Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Endocrine Cells”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 73 records · Page 4Linked to original sources

Inositol 1,4,5-trisphosphate receptors in endocrine cells: localization and association in hetero- and homotetramers.

The inositol 1,4,5-trisphosphate receptor (IP3R) is an intracellular calcium channel involved in coupling cell membrane receptors to calcium signal transduction pathways within cells including endocrine cells. Several isoforms (I, II, and III) of IP3Rs have been identified, which are encoded by separate genes, and are expressed in many tissues with differing patterns of cellular expression. We have generated specific affinity-purified polyclonal anti-peptide antibodies to each of the three isoforms. Western blot analysis of RINm5F and ATt20 cells shows high levels of endogenously expressed type I and type III IP3R, but undetectable levels of type II. Immunofluorescence studies revealed an endoplasmic reticulum-like pattern similar to BiP, an ER marker. In contrast with previous claims, both type I and type III IP3Rs were absent from the secretory granules of ATt20 cells. Western blots of sucrose gradients and gel filtration probed with antibodies to either type I or type III showed a molecular weight of greater than 1,000 kDa consistent with a tetrameric structure. Co-immunoprecipitation experiments indicated that most of the receptors were present as heterotetramers. Homotetramers were identified for the type III IP3R; however, type I homotetramers were undetectable. These data suggest that molecular association of IP3Rs into heterotetrameric forms can contribute to the complexity of the regulation of Ca2+ release from ER by IP3Rs within cells.

Amino Acid Sequence↗

[Endocrine cells and Malpighian epithelium. Merkel-type cells? Immunohistochemical and ultrastructural study].

This study was devoted to a peculiar population of argyrophilic cells present among various stratified squamous epithelia. The purpose of the study was to determine the distribution and the nature of these argyrophilic cells, and to reappraise their degree of analogy with the Merkel cells of epidermis. Examples of squamous epithelia from skin, exocervix, anal canal and dermoid cyst of ovary were investigated using histochemical, immunohistochemical and ultrastructural techniques. Melanin-containing cells as well as peculiar argyrophilic cells were revealed in each series of specimens. These peculiar argyrophilic cells expressed EMA, chromogranin A and NCL-5D3 (cytokeratins 19, 18, 8) immunoreactivities. By contrast, they were serotonin negative. An intense staining for EMA was observed. These cells were obviously endocrine cells. Ultrastructural studies confirmed the presence of endocrine cells within the anal canal and the exocervix; moreover, in anal canal, some of these cells appeared to have contacts with a nerve terminal. Through the epidermis, these cells can only correspond to Merkel cells, because of their chromogranin positivity. Throughout other squamous epithelia, this population of endocrine cells (serotonin negative) bear some analogies with Merkel cells of epidermis. Their distribution, morphology, EMA immunoreactivity and ultrastructural appearance were reminiscent of those of the Merkel cells. They could be named Merkel-type cells. Additional studies, using other characteristic or specific markers of Merkel cells, are clearly required to determine the exact degree of analogy between these types of cells. Merkel-type cells could be largely distributed through stratified squamous epithelia from various tissues. They can be easily visualized by their strong EMA immunoreactivity and must be distinguished from Paget cells.

Endocrine Glands↗

Age-related changes in antral endocrine cells in mice.

Antral endocrine cells in four age groups of mice, namely prepubertal (1 month old), young (3 months old), ageing (12 months old) and senescent (24 months old), were detected by immunocytochemistry and quantified by computerized image analysis. A statistical difference was detected between the different age groups regarding the numbers of gastrin-, somatostatin-, and serotonin-immunoreactive cells. The number of gastrin-immunoreactive cells significantly increased between 1 and 12 months, whereas they became significantly fewer between 12 and 24 months. Somatostatin-immunoreactive cell number increased significantly in 1-, 12- and 24-month-old mice, compared with young mice (3 months old). The number of serotonin-immunoreactive cells also increased significantly in 1- and 12-month-old mice as compared with young mice. There was a statistical difference between different age-groups regarding the cell secretory index (CSI) of somatostatin- and gastrin-immunoreactive cells, the CSI of both somatostatin- and serotonin-immunoreactive cells increased significantly in 1-, 12-, and 24-month-old mice, compared with young mice. There was no statistical difference between the different age-groups regarding the CSI of gastrin-immunoreactive cells, nor between males and females regarding the number and CSI of all the endocrine cell types investigated. It is suggested that the large number of somatostatin-immunoreactive cells in ageing and senescent mice might have an impact on the gastric delay seen in the elderly. It was concluded also that the changes in the antral endocrine cells could be involved in the development of dysfunction of the gastrointestinal tract inherent in ageing, or could be secondary to structural and functional changes in the alimentary tract caused by ageing.

