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Biomedical subjects

C Ezrin

Publications and source records attributed to C Ezrin.

At least 55 records · Page 3Linked to original sources

Prolactin cells of the human pituitary gland in old age.

Pituitary glands obtained at autopsy from 20 male and 20 female subjects, over 80 years of age, have been investigated with various staining procedures, including the immunoperoxidase technique for the cytological localization of prolactin. Prolactin cells were numerous and well developed in the anterior lobes. The incidence, distribution, granulation and immunoreactivity of prolactin cells showed no apparent difference between old male and female subjects dying of acute or chronic illnesses. It can be concluded that prolactin cells do not regress in old age. The morphologic findings are consistent with the assumption that the pituitary gland is capable of secreting prolactin in aging subjects.

Aged↗

Acidophil stem cell adenoma of the human pituitary.

Among 87 pituitary adenomas, four neoplasms had a superficial resemblance to undifferentiated cell adenomas and some fine structural features of both sparsely granulated adenomatous growth hormone and prolactin cells. Misplaced exocytosis, fibrous bodies, and multiple centrioles were sometimes revealed within the same cell and usually were accompanied by oncocytic transformation, mitochondrial alterations, and abnormal centriologenesis. The patients had normal or low blood growth hormone levels and elevated or normal prolactin values. All the tumors that were tested contained immunoreactive growth hormone and prolactin, irrespective of the blood hormone levels. The four tumors could represent a hitherto unclassified adenoma type and derive from the common, committed precursor of the two acidophils. The term acidophil stem cell adenoma is proposed to designate this entity.

Adenoma, Acidophil↗

Pituitary adenomas.

Pituitary adenomas arise from and consist of adenohypophyseal cells. Based on the tinctorial characteristics of the cell cytoplasm, they were divided previously into chromophobic, acidophilic, and basophilic adenoma types. This classification is only of limited value, since it fails to consider the endocrine function of the adenoma cells and the cell type from which the tumor originates. Advanced morphologic techniques, including electron microscopy and immunocytology, led to a new pituitary adenoma classification reflecting current knowledge and attributing greater significance to clinical features, structure-function relationships, and cytogenesis. The morphologic study of pituitary adenomas is still in a relatively early stage and much more work is required to understand the basic principles of pituitary cytopathology. Thus, the classification used in this review may change as new facts accumulate. We feel justified to say that attempts to correlate structural features of pituitary adenomas with secretory activity and their separation into distinct entities cannot be regarded as examples of curiosity-oriented research. This type of investigation represents not only an intellectually rewarding experience, but is also of practical value and provides important information for the endocrinologists.

Adenoma↗

Clinical pituitary disorders.

The pituitary gland is really a confederation of several relatively independent endocrine glands gathered together in close relationship to the hypothalamus which exerts considerable governing control. Each of these sub-glands of the pituitary should be considered separately in every case of pituitary disease. While such an approach is mandatory in dealing with laboratory investigation, it also is profitable in considering clinical and therapeutic aspects of each case to ensure that nothing is overlooked.

Adrenocorticotropic Hormone↗

A new look at pituitary adenomas: structure elucidating function.

Cases of seven different types of surgically resected pituitary adenoma are described. Included are tumours secreting prolactin or growth hormone or both, and nonfunctioning tumours--undifferentiated and oncocytic tumours, and one tumour with cells of the adrenocorticotropin-melanocyte-stimulating hormone type. The final interpretation of a case of pituitary adenoma should include an assessment of thorough morphologic studies, using not only routine staining and light microscopy but also immunostaining and electron microscopy, to complement the biochemical, radiologic and clinical evaluation.

Acromegaly↗

Localization of prolactin in chromophobe pituitary adenomas: study of human necropsy material by immunoperoxidase technique.

In order to identify prolactin-producing tumours in human pituitary glands, 45 chromophobe adenomas, obtained from unselected necropsies, have been studied by various staining procedures including the immunoperoxidase technique for the demonstration of prolactin. The presence of immunoreactive prolactin was revealed in the cytoplasm of the tumour cells in six cases (13%), indicating that the occurrence of prolactin-producing adenomas is not rare. No correlations were established between tumours and clinical history. Two adenomas were detected in female and four in male patients. The age of the patients at necropsy ranged from 28 to 75 years. Three adenomas were associated with disseminated carcinoma, two with fatal liver disease, and one with diabetes mellitus, atherosclerosis, and pyelonephritis. Manifest endocrine symptoms were not disclosed, and endocrine investigations, including measurements of blood prolactin levels, were not undertaken. Thus, direct evidence is lacking as to whether or not these tumours were actively secreting prolactin. In the non-tumorous parts of the anterior lobes the number of prolactin cells was decreased in two cases, suggesting that prolactin released from the adenoma cells suppressed prolactin production in the non-tumorous pituitary. However, the number of prolactin cells of the non-tumorous adenohypophysis seemed to be unchanged in two and increased in another two cases. The present findings conclusively proved the existence of the prolactin-producing adenomas as a distinct entity. These tumours do not stain with acid or basic dyes, they are PAS or thionin negative, and do not contain immunoreactive growth hormone. Thus, by conventional staining procedures they are indistinguishable from other chromophobe adenoma types. Herlant's erythrosin and Brookes' carmoisine methods, claimed spedifically to stain prolactin cells, failed to provide reliable results, hence their use cannot be recommended in tumour identification. Immunoperoxidase staining of prolactin is the only technique which conclusively reveals the presence of immunoreactive prolactin in the cytoplasm of the tumour cells and permits diagnosis. It is proposed that this technique be introduced in pituitary morphological studies. Its application may lead to a better understanding of problems related to prolactin-producing tumours and their secretory activity.

