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[Main principles of the organization of the microcirculatory bed of the human greater omentum in early ontogenesis].

The formation process of the terminal blood bed of the greater omentum has been studied in 42 human fetuses 14--28-week-old. The main peculiarities of the greater omentum blood bed by the 14th week of development are: paired arrangement of the afferent and deferent blood vessels and loop-shaped type of capillary growth, that joining the arteriole and venule, lend the blood stream a maximally centralized character. In 15--16 weeks of the fetal development in the omentum another type of the vascular growth occurs, characterized with appearance of single angioblastic processes that branch off the apex of the capillary loops. As a result new capillaries form; they connect apices of the capillary loops, that in their turn make bases for developing a true capillary network. Together with this, presence in ontogenesis of an autochthonous way of capillary appearance is proved, their connection with the closed blood stream is followed. Distinguishing of the loop-shaped stage in the capillary growth determines certain difference between vasculogenesis in ontogenesis and the vascular growth at reparative regeneration, since the base for the latter is only the capillary growth by means of single angioblastic processes.

Gestational Age↗

Vasoactive intestinal polypeptide cerebrospinal fluid-contacting neurons of the monkey and cat spinal central canal.

Neurons immediately adjacent to the central canal were demonstrated in the cat and monkey to be immunoreactive for the peptide vasoactive intestinal polypeptide (VIP), by means of the peroxidase antiperoxidase method. Most of the cells were found in the thoracic and sacral segments, although a few were present at each level. The thoracic neurons were multipolar and either ependymal or subependymal; they usually had a large, thick dendrite that was oriented radially toward the center of the central canal; this dendrite penetrated through the ependymal layer and ended as a large, fringed podlike process (4-5-microns diameter) along the canal surface in contact with the cerebrospinal fluid (CSF). From the basal surface of the thoracic cell arose several small dendrites and a varicose axon. A few of the thoracic VIP neurons also contained two nuclei. In the sacral cord, the VIP neurons that lie along the central canal were of several types. They were round or multipolar and were either subependymal, within the ependyma, or supraependymal. Many had long dendrites and thin varicose axons stretching for long distances parallel to the cord surface. Other VIP neurons were smaller cells with short, highly branched, varicose processes. Most prominent in the sacral cord of the cat was a massive intricate network of intensely labelled processes extending in parallel along the canal surface. This network contained thick dendrites, highly varicose axons, and small neurons. Electron microscopy demonstrated VIP axons and varicosities containing small round clear vesicles and dense core vesicles. These processes were in desmosomal contact with ependymal cells and in direct contact with the CSF space. VIP processes were also found along the pial surface of the spinal cord at each level. In some cases single axons and bundles of axons arising from the area around the central canal could be traced to terminal fields along the ventral median fissure and the ventral and ventral lateral surface. In summary, the cat and monkey spinal canal is richly innervated by VIP neurons with elaborate processes in contact with the cerebrospinal fluid; further, some of these neurons may also extend axons to the ventral surface of the spinal cord. In these aspects, these cells resemble CSF-containing neurons previously described in lower species.

Animals↗

Effects of neurotrophic factors and cell substrates on the differentiation of a sympathoadrenal progenitor cell line.

The detailed spatial organization of cytoskeletal proteins in an immortalized sympathoadrenal precursor cell line, termed MAH, was studied when the cells were grown on cellular substrates and when treated with combinations of recombinant nerve growth factor, ciliary neurotrophic factor and basic fibroblast growth factor. In response to growth factors, MAH cells expressed appropriate distributions of phosphorylated and non-phosphorylated neurofilaments, and dendrite and axon specific microtubule associated proteins. Sequential stages of maturation and axon formation were identified as the MAH cells established neuronal polarity and developed into sympathetic-like neurons. Combinations of the growth factors initiated growth associated protein-43 expression in processes and promoted the MAH cells to acquire sympathetic-like neuron characteristics with long, thin processes that branched and often terminated in elaborate growth cones. When treated with the three trophic factors, 15% of the MAH cells differentiated into sympathetic-like neurons, in contrast to less than 10% when cultured with ciliary neurotrophic factor plus nerve growth factor. An enhanced cholinergic phenotype was evident in the MAH cells when grown with ciliary neurotrophic factor. MAH cells also expressed neuron-specific markers when co-cultured on enriched substrates of smooth muscle, fibroblasts or Schwann cells. The results indicate that this sympathoadrenal cell lineage, carrying the v-myc oncogene, can express appropriate cytoskeletal markers in the process of neuronal differentiation when induced by neurotrophic factors or by specific cellular conditions in vitro.