Aging↗

Inhibition of N-diethylnitrosamine metabolism by human lung cancer cell lines with features of well differentiated pulmonary endocrine cells.

Cell lines derived from a human pulmonary carcinoid tumor (NCI-H727) and from a human pulmonary large cell carcinoma (NCI-H460) were investigated by transmission electron microscopy. Both cell lines, at early in vitro passage, demonstrated ultrastructural features of well differentiated pulmonary endocrine cells. Line NCI-H727 had more endoplasmic reticulum than line NCI-H460 and demonstrated L-dopa decarboxylase activity as well as production of calcitonin and bombesin. Because of their ultrastructural resemblance with normal pulmonary endocrine cells, these cell lines were used to test the theory derived from experiments in hamsters that human pulmonary endocrine cells can metabolize N-nitrosodiethylamine (DEN). The cells were incubated in vitro with [14C]DEN. Metabolism was assessed by 14CO2 production. Both cell lines metabolized DEN to a much greater extent than previously investigated human lung cancer cell lines of Clara cell and alveolar type II cell morphology. In keeping with its abundant endoplasmic reticulum, line NCI-H727 yielded 14CO2 in the 300 nM range, whereas NCI-H460 was less active. Metabolism was time dependent. Preincubation with various enzyme inhibitors yielded a highly significant inhibition of DEN metabolism with the two inhibitors of the fatty acid cyclooxygenase component of prostaglandin endoperoxide synthetase, aspirin and indomethacin. Inhibitors of cytochrome P-450 (CO, piperoxylbutoxide) did not inhibit DEN metabolism. Preincubation with sinigrin yielded similar negative results as CO and piperonylbutoxide. Our data are in support of the theory that human pulmonary endocrine cells can metabolize nitrosamines. Moreover, the experiments with enzyme inhibitors suggest that in this cell type such metabolism is largely dependent on prostaglandin endoperoxide synthetase.

Carbon Dioxide↗

Entero-endocrine cell differentiation in carcinomas of the gallbladder and mucinous cystadenocarcinomas of the pancreas.

Forty two carcinomas of the gallbladder and 25 mucinous cystadenocarcinomas of the pancreas were analyzed using silver stains and immunohistochemical techniques. Fourteen (33.3%) gallbladder carcinomas had argyrophil and argentaffin cells and 17 (40%) contained endocrine cells as shown by immunoperoxidase stains. The gallbladder tumors that had the largest number of endocrine cells were the well differentiated adenocarcinomas with colonic features. The most common endocrine cell in these tumors was the serotonin-containing (EC) cell followed by somatostatin-containing cells and cells that reacted to pancreatic polypeptide and gastrin. Intestinal metaplasia with pseudopyloric gland hyperplasia was present in the gallbladder mucosa adjacent to 11 carcinomas and had an endocrine cell population similar to that of the tumors. Endocrine cells were demonstrated in 18 (70%) of the 25 mucinous cystadenocarcinomas of the pancreas by the immunoperoxidase method although only 9 had argyrophil and argentaffin cells. The population of endocrine cells in these mucinous pancreatic tumors was similar to that found in gallbladder carcinomas. Endocrine cells were more numerous in areas with colonic-type glands, goblet cells and Paneth cells. The secretory products of the endocrine cells in these gallbladder and pancreatic tumors did not give rise to systemic endocrine manifestations. The presence of endocrine cells in these tumors can be explained on the basis of intestinal differentiation.

Cell Transformation, Neoplastic↗

[Regulation of secretion and synthesis of gastrointestinal hormones: studies with cultured gut endocrine cells].

Small number of endocrine cells are diffusely distributed in the gut mucosa. Studies on their secretory mechanisms have been further complicated by numerous neural, paracrine, and endocrine factors affecting their response. Recent technical development for isolation and culture of gut endocrine cells has circumvented these problems and enabled to study their receptors, signal transduction mechanism, and biosynthesis of gut hormones. In this review, current progress made in the cellular physiology of gut endocrine cells is summarized.

Animals↗

Characterization of human pulmonary endocrine cells maintained in vitro.