Adenoma, Chromophobe↗

Effect of starvation on pituitary growth hormone cells and blood growth hormone and prolactin levels in the rat.

Growth hormone (GH) cells of rats were studied on days, 2, 4 and 7 of starvation. Immunoperoxidase staining for light microscopy confirmed the presence of GH in the pituitaries of all groups of animals. Electron microscopy revealed crinophagy in the cytoplasm of GH cells on days 4 and 7. By ultrastructural morphometry, volume density and the diameter of secretory granules in the cytoplasm of GH cells remained unchanged. Blood GH determinations showed a significant decrease on day 4 of the starvation period. On day 7 most of the values were in the range of the controls. Blood prolactin levels fell significantly on day 7. It appears that the pituitary is capable of secreting GH even in rats completely deprived of exogenous nutrients.

Animals↗

Human mixed somatotrophic and lactotrophic pituitary adenomas.

Six patients with acromegaly at examination were found to have pituitary adenomas composed of cells that secreted GH and PRL. This was demonstrated by the elevated serum hormone concentrations, by immunoperoxidase staining of 5 specimens, and by electron microscopic examination of 4. Ultrastructural characteristics, described in detail, suggest that these adenomas were mixed adenomas consisting of 2 well-defined, distinct cell types, each secreting one hormone. By immunoperoxidase staining some cells were found to contain immunoreactive growth hormone, other cells immunoreactive prolactin. No cells were detected exhibiting immunostaining for both growth hormone and prolactin. Eelctron microscopy, consistent with the results of immunostaining, revealed the presence of two distinct cell types, distinguishable from each other by their characteristic fine structural features. No intermediate forms were noted. Thus there was no evidence to suggest that one cell type might transform to the other. Present findings seem to indicate that mixed adenomas secreting growth hormone as well as prolactin and consisting of somatotrophs as well as lactotrophs do occur in the human pituitary gland. Although all the results obtained so far suggest that these tumors are composed of two distinct cell types and thus can be interpreted as representing real mixed adenomas, further work is required to establish whether or not they derive from one common progenitor.

Acromegaly↗

Centrioles and cilia in non-tumourous anterior lobes and adenomas of the human pituitary.

Electron microscopy revealed the presence of centrioles and cilia in non-tumourous adenohypophysiocytes as well as in various adenomas of the human pituitary gland. Accumulation of centrioles and cilia was evident in sparsely granulated growth hormone cell adenomas. Abundance of centrioles is a valuable sign in establishing the diagnosis of this tumour. The possible functional significance of centrioles and cilia in adenohypophysial cells has been discussed.

Adenoma↗

Pituitary chromophobe adenomas consisting of prolactin cells: a histologic, immunocytological and electron microscopic study.

Morphologic studies of pituitary neoplasms removed by srugery from 36 human patients revealed 8 chromophobe adenomas which differed clearly from the remaining tumors. The cytoplasm of the adenoma cells failed to stain with PAS, aniline blue, adehyde fuchsin, aldehyde thionin, orange G or light green, but positively stained granules were found by using erythrosine or carmosine. Immunoperoxidase technique disclosed the presence of prolactin in the cytoplasm of some adenoma cells. The adenoma cells exhibited distinct ultrastructural features such as well developed rough surfaced endoplasmic reticulum with Nebenkern formation, prominence of Golgi apparatus, presence of misplaced exocytosis as well as pleomorphism of secretory granules with a considerable variation of size ranging from 130 to 500 nm in diameter. Thus, by electron nicroscopy the adenoma cells showed a close resemblance to prolactin cells of the non-tumouous pituitary glands except for the reduced size and number of secretory granules. Thes chromophobe adenomas are regarded as representing a distinct pathological entity clearly distinguishable from other forms of pituitary neoplasms. In view of the morphologic findings and the elevation of blood prolactin level (measured in 3 patients) the term, "sparsely granulated prolactin producing pituitary adenoma", appears to be the most appropriate one to designate these tumors.

Adenoma, Chromophobe↗

Origin, possible function and fate of "follicular cells" in the anterior lobe of the human pituitary.

In human anterior pituitaries, follicular structures were found to develop by transformation of various types of glandular cells around foci of ruptured granulated cells undergoing destruction. In phase I, junctional complexes between granulated cells, as well as microvilli at the luminal surfaces of cell membranes, are formed. In phase II, degranulation and dedifferentiation of cytoplasm dominate the picture. Phase III follicular cells are practically devoid of secretory granules and other ultrastructural features characteristic of granulated cells. The participation of cell types in follicle formation does not appear to be limited. The follicular content in phase I-II is clearly recognizable as cellular debris from adenohypophysiocytes. These findings indicate that neither follicles nor junctional complexes are necessarily permanent structures of the anterior pituitary. It can be assumed that substances escaping from ruptured granulated cells may induce the formation of junctional complexes between adjacent cells.

Basement Membrane↗