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Biomedical subjects

L I Larsson

Publications and source records attributed to L I Larsson.

At least 19 recordsLinked to original sources

Simultaneous ultrastructural demonstration of multiple peptides in endocrine cells by a novel immunocytochemical method.

Current immunocytochemical techniques detect all antibodies that react with tissue. Unfortunately, some of these antibodies may react with antigens other than those intended. Such problems are minimised by using sets of antibodies detecting different regions of the desired antigen. However, as immunocytochemical methods can now detect very low antibody concentrations, the purity of antisera is critical. Furthermore, although antisers may be purified by affinity chromatography, difficulties in recovering high-avidity antibodies cause most affinity-purified antisera to be enriched in low-avidity antibodies, which may be dislodged during staining. We have therefore developed, and describe here, a new ultrastructural post-embedding staining technique, based on the divalency of IgG molecules and using antigen-coated colloidal gold granules. Previously, colloidal gold-labelled antibodies have been used for post-embedding staining. Unlike our gold-labelled antigen detection (GLAD) technique, however, these methods do not differentiate between specific and nonspecific antibodies. The GLAD method detects only specific antibodies and does not select against high-avidity antibodies, and in this it resembles the radioimmunocytochemical method. However, the GLAD method differs from the latter in that it is useful for ultrastructural studies, does not require autoradiography and allows simultaneous detection of multiple antigens. Moreover, specific activity compared with background may be quantitated.

Adrenocorticotropic Hormone

Met- and Leu-enkephalin immunoreactivity in separate neurones.

A pair of pentapeptides, Met- and Leu-enkephalin were recently isolated from brain tissue. The two peptides seem to represent endogenous opiate receptor ligands and have by immunocytochemical and radioimmunoassay studies been shown to occur in an extensive system of cerebral and peripheral nerves. The relative proportions between Met- and Leu-enkephalin varies between different brain regions and also between different species, suggesting the existence of separate populations of Met- and Leu-enkephalin nerves. Until now, however, immunocytochemistry has given no support for this notion. We report here evidence of separate populations of Met- and Leu-enkephalin nerves.

Amino Acid Sequence

Somatostatin cell processes as pathways for paracrine secretion.

Somatostatin is produced by gastrointestinal endocrine cells that have long, nonluminal, cytoplasmic processes. Such processes terminate on other cell types, including gastrin-producing and hydrochloric acid-producing cells, whose functions are profoundly affected by somatostatin. The findings suggest that somatostatin cells control the functions of other cells through local release of the peptide by way of cytoplasmic processes. Also, certain other types of gastrointestinal endocrine cells have similar cytoplasmic prolongations, which may have analogous local (paracrine) regulatory functions.

Animals

Formaldehyde-fluorescamine-induced fluorescence of mammary carcinoma cells. Lack of concordance with occurrence of oestrogen-binding receptor proteins.

The combined formaldehyde-fluorescamine technique demonstrates fluorescence by mammary carcinoma cells whereas cells of the normal gland or of benign tumours do not show fluorescence. We have studied the correlation between histological staging of the disease, concentrations of oestrogen-binding proteins and the occurrence of formaldehyde-fluorescamine (FF)-inducible fluorescence. Our results demonstrate that the FF-technique detects all types of mammary carcinoma cells irrespective of their concentration of oestrogen receptors. Hence, the FF-technique represents a valuable tool for detecting both hormone-responsive and hormone-unresponsive malignant cells of the mammary gland.

Breast Neoplasms

Formaldehyde-fluorescamine-induced fluorescence as a property of carcinoma cells.

Fluorescamine is a sensitive cytochemical probe for primary amino groups and produces an intense general fluorescence in unfixed tissue sections reflecting the ubiquitous occurrence of such groups. Following treatment with formaldehyde, most primary amino groups react to form derivatives unable to yield fluorescence with fluorescamine. Certain cell systems, however, contain amino groups which do not react with formaldehyde but display strong reactivity with fluorescamine. In formaldehyde- and fluorescamine-treated specimens such cell systems display an intense fluorescence, whereas the majority of tissue constituents are non-fluorescent. Fluorescent cell systems include certain protein- and peptide-secreting cells and a large number of different types of carcinoma cells. In some cases it appears that neoplastic transformation is necessary before the cells display formaldehyde-fluorescamine-induced fluorescence. Available data indicate that the reactive substance(s) are peptide in nature and that the production of such substance(s) may be a general property of carcinoma cells.

Carcinoma

Localization and molecular heterogeneity of cholecystokinin in the central and peripheral nervous system.

Immunocytochemistry and radioimmunochemistry demonstrate the occurrence of the gastrointestinal hormone cholecystokinin (CCK) in both the central and peripheral nervous system of the guinea pig. CCK nerves are particularly numerous in the neocortex, the hippocampus, the amygdaloid nuclei, the hypothalamus, the spinal cord and in the colon. The nerves contain 5 molecular components of CCK, with gel chromatographical elution constants (Kav) of 0.05, 0.50, 0.90, 1.10 and 1.30, respectively. The four latter correspond to triacontatriapeptide CCK and its COOH-terminal dodeca-, octa- and tetrapeptide portions, respectively. Cholecystokinins are hence widely distributed in the nervous system and occur in the substantial quantities (greater than or equal to 0.2 nmol CCK-8-equiv./g) in several distinct regions.