Adrenal Glands↗

Sequential change of carbohydrate antigen associated with differentiation of murine leukemia cells: i-I antigenic conversion and shifting of glycolipid synthesis.

Cell surface carbohydrate antigens and their metabolism were investigated during the course of differentiation of murine cultured leukemia cells (M1) into macrophage-like cells. The major glycolipids in undifferentiated M1 cells were of the ganglio series, with a small amount of lacto-series glycolipids. A novel branched structure was found as a tetraosylceramide of M1- cells. Upon differentiation, synthesis of lacto-series glycolipids was significantly enhanced and synthesis of globo-series glycolipids was newly induced but the ganglio-series synthesis was much reduced. Undifferentiated cells expressed only i antigen (i+I-Pk-); differentiated macrophage-like cells became I-antigen dominant and Pk-antigen positive (i+/-I+Pk+). The changes proceeded in two sequential steps: (i) an enhancement of lacto-series glycolipid synthesis associated with the conversion of i antigen to I antigen, and (ii) subsequent induction of globo-series glycolipid synthesis accompanied by the appearance of Pk antigen. The experimental system offers a clue for studies on the process of branching (i-to-I conversion) as well as the biological significance of three major glycolipids (globo-, lacto-, and ganglio-series) as markers of cell differentiation.

Animals↗

A stochastic model of brain cell differentiation in tissue culture.

The timing of cell differentiation can be controlled both by cellintrinsic mechanisms and by cell-extrinsic signals. Oligodendrocyte type-2 astrocyte progenitor cells are known to be the precursor cells that give rise to oligodendrocytes. When stimulated to divide by purified cortical astrocytes or by platelet-derived growth factor, these progenitor cells generate oligodendrocytes in vitro with a timing like that observed in vivo. The most widely accepted model of this process assumes a cell-intrinsic biological clock that resides in the progenitor cell. The intrinsic clock model originally proposed in 1986 remains as the dominant theoretical concept for the analysis of timed differentiation in this cell lineage. However, the results of a recent experimental study (Ibarrola et al., Developmental Biology, vol. 180, 1-21, 1996) are most consistent with the hypothesis that the propensity of a clone of dividing O-2A progenitor cells initially to generate at least one oligodendrocyte may be regulated by cell-intrinsic mechanisms, but that environmental signals regulate the extent of further oligodendrocyte generation. We propose a stochastic model of cell differentiation in culture to accommodate the most recent experimental findings. Our model is an age-dependent branching stochastic process with two types of cells. The model makes it possible to derive analytical expressions for the expected number of progenitor cells and of oligodendrocytes as functions of time. The model parameters were estimated by fitting these functions through data on the average (sample mean) number of both types of cells per colony at different time intervals from start of experiment. Using this method we provide a biologically meaningful interpretation of the observed pattern of oligodendrocyte generation in vitro and its modification in the presence of thyroid hormone.

Animals↗

Contributions of pathway and neuron to preferential motor reinnervation.

Motor axons regenerating after transection of mixed nerve preferentially reinnervate distal muscle branches, a process termed preferential motor reinnervation (PMR). Motor axon collaterals appear to enter both cutaneous and muscle Schwann cell tubes on a random basis. Double-labeling studies suggest that PMR is generated by pruning collaterals from cutaneous pathways while maintaining those in motor pathways (the "pruning hypothesis"). If all collaterals projecting to muscle are saved, then stimulation of regenerative sprouting should increase specificity by increasing the number of motoneurons with at least one collateral in a muscle pathway. In the current experiments, collateral sprouting is stimulated by crushing the nerve proximal to the repair site before suture, a maneuver that also conditions the neuron and predegenerates the distal pathway. Control experiments are performed to separate these effects from those of collateral generation. Experiments were performed on the rat femoral nerve and evaluated by exposing its terminal cutaneous and muscle branches to HRP or Fluoro-Gold. Crush proximal to the repair site increased motor axon collaterals at least fivefold and significantly increased the percentage of correctly projecting motoneurons, consistent with the pruning hypothesis. Conditioning the nerve with distal crushes before repair had no effect on specificity. A graft model was used to separate the effects of collateral generation and distal stump predegeneration. Previous crush of the proximal femoral nerve significantly increased the specificity of fresh graft reinnervation. Stimulation of regenerative collateral sprouting thus increased PMR, confirming the pruning hypothesis. However, this effect was overshadowed by the dramatic specificity with which predegenerated grafts were reinnervated by fresh uncrushed proximal axons. These unexpected effects of predegeneration on specificity could involve a variety of possible mechanisms and warrant further study because of their mechanistic and clinical implications.

