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1.
Endocrinology ; 155(5): 1887-98, 2014 May.
Article in English | MEDLINE | ID: mdl-24601879

ABSTRACT

Traumatic brain injury is a leading cause of hypopituitarism, which compromises patients' recovery, quality of life, and life span. To date, there are no means other than standardized animal studies to provide insights into the mechanisms of posttraumatic hypopituitarism. We have found that GH levels were impaired after inducing a controlled cortical impact (CCI) in mice. Furthermore, GHRH stimulation enhanced GH to lower level in injured than in control or sham mice. Because many characteristics were unchanged in the pituitary glands of CCI mice, we looked for changes at the hypothalamic level. Hypertrophied astrocytes were seen both within the arcuate nucleus and the median eminence, two pivotal structures of the GH axis, spatially remote to the injury site. In the arcuate nucleus, GHRH neurons were unaltered. In the median eminence, injured mice exhibited unexpected alterations. First, the distributions of claudin-1 and zonula occludens-1 between tanycytes were disorganized, suggesting tight junction disruptions. Second, endogenous IgG was increased in the vicinity of the third ventricle, suggesting abnormal barrier properties after CCI. Third, intracerebroventricular injection of a fluorescent-dextran derivative highly stained the hypothalamic parenchyma only after CCI, demonstrating an increased permeability of the third ventricle edges. This alteration of the third ventricle might jeopardize the communication between the hypothalamus and the pituitary gland. In conclusion, the phenotype of CCI mice had similarities to the posttraumatic hypopituitarism seen in humans with intact pituitary gland and pituitary stalk. It is the first report of a pathological status in which tanycyte dysfunctions appear as a major acquired syndrome.


Subject(s)
Brain Injuries/physiopathology , Disease Models, Animal , Ependymoglial Cells/pathology , Hypopituitarism/etiology , Hypothalamus/pathology , Neurons/pathology , Tight Junctions/pathology , Animals , Arcuate Nucleus of Hypothalamus/immunology , Arcuate Nucleus of Hypothalamus/metabolism , Arcuate Nucleus of Hypothalamus/pathology , Biomarkers/metabolism , Ependymoglial Cells/immunology , Ependymoglial Cells/metabolism , Gene Expression Regulation , Green Fluorescent Proteins/genetics , Green Fluorescent Proteins/metabolism , Growth Hormone-Releasing Hormone/genetics , Growth Hormone-Releasing Hormone/metabolism , Hypopituitarism/immunology , Hypopituitarism/metabolism , Hypopituitarism/pathology , Hypothalamus/immunology , Hypothalamus/metabolism , Immunoglobulin G/metabolism , Male , Median Eminence/immunology , Median Eminence/metabolism , Median Eminence/pathology , Mice , Mice, Transgenic , Nerve Tissue Proteins/genetics , Nerve Tissue Proteins/metabolism , Neurons/immunology , Neurons/metabolism , Permeability , Recombinant Fusion Proteins/metabolism , Third Ventricle/immunology , Third Ventricle/metabolism , Third Ventricle/pathology , Tight Junctions/immunology , Tight Junctions/metabolism
2.
Proc Natl Acad Sci U S A ; 108(30): 12515-20, 2011 Jul 26.
Article in English | MEDLINE | ID: mdl-21746936

ABSTRACT

The pituitary gland has long been considered to be a random patchwork of hormone-producing cells. By using pituitary-scale tridimensional imaging for two of the least abundant cell lineages, the corticotropes and gonadotropes, we have now uncovered highly organized and interdigitated cell networks that reflect homotypic and heterotypic interactions between cells. Although newly differentiated corticotrope cells appear on the ventral surface of the gland, they rapidly form homotypic strands of cells that extend from the lateral tips of the anterior pituitary along its ventral surface and into the medial gland. As the corticotrope network is established away from the microvasculature, cell morphology changes from rounded, to polygonal, and finally to cells with long cytoplasmic processes or cytonemes that connect corticotropes to the perivascular space. Gonadotropes differentiate later and are positioned in close proximity to corticotropes and capillaries. Blockade of corticotrope terminal differentiation produced by knockout of the gene encoding the transcription factor Tpit results in smaller gonadotropes within an expanded cell network, particularly in the lateral gland. Thus, pituitary-scale tridimensional imaging reveals highly structured cell networks of unique topology for each pituitary lineage. The sequential development of interdigitated cell networks during organogenesis indicate that extensive cell:cell interactions lead to a highly ordered cell positioning rather than random patchwork.


Subject(s)
Pituitary Gland, Anterior/anatomy & histology , Pituitary Gland, Anterior/cytology , Animals , Cell Differentiation , Green Fluorescent Proteins/genetics , Green Fluorescent Proteins/metabolism , Imaging, Three-Dimensional , Luteinizing Hormone/metabolism , Mice , Mice, Transgenic , Pituitary Gland, Anterior/physiology , Pro-Opiomelanocortin/genetics , Pro-Opiomelanocortin/metabolism , Recombinant Fusion Proteins/genetics , Recombinant Fusion Proteins/metabolism , Systems Biology
3.
Proc Natl Acad Sci U S A ; 107(9): 4465-70, 2010 Mar 02.
Article in English | MEDLINE | ID: mdl-20160103