Endocrine cells located in the epithelium of human fetal airways contain the amine, 5-hydroxytryptamine (5HT), and the peptide, bombesin (BOM), but difficulties in studying these cells experimentally have slowed progress in understanding their functional roles. This investigation describes an in vitro method to maintain pulmonary neuroendocrine cells (PNEC) in organ culture. Bronchial trees from human fetal lungs were dissected free of adherent blood vessels and lung tissue. Explants of the airways were placed in culture dishes containing defined tissue culture medium for five days. Using indirect immunofluorescence, 5HT- and BOM-like immunoreactive cells were observed both in nonincubated airways and in explants maintained for five days in organ culture. The number of 5HT-immunoreactive cells/0.1 mm2 of airway epithelium was not significantly different in the two groups, although there was a significant reduction in 5HT content measured by HPLC after the five-day culture period. The diameter of dense core vesicles and the number of dense core vesicles/micron2 of endocrine cell cytoplasm in cultures were not significantly different from non-incubated controls. Treatment of the explants with the 5HT-synthesis inhibitor p-chlorophenylalanine resulted in a significant reduction both in the number of 5HT-containing cells/0.1 mm2 of airway epithelium and in the 5HT content. These results demonstrate that both 5HT and BOM content in endocrine cells of explants from human fetal airways can be well maintained in organ culture for at least 5 days and that they are responsive to pharmacologic inhibition of 5HT synthesis.

Bombesin↗

Neurogenin 3-expressing progenitor cells in the gastrointestinal tract differentiate into both endocrine and non-endocrine cell types.

Mice deficient for the transcription factor neurogenin 3 (ngn3) fail to develop endocrine cells in the intestine and pancreas and show partial endocrine differentiation in the stomach. We expressed Cre recombinase under control of a ngn3 BAC to achieve high fidelity cell lineage tracing in vivo to determine whether endocrine cells in these organs differentiate from NGN3+ precursor cells. Our results indicate that all small intestinal enteroendocrine cells arise from ngn3-expressing cells and confirm that NGN3+ cells give rise to all pancreatic endocrine cells as noted previously. By examining mice at a developmental stage when all of the cell types in the stomach have differentiated, we have delineated region-associated differences in endocrine differentiation. A much smaller fraction of endocrine cells populating the acid-producing region of the stomach is derived from NGN3+ precursor in contrast to the antral-pyloric region. Unexpectedly, ngn3 is expressed in cells that adopt non-endocrine cell fates including significant fractions of goblet and Paneth cells in the intestine and a small number of duct and acinar cells in the pancreas. Rarely, ngn3 was expressed in pluripotent cells in intestinal crypts with resultant labeling of an entire crypt-villus unit. Thus, ngn3 expression occurs in mixed populations of immature cells that are not irreversibly committed to endocrine differentiation.

Animals↗

Endocrine cell hyperplasia and appendiceal carcinoids.

As endocrine tumours in a number of organs may arise in a background of hyperplasia, the density of endocrine cells in appendices from ten patients with carcinoid tumours was compared with that in appendices from ten age- and sex-matched control patients. Crypt and lamina propria endocrine cells were quantified separately. The density of argentaffin endocrine cells in the crypts was significantly higher in appendices with carcinoid tumours when compared with the controls. No difference was found in non-argentaffin endocrine cells, and no difference was found in either argentaffin or argyrophil endocrine cells in the lamina propria. While it is possible that carcinoid tumours induce an increase in the number of enterochromaffin (EC) cells in the background mucosa, it is considered more likely that EC cell hyperplasia predisposes to the development of carcinoid tumours of the appendix.

Adolescent↗

Insulin-producing cells derived from human pancreatic non-endocrine cell cultures reverse streptozotocin-induced hyperglycaemia in mice.

AIMS/HYPOTHESIS: The aim of the study was to investigate the potential of human pancreatic non-endocrine cells to transdifferentiate into endocrine cells that would be capable of secreting insulin in response to glucose and ameliorating insulin-deficient diabetes after transplantation. MATERIALS AND METHODS: Cell fractions enriched with exocrine cells after human islet isolation were treated with streptozotocin to remove residual beta cells, grown in monolayer culture to allow de-differentiation, transferred to cluster culture for redifferentiation in the presence of activin A, betacellulin, nicotinamide and glucose, supplemented with 10% FCS, and administered to streptozotocin-induced diabetic SCID mice. A subset of cells was transfected with the IPF1 gene (also known as PDX1) before transdifferentiation. RESULTS: No insulin was detectable in cell preparations after 5 days of treatment with streptozotocin. In monolayer culture, 90% of the streptozotocin-treated pancreatic cells co-expressed cytokeratin-19 and vimentin at 2 weeks and 60% expressed nestin at 4 weeks. Cell cultures with a high proportion of nestin-expressing cells had greater plasticity for transdifferentiation into cells with phenotypic and functional markers of beta cells, this property being significantly enhanced by transfection with IPF1 gene and leading to 15+/-6.7% insulin-positive cells after transplantation vs. 0.01% of cells transplanted after streptozotocin treatment alone. These cells improved glucose control in all of 42 diabetic mice after transplantation, restoring normoglycaemia in 40%. CONCLUSIONS/INTERPRETATION: Human pancreatic cells are a potential source of new glucose-responsive insulin-producing cells that may be developed further for clinical use.

