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Biomedical subjects

W Singer

Publications and source records attributed to W Singer.

At least 271 records · Page 15Linked to original sources

Fine structure of adrenal cortex in ectopic ACTH syndrome.

A 49-year-old man with pancreatic adenocarcinoma, suggestive of islet cell origin, showed clinical and biochemical features of ectopic ACTH syndrome and underwent bilateral adrenalectomy. Light microscopy revealed adrenocortical compact cell hyperplasia and lipid depletion. The zona glomerulosa was detected in small foci and fasciculata cells extended up to the capsule. Electron microscopy disclosed enlargement of adrenocortical cells, massive SER accumulation, RER increase, lipid depletion, prominence of the Golgi apparatus and development of complex interdigitations between closely apposed cell membranes. These changes were attributed to the stimulative effect of ACTH discharged from the non-pituitary tumor. Mitochondria exhibited enlargement, pleomorphism and cavitation. Most of the adrenocortical cells contained mitochondria with vesicular cristae--a characteristic feature of fasciculata cells. In a few cells, under the capsule, some mitochondria possessed lamellar cristae. Gradual transformation to the vesicular type was, however, apparent indicating that mitochondria are not rigidly constant structures.

Adenocarcinoma↗

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↗

Unusually large receptive fields in cats with restricted visual experience.

The receptive fields of striate cortex neurons were analyzed in cats which had restricted or no visual experience. Two groups of animals were investigated: 1. cats which were deprived from contour vision over variable periods of time up to 1 year and 2. kittens whose visual experience was restricted to vertically oriented gratings of constant spatial frequency which moved unidirectionally at a fixed distance in front of the restrained animals. In both preparations exceedingly large receptive fields (up to 20 degrees in diameter) were encountered, especially in cells located in supragranular layers. These large receptive fields never extended over more than 2 degrees into the ipsilateral hemifield. Their sensitivity profile was frequently asymmetric and contained discontinuities. Many of these large receptive fields consisted of several excitatory subregions which were separated from each other by as much as 15 degrees. Often but not always the most sensitive area was located where the retinotopic map predicted the receptive field center. The orientation and direction selectivity and also the angular separation of such multiple excitatory bands often matched precisely the orientation, direction and spatial frequency of the experienced moving grating. In other fields with multiple excitatory subregions such a correspondence could not be established; the various subregions could even have different orientation and direction selectivities. From these unconventional receptive fields it is concluded that the function of cat striate cortex is not confined to a point by point analysis of the visual field in retinotopically organized and functionally isolated columns.

Animals↗

The effect of reticular stimulation on spontaneous and evoked activity in the cat visual cortex.

The mesencephalic reticular formation (MRF) of cats anesthetized with N2O was stimulated electrically, and the effects of this stimulation on activity in the striate cortex were studied. The variations of intra- and extracellularly recorded unit activity and the changes in the extracellular potassium concentration were investigated. At all levels of analysis the prevailing effect of MRF stimulation was facilitation. Half of the cells reacted with brief bursts of activity to reticular stimuli. A decrease of resting activity was rare. The cells activated by MRF stimulation had in common: (1) to show a high degree of excitatory convergence from extrinsic and intrinsic afferents, (2) to possess often corticofugal axons, and (3) to have preferentially complex receptive fields. In the large majority of cortical cells MRF stimulation facilitated responses evoked by stimulation of the optic radiation or by light stimuli. This facilitation could lead to a loss of orientation and direction selectivity. Reticular activation further led to a large increase of the extracellular potassium concentration, whereas stimulation of specific afferents led to a decrease. It is concluded that these phenomena are not merely a consequence of altered thalamic transmission, but are caused by a projection system which is organized in parallel to the specific projection and exerts a direct control over cortical excitability. The mechanism for this control appears to be a slight and rather unselective depolarization of most neurons. If disinhibitory processes are involved at all, their role is much less prominent than at the thalamic level. The functional implications of such an unselective but powerful modulation of cortical excitability are discussed in respect to corollary reticular activation as it occurs with rapid eye movements.

Animals↗

Receptive-field properties and neuronal connectivity in striate and parastriate cortex of contour-deprived cats.

