatología , Dieta/métodos , Ingestión de Alimentos/fisiología , Metabolismo Energético/fisiología , Conducta Alimentaria/fisiología , Expresión Génica/fisiología , Masculino , Biogénesis de Organelos , Fosforilación Oxidativa , Fotoperiodo , Ratas , Ratas Wistar
9.
Protein Cell ; 13(6): 394-421, 2022 06.
Artículo en Inglés | MEDLINE | ID: mdl-33826123

RESUMEN

Obesity and aging are two important epidemic factors for metabolic syndrome and many other health issues, which contribute to devastating diseases such as cardiovascular diseases, stroke and cancers. The brain plays a central role in controlling metabolic physiology in that it integrates information from other metabolic organs, sends regulatory projections and orchestrates the whole-body function. Emerging studies suggest that brain dysfunction in sensing various internal cues or processing external cues may have profound effects on metabolic and other physiological functions. This review highlights brain dysfunction linked to genetic mutations, sex, brain inflammation, microbiota, stress as causes for whole-body pathophysiology, arguing brain dysfunction as a root cause for the epidemic of aging and obesity-related disorders. We also speculate key issues that need to be addressed on how to reveal relevant brain dysfunction that underlines the development of these disorders and diseases in order to develop new treatment strategies against these health problems.


Asunto(s)
Envejecimiento , Hipotálamo , Encéfalo/metabolismo , Metabolismo Energético , Humanos , Hipotálamo/metabolismo , Obesidad/metabolismo
10.
Handb Clin Neurol ; 180: 315-325, 2021.
Artículo en Inglés | MEDLINE | ID: mdl-34225937

RESUMEN

Dysfunctional regulation of energy homeostasis results in increased bodyweight and obesity, eventually leading to type 2 diabetes mellitus. The infundibular nucleus (IFN) of the hypothalamus is the main regulator of energy homeostasis. The peptidergic neurons and glia cells of the IFN receive metabolic cues concerning energy state of the body from the circulation. The IFN can monitor hormones like insulin and leptin and nutrients like glucose and fatty acids. All these metabolic cues are integrated into an output signal regulating energy homeostasis through the release of neuropeptides. These neuropeptides are released in several inter- and extrahypothalamic brain regions involved in regulation of energy homeostasis. This review will give an overview of the peripheral signals involved in the regulation of energy homeostasis, the peptidergic neurons and glial cells of the IFN, and will highlight the main intra-hypothalamic projection sites of the IFN.


Asunto(s)
Diabetes Mellitus Tipo 2 , Metabolismo Energético , Humanos , Hiperfagia , Hipotálamo , Neuroglía , Neuronas , Obesidad
11.
J Neuroendocrinol ; 33(7): e12994, 2021 07.
Artículo en Inglés | MEDLINE | ID: mdl-34156126

RESUMEN

Prader-Willi Syndrome (PWS) is a rare and incurable congenital neurodevelopmental disorder, resulting from the absence of expression of a group of genes on the paternally acquired chromosome 15q11-q13. Phenotypical characteristics of PWS include infantile hypotonia, short stature, incomplete pubertal development, hyperphagia and morbid obesity. Hypothalamic dysfunction in controlling body weight and food intake is a hallmark of PWS. Neuroimaging studies have demonstrated that PWS subjects have abnormal neurocircuitry engaged in the hedonic and physiological control of feeding behavior. This is translated into diminished production of hypothalamic effector peptides which are responsible for the coordination of energy homeostasis and satiety. So far, studies with animal models for PWS and with human post-mortem hypothalamic specimens demonstrated changes particularly in the infundibular and the paraventricular nuclei of the hypothalamus, both in orexigenic and anorexigenic neural populations. Moreover, many PWS patients have a severe endocrine dysfunction, e.g. central hypogonadism and/or growth hormone deficiency, which may contribute to the development of increased fat mass, especially if left untreated. Additionally, the role of non-neuronal cells, such as astrocytes and microglia in the hypothalamic dysregulation in PWS is yet to be determined. Notably, microglial activation is persistently present in non-genetic obesity. To what extent microglia, and other glial cells, are affected in PWS is poorly understood. The elucidation of the hypothalamic dysfunction in PWS could prove to be a key feature of rational therapeutic management in this syndrome. This review aims to examine the evidence for hypothalamic dysfunction, both at the neuropeptidergic and circuitry levels, and its correlation with the pathophysiology of PWS.