Adolescent↗

Endocrine cells of the stomach of chicks around the time of hatching.

The proventriculus, gizzard and pyloric antrum (region between the gizzard and the duodenum) of 18-day Black Australorp chick embryos and of chicks within 30 h of hatching have been studied by electron microscopy. D and EC cells, and putative G, D1 and A-like cells were identified (terminology of Solcia et al., 1973) but no ECL cells. No endocrine cells of any kind were revealed in the gizzard.

Animals↗

[Endocrine cells in gastric carcinoma].

A few endocrine cells were observed in 7 of 16 specimens of gastric carcinoma studied by electronmicroscopy. They were closely mixed with other types of tumor cells infiltrating into the stroma. Some endocrine cells contained both neuroendocrine and mucous granules. This conforms well to the hypothesis that the endocrine cells as well as other types of tumor cells in gastric carcinoma, originate from the endoderm. The endocrine cells and other varieties of tumor cells were found in both intestinal and diffuse types of gastric carcinoma. The heterogeneity and histogenesis of gastric carcinoma are discussed.

APUD Cells↗

Immunohistochemical study of endocrine cells in ductal adenocarcinoma of the pancreas.

To clarify whether scattered endocrine cells in pancreatic ductal adenocarcinoma are neoplastic or not, we immunohistochemically studied 29 cases of invasive pancreatic ductal adenocarcinomas, 17 with metastases, for chromogranin A, insulin, glucagon, pancreatic polypeptide, serotonin, gastrin, laminin, and Ki-67. Endocrine cells were found in primary sites in 24 cases (82.3%), where endocrine cells showed at least a visibly close location to adjacent islet cells. Although endocrine cells in neoplastic glands were within the neoplastic basement membrane, endocrine cells were not seen in invasive sites beyond the pancreas where islets were not present. Endocrine cells in neoplastic glands were reactive for two or three of the islet hormones in all cases, and different types of hormonal reactivity was recognized in the same neoplastic gland or the same cluster of neoplastic glands in 22 (91.7%) cases, thus suggesting a close relation with islets. Ki-67 did not stain any endocrine cells in ten of the adenocarcinomas studied. In three (10.3%) cases, endocrine cells were found in the intraductal extensions. They may have pre-existed in non-neoplastic ducts. In 17 cases with metastatic sites, all but one had no endocrine cells in the metastases. Serotonin-positive cells were found in one metastatic lymph node in one case. We concluded that most endocrine cells seen in ductal adenocarcinomas of the pancreas are non-neoplastic and are derived from the surrounding islets. Some neoplastic endocrine cells may exist, though their frequency is low.

Carcinoma, Ductal, Breast↗

The patterns of extrainsular endocrine cells in pancreatic cancer.

Abnormal glucose tolerance and frank diabetes mellitus develop in up to 80% of pancreatic cancer patients. Islets within these tumors show a decreased number of beta cells and increased number of alpha cells. The reduced number of beta cells could induce beta cell neogenesis in extrainsular tissue to compensate for the loss of insulin in islets. On the other hand, because the beta cell depletion in pancreatic cancer seems to be the effect of substances released by cancer cells, suppression of extrainsular endocrine cells is expected. We compared the pattern of extrainsular endocrine cells in pancreatic cancer patients with normal pancreas as well as chronic pancreatitis, which is known to be associated with impaired glucose tolerance or frank diabetes. As in the normal tissue, extrainsular endocrine cells were found in chronic pancreatitis and pancreatic cancer. However, in the chronic pancreatitis specimens insulin cells were the predominant cell type, whereas in pancreatic cancer specimens more glucagon than insulin cells were found, although the differences were statistically insignificant. Thus, our results indicate that the alteration of beta cells in pancreatic cancer patients is mainly restricted to the endocrine cells within the islets and that there is no compensatory proliferation of beta cells.

Adenocarcinoma↗

Effects of unilateral cervical vagotomy on antral endocrine cells in mouse.