ABSTRACT

Growth hormone (GH) exerts its actions via coordinated pulsatile secretion from a GH cell network into the bloodstream. Practically nothing is known about how the network receives its inputs in vivo and releases hormones into pituitary capillaries to shape GH pulses. Here we have developed in vivo approaches to measure local blood flow, oxygen partial pressure, and cell activity at single-cell resolution in mouse pituitary glands in situ. When secretagogue (GHRH) distribution was modeled with fluorescent markers injected into either the bloodstream or the nearby intercapillary space, a restricted distribution gradient evolved within the pituitary parenchyma. Injection of GHRH led to stimulation of both GH cell network activities and GH secretion, which was temporally associated with increases in blood flow rates and oxygen supply by capillaries, as well as oxygen consumption. Moreover, we observed a time-limiting step for hormone output at the perivascular level; macromolecules injected into the extracellular parenchyma moved rapidly to the perivascular space, but were then cleared more slowly in a size-dependent manner into capillary blood. Our findings suggest that GH pulse generation is not simply a GH cell network response, but is shaped by a tissue microenvironment context involving a functional association between the GH cell network activity and fluid microcirculation.


Subject(s)
Growth Hormone/metabolism , Microcirculation , Pituitary Gland/blood supply , Animals , Male , Mice , Mice, Inbred C57BL , Mice, Transgenic , Pituitary Gland/cytology , Pituitary Gland/metabolism
4.
J Endocrinol ; 202(3): 375-87, 2009 Sep.
Article in English | MEDLINE | ID: mdl-19505949

ABSTRACT

Our view of anterior pituitary organization has been altered with the recognition that folliculo-stellate (FS) and somatotroph cell populations form large-scale three-dimensional homotypic networks. This morphological cellular organization may optimize communication within the pituitary gland promoting coordinated pulsatile secretion adapted to physiological needs. The aim of this study was to identify the molecules involved in the formation and potential functional organization and/or signaling within these cell-cell networks. Here, we have focused on one class of cell adhesion molecules, the cadherins, since beta-catenin has been detected in the GH cell network. We have characterized, by qPCR and immunohistochemistry, their cellular expression and distribution. We have also examined whether their expression could be modulated during pituitary tissue remodeling. The mouse anterior pituitary has a restricted and cell-type specific repertoire of cadherin expression: cadherin-11 is exclusively expressed in TSH cells; N-cadherin displays a ubiquitous expression pattern but with different levels of expression between endocrine cell types; E-cadherin is restricted to homotypic contacts between FS cells; while cadherin-18 is expressed both in somatotrophs and FS cells. Thus, each cell type presents a defined combinatorial expression of different subsets of cadherins. This cell-type specific cadherin expression profile emerges early during development and undergoes major changes during postnatal development. These results suggest the existence within the anterior pituitary of cell-cell contact signaling based on a defined pattern of cadherin expression, which may play a crucial role in cellular recognition during the formation and fate of pituitary cell homotypic networks.


Subject(s)
Adherens Junctions/physiology , Cadherins/genetics , Cadherins/metabolism , Cell Communication/physiology , Somatotrophs/cytology , Somatotrophs/physiology , Animals , Gene Expression Regulation, Developmental , Male , Mice , Mice, Inbred C57BL , Pituitary Gland/cytology , Pituitary Gland/embryology , Pituitary Gland/growth & development , RNA, Messenger/metabolism , Signal Transduction/physiology , beta Catenin/genetics , beta Catenin/metabolism
5.
Aging Cell ; 6(2): 197-207, 2007 Apr.
Article in English | MEDLINE | ID: mdl-17328688

ABSTRACT

Growth hormone (GH) secretion decreases spontaneously during lifespan, and the resulting GH deficiency participates in aging-related morbidity. This deficiency appears to involve a defect in the activity of hypothalamic GH-releasing hormone (GHRH) neurons. Here, we investigated this hypothesis, as well as the underlying mechanisms, in identified GHRH neurons from adult ( approximately 13 weeks old) and aged ( approximately 100 weeks old) transgenic GHRH-green fluorescent protein mice, using morphological, biochemical and electrophysiological methods. Surprisingly, the spontaneous action potential frequency was similar in adult and aged GHRH neurons studied in brain slices. This was explained by a lack of change in the intrinsic excitability, and simultaneous increases in both stimulatory glutamatergic- and inhibitory GABAergic-synaptic currents of aged GHRH neurons. Aging did not decrease GHRH and enhanced green fluorescent protein contents, GHRH neuronal number or GHRH-fibre distribution, but we found a striking enlargement of GHRH-positive axons, suggesting neuropeptide accumulation. Unlike in adults, autophagic vacuoles were evident in aged GHRH-axonal profiles using electron microscopy. Thus, GHRH neurons are involved in aging of the GH axis. Aging had a subtle effect at the nerve terminal level in GHRH neurons, contrasting with the view that neuronal aging is accompanied by more widespread damage.


Subject(s)
Cellular Senescence/physiology , Growth Hormone-Releasing Hormone/metabolism , Neurons/physiology , Presynaptic Terminals/ultrastructure , Action Potentials , Afferent Pathways/physiology , Animals , Excitatory Postsynaptic Potentials , Green Fluorescent Proteins/analysis , Green Fluorescent Proteins/genetics , Growth Hormone/physiology , Growth Hormone-Releasing Hormone/genetics , Male , Mice , Mice, Transgenic , Neurons/metabolism , Patch-Clamp Techniques , Presynaptic Terminals/metabolism
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