Asunto(s)
Hormonas Hipotalámicas/metabolismo , Red Nerviosa/fisiopatología , Síndrome de Prader-Willi , Animales , Humanos , Hiperfagia/etiología , Hiperfagia/metabolismo , Hiperfagia/psicología , Hipogonadismo/etiología , Hipogonadismo/metabolismo , Hipogonadismo/psicología , Hipotálamo/metabolismo , Hipotálamo/patología , Hipotálamo/fisiopatología , Red Nerviosa/metabolismo , Red Nerviosa/patología , Neuropéptidos/metabolismo , Obesidad/etiología , Obesidad/metabolismo , Obesidad/psicología , Síndrome de Prader-Willi/complicaciones , Síndrome de Prader-Willi/metabolismo , Síndrome de Prader-Willi/patología , Síndrome de Prader-Willi/psicología
12.
Mol Psychiatry ; 26(11): 6336-6349, 2021 11.
Artículo en Inglés | MEDLINE | ID: mdl-34050326

RESUMEN

Microglia play a critical role in maintaining neural function. While microglial activity follows a circadian rhythm, it is not clear how this intrinsic clock relates to their function, especially in stimulated conditions such as in the control of systemic energy homeostasis or memory formation. In this study, we found that microglia-specific knock-down of the core clock gene, Bmal1, resulted in increased microglial phagocytosis in mice subjected to high-fat diet (HFD)-induced metabolic stress and likewise among mice engaged in critical cognitive processes. Enhanced microglial phagocytosis was associated with significant retention of pro-opiomelanocortin (POMC)-immunoreactivity in the mediobasal hypothalamus in mice on a HFD as well as the formation of mature spines in the hippocampus during the learning process. This response ultimately protected mice from HFD-induced obesity and resulted in improved performance on memory tests. We conclude that loss of the rigorous control implemented by the intrinsic clock machinery increases the extent to which microglial phagocytosis can be triggered by neighboring neurons under metabolic stress or during memory formation. Taken together, microglial responses associated with loss of Bmal1 serve to ensure a healthier microenvironment for neighboring neurons in the setting of an adaptive response. Thus, microglial Bmal1 may be an important therapeutic target for metabolic and cognitive disorders with relevance to psychiatric disease.


Asunto(s)
Factores de Transcripción ARNTL , Dieta Alta en Grasa , Memoria , Microglía , Obesidad , Factores de Transcripción ARNTL/genética , Factores de Transcripción ARNTL/metabolismo , Animales , Ritmo Circadiano/fisiología , Dieta Alta en Grasa/efectos adversos , Técnicas de Silenciamiento del Gen , Hipocampo/metabolismo , Hipocampo/fisiología , Aprendizaje/fisiología , Memoria/fisiología , Ratones , Ratones Endogámicos C57BL , Microglía/metabolismo , Obesidad/etiología , Obesidad/genética , Obesidad/metabolismo , Obesidad/prevención & control , Fagocitosis/fisiología , Proopiomelanocortina/metabolismo , Estrés Fisiológico/fisiología
13.
Int J Mol Sci ; 22(6)2021 Mar 19.
Artículo en Inglés | MEDLINE | ID: mdl-33808700