An attempt was made to relate the alterations of cortical receptive fields as they result from binocular visual deprivation to changes in afferent, intrinsic, and efferent connections of the striate and parastriate cortex. The experiments were performed in cats aged at least 1 jr with their eyelids sutured closed from birth. The results of the receptive-field analysis in A17 confirmed the reduction of light-responsive cells, the occasional incongruity of receptive-field properties in the two eyes, and to some extent also the loss of orientation and direction selectivity as reported previously. Other properties common to numerous deprived receptive fields were the lack of sharp inhibitory sidebands and the sometimes exceedingly large size of the receptive fields. Qualitatively as well as quantitatively, similar alterations were observed in area 18. A rather high percentage of cells in both areas had, however, preserved at least some orientation preference, and a few receptive fields had tuning properties comparable to those in normal cats. The ability of area 18 cells in normal cats to respond to much higher stimulus velocities than area 17 cells was not influenced by deprivation. The results obtained with electrical stimulation suggest two main deprivation effects: 1) A marked decrease in the safety factor of retinothalamic and thalamocortical transmission. 2) A clear decrease in efficiency of intracortical inhibition. But the electrical stimulation data also show that none of the basic principles of afferent, intrinsic, and efferent connectivity is lost or changed by deprivation. The conduction velocities in the subcortical afferents and the differentiation of the afferents to areas 17 and 18 into slow- and fast-conducting projection systems remain unaltered. Intrinsic excitatory connections remain functional; this is also true for the disynaptic inhibitory pathways activated preferentially by the fast-conducting thalamocortical projection. The laminar distribution of cells with monosynaptic versus polsynaptic excitatory connections is similar to that in normal cats. Neurons with corticofugal axons remain functionally connected and show the same connectivity pattern as those in normal cats. The nonspecific activation system from the mesencephalic reticular formation also remains functioning both at the thalamic and the cortical level. We conclude from these and several other observations that most, if not all, afferent, intrinsic, and efferent connections of areas 17 and 18 are specified from birth and depend only little on visual experience. This predetermined structural plan, however, allows for some freedom in the domain of orientation tuning, binocular correspondence, and retinotopy which is specified only when visual experience is possible.

Animals↗

Organization of cat striate cortex: a correlation of receptive-field properties with afferent and efferent connections.

The purposes of this study were 1) to relate the receptive-field characteristics of area 17 cells to their afferent and efferent connections, and 2) to obtain quantitative data from area 17 neurons for later comparison with area 18 cells. Intra- and extracellular recordings were obtained in paralyzed preparations which were anesthetized with nitrous oxide. The connectivities of the recorded cells were determined from responses to electrical stimulation of afferent and efferent pathways. In parallel to the classification of units as simple and complex cells, the receptive fields were grouped in four classes according to the spatial arrangement of on- and off-areas; class I, fields with exclusive on- or off-areas; class II, fields with spatially separate on- and off-areas; class III, fields with mixed on-off areas; class IV, fields which could not be mapped with stationary stimuli. The results from electrical stimulation suggest two major classes of cells: cells in the first group are driven mainly or exclusively by LGN afferents. They rarely receive additional excitation from intrinsic or callosal afferents and rarely possess corticofugal axons. Cells in the second group receive either converging inputs from LGN afferents and further intrinsic afferents or only from intrinsic afferents. They frequently received additional input from callosum and from recurrent collaterals of corticofugal axons. They project subcortically more often than cells in the first group. Cells in both groups can be driven either by X- or Y-type afferents. Cells in the first group have mainly class I and class II fields or simple fields, whereas the neurons in the second group have mainly class III and class IV fields or complex fields. Thus, simple and complex cells differ in their connectivity patterns, but the discriminative parameter is neither the selective connection to the X- or the Y-system nor, in a strict sense, the synaptic distance from subcortical input. From the combined consideration of receptive-field properties and connectivity patterns it is concluded that class I and class II cells or simple cells are concerned mainly with the primary analysis of subcortical activity, whereas class III and class IV cells or complex cells perform a correlative analysis between highly convergent activity from extrinsic and intrinsic afferents.

Animals↗

Cat parastriate cortex: a primary or secondary visual area.

The purpose of this study was to determine to what extent the cat parastriate cortex processes afferent geniculate activity in a way similar to that in area 17. The area explored was located on the lateral gyrus between the Horsley-Clarke coordinates A1 to 4 and L3 to 4. The receptive-field properties of area 18 cells and their responses to electrical stimulation of afferent and efferent pathways were measured with the same methods as described previously in area 17. Mutual correlations among these items were calculated and compared with the respective data from area 17. The results of this correlative analysis revealed numerous similarities between the two areas with regard to their afferent and efferent connections and their intrinsic organization. Consequently, the structure of the receptive fields and their numerical distribution resembled those in area 17. The same was true for the correlations between receptive-field parameters and afferent and efferent connectivity. The main differences were that area 18 cells had larger receptive fields and responded to considerably higher stimulus velocities. It is suggest-d that these differences are caused by the fact that area 18 receives subcortical afferents of the Y-type, whereas the dominant input to area 17 comes from the X-system. It is concluded that the area investigated in this study is organized in parallel to area 17 and deals with other aspects of visual information than area 17.

Animals↗