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1.
Transgenic Res ; 24(4): 625-34, 2015 Aug.
Artículo en Inglés | MEDLINE | ID: mdl-25982332

RESUMEN

Lysophosphatidic acid (LPA) is a lipid-derived signaling molecule that plays key roles in diverse biological processes including inflammation and uterine remodeling. Although the function of LPA and its receptors has been extensively studied using knock-out mice, the temporal-spatial expression of LPA receptors is less well-characterized. To gain further insight into the dynamic regulation of LPA receptor 3 (Lpar3) expression in vivo by bioluminescence imaging, we generated and characterized mice transgenic for a putative Lpar3 promoter fragment. A non-coding region of the Lpar3 gene immediately upstream of the start site was subcloned adjacent to the luciferase gene. Promoter activity was determined by in vitro luciferase assays, in vivo bioluminescent imaging or by semi-quantitative real-time PCR. The air-pouch model was used to investigate Lpar3 promoter activity in the context of inflammation. The putative Lpar3 promoter fragment behaved similarly to the endogenous promoter in vitro and in vivo. In male mice, elevated levels of Lpar3-induced luciferase activity were observed in the testis. In female mice, the basal level of luciferase activity in the uterus significantly increased during pseudopregnancy. Moreover, luciferase activity was upregulated by TNF-α in the air-pouch model. We report the identification of a functional Lpar3 promoter fragment and the generation of a transgenic mouse model to investigate the regulation of Lpar3 promoter activity non-invasively in vivo by bioluminescence imaging. This mouse model is a valuable tool for reproductive biology and inflammation research as well as other biological processes in which this receptor is involved.


Asunto(s)
Modelos Animales de Enfermedad , Procesamiento de Imagen Asistido por Computador/métodos , Inflamación/metabolismo , Lisofosfolípidos/metabolismo , Regiones Promotoras Genéticas/genética , Receptores del Ácido Lisofosfatídico/metabolismo , Útero/fisiología , Animales , Células Cultivadas , Femenino , Técnica del Anticuerpo Fluorescente Indirecta , Humanos , Inflamación/patología , Luciferasas/metabolismo , Mediciones Luminiscentes , Masculino , Ratones , Ratones Transgénicos , ARN Mensajero/genética , Reacción en Cadena en Tiempo Real de la Polimerasa , Receptores del Ácido Lisofosfatídico/genética , Reacción en Cadena de la Polimerasa de Transcriptasa Inversa , Regulación hacia Arriba
2.
Mol Metab ; 4(2): 106-17, 2015 Feb.
Artículo en Inglés | MEDLINE | ID: mdl-25685698

RESUMEN

OBJECTIVES: Certain nutrients positively regulate energy homeostasis via intestinal gluconeogenesis (IGN). The objective of this study was to evaluate the impact of a deficient IGN in glucose control independently of nutritional environment. METHODS: We used mice deficient in the intestine glucose-6 phosphatase catalytic unit, the key enzyme of IGN (I-G6pc (-/-) mice). We evaluated a number of parameters involved in energy homeostasis, including insulin sensitivity (hyperinsulinemic euglycaemic clamp), the pancreatic function (insulin secretion in vivo and in isolated islets) and the hypothalamic homeostatic function (leptin sensitivity). RESULTS: Intestinal-G6pc (-/-) mice exhibit slight fasting hyperglycaemia and hyperinsulinemia, glucose intolerance, insulin resistance and a deteriorated pancreatic function, despite normal diet with no change in body weight. These defects evoking type 2 diabetes (T2D) derive from the basal activation of the sympathetic nervous system (SNS). They are corrected by treatment with an inhibitor of α-2 adrenergic receptors. Deregulation in a key target of IGN, the homeostatic hypothalamic function (highlighted here through leptin resistance) is a mechanistic link. Hence the leptin resistance and metabolic disorders in I-G6pc (-/-) mice are corrected by rescuing IGN by portal glucose infusion. Finally, I-G6pc (-/-) mice develop the hyperglycaemia characteristic of T2D more rapidly under high fat/high sucrose diet. CONCLUSIONS: Intestinal gluconeogenesis is a mandatory function for the healthy neural control of glucose homeostasis.

3.
Mol Metab ; 3(5): 531-43, 2014 Aug.
Artículo en Inglés | MEDLINE | ID: mdl-25061558

RESUMEN

Type 2 diabetes is characterized by a deterioration of glucose tolerance, which associates insulin resistance of glucose uptake by peripheral tissues and increased endogenous glucose production. Here we report that the specific suppression of hepatic glucose production positively modulates whole-body glucose and energy metabolism. We used mice deficient in liver glucose-6 phosphatase that is mandatory for endogenous glucose production. When they were fed a high fat/high sucrose diet, they resisted the development of diabetes and obesity due to the activation of peripheral glucose metabolism and thermogenesis. This was linked to the secretion of hepatic hormones like fibroblast growth factor 21 and angiopoietin-like factor 6. Interestingly, the deletion of hepatic glucose-6 phosphatase in previously obese and insulin-resistant mice resulted in the rapid restoration of glucose and body weight controls. Therefore, hepatic glucose production is an essential lever for the control of whole-body energy metabolism during the development of obesity and diabetes.

4.
J Lipid Res ; 52(7): 1307-18, 2011 Jul.
Artículo en Inglés | MEDLINE | ID: mdl-21521824

RESUMEN

Lysophosphatidic acid (LPA) is a bioactive lysophospholipid present in low concentrations in serum and biological fluids but in high concentrations at sites of inflammation. LPA evokes a variety of cellular responses via binding to and activation of its specific G protein-coupled receptors (GPCR), namely LPA(1-6). Even though LPA is a chemoattractant for inflammatory cells in vitro, such a role for LPA in vivo remains largely unexplored. In the present study, we used the murine air pouch model to study LPA-mediated leukocyte recruitment in vivo using selective LPA receptor agonist/antagonist and LPA(3)-deficient mice. We report that 1) LPA injection into the air pouch induced leukocyte recruitment and that both LPA(1) and LPA(3) were involved in this process; 2) LPA stimulated the release of the pro-inflammatory chemokines keratinocyte-derived chemokine (KC) and interferon-inducible protein-10 (IP-10) in the air pouch; 3) tumor necrosis factor-α (TNF-α) injected into the air pouch prior to LPA strongly potentiated LPA-mediated secretion of cytokines/chemokines, including KC, IL-6, and IP-10, which preceded the enhanced leukocyte influx; and 4) blocking CXCR2 significantly reduced leukocyte infiltration. We suggest that LPA, via LPA(1) and LPA(3) receptors, may play a significant role in inducing and/or sustaining the massive infiltration of leukocytes during inflammation.


Asunto(s)
Quimiocinas/metabolismo , Leucocitos/efectos de los fármacos , Leucocitos/inmunología , Receptores de Interleucina-8B/metabolismo , Receptores del Ácido Lisofosfatídico/metabolismo , Factor de Necrosis Tumoral alfa/farmacología , Animales , Relación Dosis-Respuesta a Droga , Femenino , Técnicas de Inactivación de Genes , Inflamación/inmunología , Inflamación/metabolismo , Leucocitos/metabolismo , Ligandos , Lisofosfolípidos/farmacología , Ratones , Organotiofosfatos/farmacología , Ácidos Fosfatidicos/farmacología , Receptores del Ácido Lisofosfatídico/agonistas , Receptores del Ácido Lisofosfatídico/antagonistas & inhibidores , Receptores del Ácido Lisofosfatídico/genética , Factores de Tiempo
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