RESUMEN

The prevalence of obesity has increased rapidly in recent years and has put a huge burden on healthcare worldwide. Obesity is associated with an increased risk for many comorbidities, such as cardiovascular diseases, type 2 diabetes and hypertension. The hypothalamus is a key brain region involved in the regulation of food intake and energy expenditure. Research on experimental animals has shown neuronal loss, as well as microglial activation in the hypothalamus, due to dietary-induced obesity. Microglia, the resident immune cells in the brain, are responsible for maintaining the brain homeostasis and, thus, providing an optimal environment for neuronal function. Interestingly, in obesity, microglial cells not only get activated in the hypothalamus but in other brain regions as well. Obesity is also highly associated with changes in hippocampal function, which could ultimately result in cognitive decline and dementia. Moreover, changes have also been reported in the striatum and cortex. Microglial heterogeneity is still poorly understood, not only in the context of brain region but, also, age and sex. This review will provide an overview of the currently available data on the phenotypic differences of microglial innate immunity in obesity, dependent on brain region, sex and age.


Asunto(s)
Variación Biológica Poblacional , Mapeo Encefálico , Encéfalo/diagnóstico por imagen , Encéfalo/metabolismo , Microglía/metabolismo , Obesidad/diagnóstico por imagen , Factores de Edad , Animales , Corteza Cerebral/diagnóstico por imagen , Corteza Cerebral/metabolismo , Cuerpo Estriado/diagnóstico por imagen , Cuerpo Estriado/metabolismo , Hipocampo/diagnóstico por imagen , Hipocampo/metabolismo , Humanos , Hipotálamo/diagnóstico por imagen , Hipotálamo/metabolismo , Factores Sexuales
14.
Neuroendocrinology ; 111(3): 263-272, 2021.
Artículo en Inglés | MEDLINE | ID: mdl-32422642

RESUMEN

BACKGROUND: In peripheral tissues, the lipid droplet (LD) organelle links lipid metabolism, inflammation, and insulin resistance. Little is known about the brain LDs. OBJECTIVES: We hypothesized that hypothalamic LDs would be altered in metabolic diseases. METHODS: We used immunofluorescence labeling of the specific LD protein, PLIN2, as the approach to visualize and quantify LDs. RESULTS: LDs were abundant in the hypothalamic third ventricle wall layer with similar heterogeneous distributions between control mice and humans. The LD content was enhanced by high-fat diet (HFD) in both wild-type and in low-density lipoprotein receptor deficient (Ldlr -/- HFD) mice. Strikingly, we observed a lower LD amount in type 2 diabetes mellitus (T2DM) patients when compared with non-T2DM patients. CONCLUSIONS: LDs accumulate in the normal hypothalamus, with similar distributions in human and mouse. Moreover, metabolic diseases differently modify LD content in mouse and human. Our results suggest that hypothalamic LD accumulation is an important target to the study of metabolism.


Asunto(s)
Diabetes Mellitus Tipo 2/metabolismo , Hipotálamo/metabolismo , Resistencia a la Insulina/fisiología , Gotas Lipídicas/metabolismo , Perilipina-2/metabolismo , Anciano , Anciano de 80 o más Años , Animales , Autopsia , Dieta Alta en Grasa , Modelos Animales de Enfermedad , Femenino , Humanos , Masculino , Ratones , Ratones Endogámicos C57BL , Ratones Noqueados , Receptores de LDL/deficiencia , Bancos de Tejidos
15.
Front Immunol ; 11: 586399, 2020.
Artículo en Inglés | MEDLINE | ID: mdl-33363534