Animals

On the immunocytochemical localization of the vasoactive intestinal polypeptide.

The distribution of vasoactive intestinal polypeptide (VIP) immunoreactive nerves and endocrine cells in the gastrointestinal tract and pancreas of a number of mammalian and submammalian species has been examined in order to throw light on the exact localization of this peptide. Seven out of 8 VIP antisera demonstrated numerous nerve fibers in the gut, whereas one antiserum (TR2) revealed only scattered, few nerve fibers. The distribution of endocrine cells demonstrated by the different VIP antisera varied considerably. Thus, some antisera demonstrated only endocrine cells in the feline antrum, others only colonic endocrine cells and still others only endocrine cells of the upper gut and pancreas. The variability in staining pattern of endocrine cells as well as recent radioimmunological data makes it opportune to suggest that true VIP is a neuronal peptide and that endocrine cells store peptides resembling, but not being identical with, VIP (VIPoids).

Animals

Innervation of the pancreas by substance P, enkephalin, vasoactive intestinal polypeptide and gastrin/CCK immunoractive nerves.

Immunocytochemical studies habe shown that many peptides which profoundly affect the endocrine and exocrine functions of the pancreas are localized to neurons. In the cat, such peptidergic nerves appear to innervate ganglia, islets and blood vessels of the pancreas, whereas their contributions to exocrine cells are minor. Our studies suggest that pancreatic ganglia represent one major site of action of the peptides and that, in addition, nerves containing the vasoactive intestinal polypeptide and gastrin/CCK-related peptides profoundly affect pancreatic blood flow and insulin secretion, respectively.

Animals

Classification of pancreatic endocrine tumours.

Conventional or electron microscopy can contribute significantly to the diagnosis of pancreatic endocrine tumours. These techniques, however, are of limited value for the classification of the tumours, which should take both clinical and morphological findings into account. In this paper a classification based on both the clinical features and on the content of peptide hormone-producing cells in the tumours is presented.

Adenoma, Islet Cell

Peptidergic and adrenergic innervation of pancreatic ganglia.

Immunocytochemical studies have revealed the presence of nerves showing vasoactive intestinal polypeptide (VIP), substance P (SP), enkephalin, and COOH-terminal gastrin/CCK immunoreactivity in the feline pancreas. Most peptide-containing nerve fibers are detected in ganglia of the pancreas, where they appear to innervate the ganglionic cell bodies. Adrenergic nerve fibers are also detected in pancreatic ganglia. The peptidergic and adrenergic nerves are only occasionally detected in the vicinity of pancreatic exocrine cells. VIP, SP, enkephalin, and gastrin/CCK exert strong effects on the secretory functions of the pancreas. Our results suggest that that ganglia may represent an important physiological site of action for these peptides and for norepinephrine.

Adrenergic Fibers

Distribution of gastrin and CCK cells in the rat gastrointestinal tract. Evidence for the occurrence of three distinct cell types storing COOH-terminal gastrin immunoreactivity.

Gastrin and cholecystokinin (CCH) cells of the rat gastrointestinal tract have been studied by immunocytochemistry and radioimmunoanalysis. With antisera directed against the COOH-terminal tetrapeptide sequence, which is common to gastrin and CCK, three distinct endocrine cell types are detected. One of the cell types predominates in the antrum, is scarce in the rest of the gut and corresponds to the gastrin cell. The second cell type is virtually confined to the duodenum and jejunum and corresponds to the CCK cell. The third cell type occurs disseminated in the small intestines, predominates in the ileum, and reacts with COOH-terminus-specific antisera only following diethylpyrocarbonate and not following formaldehyde fixation. It is possible that the third cell type stores a third member of the gastrin-CCK family of gut hormones.

Amino Acid Sequence

Ultrastructural and cytochemical studies on the cytodifferentiation of duodenal endocrine cells.

The development of cytodifferentiation of endocrine cells that produce the gastrointestinal hormones gastrin, cholecystokinin and secretin have been studied by a combined fluorescence-cytochemical, immunocytochemical and ultrastructural approach. The results show that, during development, several ultrastructurally distinct cell types exhibit COOH-terminal gastrin and cholecystokinin immunoreactivity. Furthermore, some cells simultaneously contain both gastrin- and cholecystokinin-specific antigenic determinants. Studies on the time course of development of gastrin and cholecystokinin cells, together with the above-mentioned data, suggest that gastrin cells may be converted into cholecystokinin cells in development. During this period, gastrin, cholecystokinin and secretin cells store the biogenic monoamine, 5-hydroxytryptamine a feature not displayed by the adult counter-parts of these cells. In the adult duodenum, characteristic enterochromaffin (EC) cells store 5-hydroxytryptamin for which, evidence for a possible hormonal role has been presented. Taken together, our data indicate that the differentiation of duodenal endocrine cells occurs in distinct steps, each involving a restriction in the biosynthetic repertoire of the cell.

Animals