The present study was carried out to investigate the effect of unilateral cervical vagotomy on the antral endocrine cells in mouse. Fifty-four mice were randomly divided into three groups, 18 in each, for left or right cervical vagotomy, or sham operation as controls. The animals were sacrificed 2, 4, and 8 weeks after the operation, respectively. Chromogranin-, gastrin/CCK-, serotonin-, and somatostatin-cells were detected by immunohistochemistry and quantitated by computerised image analysis. The results showed that the number of chromogranin-cells was decreased in both left and right vagotomized mice after 4 weeks and remained at the same level after 8 weeks. The numbers of gastrin-, serotonin- and somatostatin-cells did not change after right vagotomy. However, the numbers of gastrin- and somatostatin-cells were decreased after left vagotomy, whereas no change was found in serotonin-cells. Endocrine cells with vacuolated cytoplasm and pyknotic nuclei were also observed during the course of time. The alteration in the antral endocrine cells observed in this study seemed to be dynamic and depended on the observation time after the operation as well as the denervated branches of the vagus nerve. This may explain, at least partially the contradictory results obtained earlier by different investigators.

Animals↗

Origin and differentiation of gut endocrine cells.

The epithelium of the digestive tract contains endocrine cells which produce serotonin and an array of regulatory peptides. It is now irrefutably established that gut endocrine cells are not of neural crest nor even of neurectodermal origin. Furthermore, the proposal that they might originate from neuroendocrine-programmed epiblast has been retused by recent evidence that they share the endodermal stem cell pool with the other epithelial cells of the gut. Based on the available evidence, a working hypothesis for the differentiation of gut endocrine cells has been developed. It is proposed that initially the developing gut acquires an underlying tendency to differentiate into intestine: the endoderm has the potential to form a wide range of endocrine cell types. A little later, some influence operative over the length of the presumptive gut imposes a regionally specific pattern on the tract. This process concerns morphogenesis and pre-selection of the range and proportions of the endocrine cell types. Thereafter, the mesenchyme feeds to the endoderm confirmatory signals reinforcing this pre-selected regional pattern of endocrine cells. Once the different endocrine cell types have started to differentiate, their maturation is effected by circulating factors which include glucocorticoid hormone: this process is mediated by the mesenchyme. Other factors concerned at various stages of gut endocrine cell differentiation could be other hormones, growth factors and or components of extracellular matrix: such factors are still untested in this context.

Animals↗

Heterogeneity in predisposition of hepatic cells to be induced into pancreatic endocrine cells by PDX-1.

AIM: The role of Pancreatic and Duodenal Homeobox-1 (PDX-1) as a major regulator of pancreatic development determines the function and phenotype of beta cell. In this study, potential plasticity of liver cells into pancreatic endocrine cells induced by PDX-1 was evaluated. METHODS: Human hepatoma cell line HepG2 was stably transfected with mammalian expression plasmid pcDNA3-PDX encoding human PDX-1 gene. Ectopic expression of PDX-1 and insulin were detected by RT-PCR, Western blot and/or immunostaining. PDX-1(+) HepG2 cells were transplanted under renal capsule of STZ-induced diabetic nude mice (n = 16) to examine the inducing effect in vivo. RESULTS: Exogenous PDX-1 transgene was proved to express effectively in HepG2 cell at both mRNA and protein levels. The expression of endogenous insulin and some beta cell-specific differentiation markers and transcription factors were not induced in PDX-1(+) HepG2 cells. When transplanted under renal capsule of STZ-induced diabetic nude mice, PDX-1(+) HepG2 cells did not generate insulin-producing cells. These data indicated that stable transfected PDX-1 could not convert hepatoma cell line HepG2 to pancreatic cells in vitro or in vivo. Mature hepatocytes might need much more complicated or rigorous conditions to be shifted to insulin-producing cells. CONCLUSION: The expression of exogenous PDX-1 is not sufficient to induce relatively mature hepatocytes differentiating into insulin-producing cells.

Animals↗

Composite endocrine cell, typical adenocarcinoma and signet ring carcinoma of the gallbladder.

The authors report a case of composite tumor of the gallbladder which exhibited features of both adenocarcinoma (with typical areas, signet ring cells and clear cells) and endocrine cell carcinoma. The histological picture suggests the origin of both components in a common primitive cell with the capacity to differentiate to different types of metaplastic epithelium and supports the hypothesis of a sequence metaplasia--dysplasia--carcinoma.

Adenocarcinoma↗