RESUMEN

Microglia are brain immune cells responsible for immune surveillance. Microglial activation is, however, closely associated with neuroinflammation, neurodegeneration, and obesity. Therefore, it is critical that microglial immune response appropriately adapts to different stressors. The circadian clock controls the cellular process that involves the regulation of inflammation and energy hemostasis. Here, we observed a significant circadian variation in the expression of markers related to inflammation, nutrient utilization, and antioxidation in microglial cells isolated from mice. Furthermore, we found that the core clock gene-Brain and Muscle Arnt-like 1 (Bmal1) plays a role in regulating microglial immune function in mice and microglial BV-2 cells by using quantitative RT-PCR. Bmal1 deficiency decreased gene expression of pro-inflammatory cytokines, increased gene expression of antioxidative and anti-inflammatory factors in microglia. These changes were also observed in Bmal1 knock-down microglial BV-2 cells under lipopolysaccharide (LPS) and palmitic acid stimulations. Moreover, Bmal1 deficiency affected the expression of metabolic associated genes and metabolic processes, and increased phagocytic capacity in microglia. These findings suggest that Bmal1 is a key regulator in microglial immune response and cellular metabolism.


Asunto(s)
Factores de Transcripción ARNTL/inmunología , Relojes Circadianos/fisiología , Microglía/inmunología , Microglía/metabolismo , Factores de Transcripción ARNTL/deficiencia , Animales , Encéfalo/inmunología , Encéfalo/metabolismo , Inflamación/inmunología , Inflamación/metabolismo , Ratones , Ratones Noqueados
16.
Front Immunol ; 11: 550145, 2020.
Artículo en Inglés | MEDLINE | ID: mdl-33101272

RESUMEN

Microglia are the immune cells of the brain. Hyperactivation of microglia contributes to the pathology of metabolic and neuroinflammatory diseases. Evidence has emerged that links the circadian clock, cellular metabolism, and immune activity in microglia. Rev-erb nuclear receptors are known for their regulatory role in both the molecular clock and cell metabolism, and have recently been found to play an important role in neuroinflammation. The Rev-erbα agonist SR9011 disrupts circadian rhythm by altering intracellular clock machinery. However, the exact role of Rev-erbα in microglial immunometabolism remains to be elucidated. In the current study, we explored whether SR9011 also had such a detrimental impact on microglial immunometabolic functions. Primary microglia were isolated from 1-3 days old Sprague-Dawley rat pups. The expression of clock genes, cytokines and metabolic genes was evaluated using RT-PCR and rhythmic expression was analyzed. Phagocytic activity was determined by the uptake capacity of fluorescent microspheres. Mitochondria function was evaluated by measuring oxygen consumption rate and extracellular acidification rate. We found that key cytokines and metabolic genes are rhythmically expressed in microglia. SR9011 disturbed rhythmic expression of clock genes in microglia. Pro-inflammatory cytokine expression was attenuated by SR9011 during an immune challenge by TNFα, while expression of the anti-inflammatory cytokine Il10 was stimulated. Moreover, SR9011 decreased phagocytic activity, mitochondrial respiration, ATP production, and metabolic gene expression. Our study highlights the link between the intrinsic clock and immunometabolism of microglia. We show that Rev-erbα is implicated in both metabolic homeostasis and the inflammatory responses in microglia, which has important implications for the treatment of metabolic and neuroinflammatory diseases.


Asunto(s)
Metabolismo Energético/efectos de los fármacos , Inmunidad/efectos de los fármacos , Microglía/efectos de los fármacos , Microglía/inmunología , Microglía/metabolismo , Miembro 1 del Grupo D de la Subfamilia 1 de Receptores Nucleares/antagonistas & inhibidores , Pirrolidinas/farmacología , Tiofenos/farmacología , Animales , Proteínas CLOCK/genética , Citocinas/genética , Regulación de la Expresión Génica/efectos de los fármacos , Inmunidad Innata/efectos de los fármacos , Masculino , Mitocondrias/efectos de los fármacos , Mitocondrias/genética , Mitocondrias/metabolismo , Fagocitosis/efectos de los fármacos , Fagocitosis/inmunología , Ratas
17.
JCI Insight ; 5(16)2020 08 20.
Artículo en Inglés | MEDLINE | ID: mdl-32814716

RESUMEN

Animal studies indicate that hypothalamic dysfunction plays a major role in type 2 diabetes mellitus (T2DM) development, and that insulin resistance and inflammation are important mechanisms involved in this disorder. However, it remains unclear how T2DM and antidiabetic treatments affect the human hypothalamus. Here, we characterized the proopiomelanocortin (POMC) immunoreactive (-ir) neurons, the neuropeptide-Y-ir (NPY-ir) neurons, the ionized calcium-binding adapter molecule 1-ir (iba1-ir) microglia, and the transmembrane protein 119-ir (TMEM119-ir) microglia in the infundibular nucleus (IFN) of human postmortem hypothalamus of 32 T2DM subjects with different antidiabetic treatments and 17 matched nondiabetic control subjects. Compared with matched control subjects, T2DM subjects showed a decrease in the number of POMC-ir neurons, but no changes in NPY-ir neurons or microglia. Interestingly, T2DM subjects treated with the antidiabetic drug metformin had fewer NPY-ir neurons and microglia than T2DM subjects not treated with metformin. We found that the number of microglia correlated with the number of NPY-ir neurons, but only in T2DM subjects. These results indicate that different changes in POMC and NPY neurons and microglial cells in the IFN accompany T2DM. In addition, T2DM treatment modality is associated with highly selective changes in hypothalamic neurons and microglial cells.


Asunto(s)
Diabetes Mellitus Tipo 2/tratamiento farmacológico , Hipoglucemiantes/farmacología , Microglía/efectos de los fármacos , Hipófisis/efectos de los fármacos , Anciano , Anciano de 80 o más Años , Estudios de Casos y Controles , Diabetes Mellitus Tipo 2/metabolismo , Diabetes Mellitus Tipo 2/patología , Femenino , Humanos , Hipoglucemiantes/uso terapéutico , Insulina/farmacología , Insulina/uso terapéutico , Masculino , Proteínas de la Membrana/metabolismo , Metformina/farmacología , Metformina/uso terapéutico , Microglía/metabolismo , Microglía/patología , Neuronas/efectos de los fármacos , Neuronas/metabolismo , Neuropéptido Y/metabolismo , Hipófisis/metabolismo , Proopiomelanocortina/metabolismo
18.
J Clin Invest ; 130(11): 6093-6108, 2020 11 02.
Artículo en Inglés | MEDLINE | ID: mdl-32780722

RESUMEN

Recent genome-wide association studies (GWAS) identified DUSP8, encoding a dual-specificity phosphatase targeting mitogen-activated protein kinases, as a type 2 diabetes (T2D) risk gene. Here, we reveal that Dusp8 is a gatekeeper in the hypothalamic control of glucose homeostasis in mice and humans. Male, but not female, Dusp8 loss-of-function mice, either with global or corticotropin-releasing hormone neuron-specific deletion, had impaired systemic glucose tolerance and insulin sensitivity when exposed to high-fat diet (HFD). Mechanistically, we found impaired hypothalamic-pituitary-adrenal axis feedback, blunted sympathetic responsiveness, and chronically elevated corticosterone levels driven by hypothalamic hyperactivation of Jnk signaling. Accordingly, global Jnk1 ablation, AAV-mediated Dusp8 overexpression in the mediobasal hypothalamus, or metyrapone-induced chemical adrenalectomy rescued the impaired glucose homeostasis of obese male Dusp8-KO mice, respectively. The sex-specific role of murine Dusp8 in governing hypothalamic Jnk signaling, insulin sensitivity, and systemic glucose tolerance was consistent with functional MRI data in human volunteers that revealed an association of the DUSP8 rs2334499 risk variant with hypothalamic insulin resistance in men. Further, expression of DUSP8 was increased in the infundibular nucleus of T2D humans. In summary, our findings suggest the GWAS-identified gene Dusp8 as a novel hypothalamic factor that plays a functional role in the etiology of T2D.


Asunto(s)
Diabetes Mellitus Experimental/enzimología , Diabetes Mellitus Tipo 2/enzimología , Fosfatasas de Especificidad Dual/metabolismo , Hipotálamo/enzimología , Resistencia a la Insulina , MAP Quinasa Quinasa 4/metabolismo , Transducción de Señal , Animales , Diabetes Mellitus Experimental/genética , Diabetes Mellitus Tipo 2/genética , Fosfatasas de Especificidad Dual/genética , MAP Quinasa Quinasa 4/genética , Ratones , Ratones Noqueados
19.
Diabetes ; 68(12): 2223-2234, 2019 12.
Artículo en Inglés | MEDLINE | ID: mdl-31578192

RESUMEN

Obesity is taking on worldwide epidemic proportions, yet effective pharmacological agents with long-term efficacy remain unavailable. Previously, we designed the iminosugar N-adamantine-methyloxypentyl-deoxynojirimycin (AMP-DNM), which potently improves glucose homeostasis by lowering excessive glycosphingolipids. Here we show that AMP-DNM promotes satiety and activates brown adipose tissue (BAT) in obese rodents. Moreover, we demonstrate that the mechanism mediating these favorable actions depends on oral, but not central, administration of AMP-DNM, which ultimately stimulates systemic glucagon-like peptide 1 (GLP1) secretion. We evidence an essential role of brain GLP1 receptors (GLP1r), as AMP-DNM fails to promote satiety and activate BAT in mice lacking the brain GLP1r as well as in mice treated intracerebroventricularly with GLP1r antagonist exendin-9. In conclusion, AMP-DNM markedly ameliorates metabolic abnormalities in obese rodents by restoring satiety and activating BAT through central GLP1r, while improving glucose homeostasis by mechanisms independent of central GLP1r.


Asunto(s)
1-Desoxinojirimicina/análogos & derivados , Adamantano/análogos & derivados , Tejido Adiposo Pardo/efectos de los fármacos , Péptido 1 Similar al Glucagón/fisiología , Saciedad/efectos de los fármacos , 1-Desoxinojirimicina/farmacología , Adamantano/farmacología , Animales , Encéfalo/efectos de los fármacos , Encéfalo/fisiología , Glucosa/metabolismo , Masculino , Ratones , Ratones Endogámicos C57BL , Obesidad/tratamiento farmacológico , Obesidad/metabolismo , Ratas , Ratas Wistar , Transducción de Señal/efectos de los fármacos
20.
Artículo en Inglés | MEDLINE | ID: mdl-31496992

RESUMEN

Epidemiological studies indicate that shift-workers have an increased risk of type 2 diabetes mellitus (T2DM). Glucose tolerance and insulin sensitivity both are dependent on the circadian timing system (i.e., the time-of-day) and fasting duration, in rodents as well as humans. Therefore, question is whether manipulation of the circadian timing system, for example by changing the timing of feeding and fasting, is a potential preventive treatment for T2DM. Time-restricted feeding (TRF) is well-known to have profound effects on various metabolic measures, including glucose metabolism. However, experiments that directly measure the effects of TRF on glucose tolerance and/or insulin sensitivity at different time points throughout the 24 h cycle are lacking. Here we show, in rats, that TRF in line with the circadian timing system (i.e., feeding during the active phase) improves glucose tolerance during intravenous glucose tolerance tests (ivGTT) in the active phase, as lower insulin levels were observed with similar levels of glucose clearance. However, this was not the case during the inactive phase in which more insulin was released but only a slightly faster glucose clearance was observed. Contrasting, TRF out of sync with the circadian timing system (i.e., feeding during the inactive phase) worsened glucose tolerance, although only marginally, likely because of adaptation to the 4 week TRF regimen. Our results show that TRF can improve glucose metabolism, but strict adherence to the time-restricted feeding period is necessary, as outside the regular eating hours glucose tolerance is worsened.

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