Animals↗

Direct measurement of the phi(1020) leptonic branching ratio.

The process e(+)e(-)-->mu(+)mu(-) has been studied by the SND detector at the VEPP-2M e(+)e(-) collider in the phi(1020)-resonance energy region. The measured effective phi meson leptonic branching ratio B(phi-->l(+)l(-)) identical with square root of B(phi-->e(+)e(-))B(phi-->mu(+)mu(-))] = (2.89 +/- 0.10 +/- 0.06) x 10(-4) agrees well with the Particle Data Group value B(phi-->e(+)e(-)) = (2.91 +/- 0.07) x 10(-4), confirming mu-e universality. Without additional assumption of mu-e universality the branching ratio B(phi-->mu(+)mu(-)) = (2.87 +/- 0.20 +/- 0.14) x 10(-4) was obtained.

Journal Article↗

Targeted versus non-targeted DNA helicase activity of the RuvA and RuvB proteins of Escherichia coli.

The RuvA and RuvB proteins of Escherichia coli promote the branch migration of Holliday junctions in vitro. To understand the relationship between branch migration and the intrinsic 5'-->3' DNA helicase activity of RuvAB, the requirements and substrate specificity of the helicase reaction have been studied in more detail. We find that RuvAB-mediated DNA unwinding and branch migration reactions show similar requirements for Mg2+ and ATP and are inhibited to a similar extent by ADP and ATP gamma S (adenosine 5'-O-(3-thiotriphosphate)). The helicase activity, measured by the dissociation of a short fragment from circular single-stranded DNA, requires both RuvA and RuvB and is stimulated by subsaturating concentrations of single-strand binding protein (SSB). In contrast, saturating concentrations of SSB are inhibitory. Using substrates that contain a DNA junction, which permits the specific binding of RuvA, we find that the RuvA and RuvB proteins promote two types of helicase reactions: nonspecific reactions, which are sensitive to inhibition by stoichiometric amounts of SSB, and junction-targeted reactions, which are not inhibited by SSB. Using three-armed structures, we observe that junction-targeted reactions display a polarity and result in asymmetric product formation. Junction-specific binding and the subsequent initiation of DNA unwinding are likely to represent early steps in the process of branch migration.

Adenosine Triphosphatases↗

An associated process for the purification of immuno globulin G, catalase, superoxide dismutase and albumin from haemolysed human placenta blood.

The human placenta is a rich raw material for production of many biopharmaceutical products. Here we describe a co-purification process for the production of four different proteins from haemolysed human placenta blood: IgG, catalase (Cat), superoxide dismutase (Sod) and albumin (Alb). The process can be divided in two parts: the common steps and the specific separation techniques for each protein. The common steps are: extraction, haemoglobin precipitation, concentration/diafiltration and the first Q-Sepharose chromatography step. At this chromatography step the process is branched: while IgG and Cat were recovered in the flow-through, Sod and Alb were eluted separately. IgG and Cat were separated in a second Q-Sepharose chromatography step during which IgG was recovered in the flow-through, whereas Cat bound to the resin. IgG was purified by S-Sepharose chromatography, followed by selective precipitation with n-octanoic acid, yielding about 0.4 g of IgG per kg of placenta. Cat was eluted at the second Q-Sepharose chromatography step and was purified by Blue Sepharose chromatography. A total of 1.8 x 10(6) units of Cat were recovered/kg of placenta, with a specific activity of 45000 units/mg of protein. Sod was further purified by S-Sepharose and Phenyl-Sepharose chromatography steps and recovered in the non-adsorbed fractions. The yield of Sod was 2.1 x 10(5) units/kg of placenta, with a specific activity of 1194 units/mg of protein. Alb purification was followed by a combined process including thermocoagulation and treatment with activated charcoal. The final step was Phenyl-Sepharose chromatography. The process yielded 3.1 g of Alb/kg of placenta. The described methodology was designed to be easily scaled-up for industrial production.

Blood↗

Extracellular matrix molecules in development and regeneration of the leech CNS.

As neurons grow to their targets their processes elongate, branch and form specialized endings into which are inserted appropriate ion channels. Our aim has been to analyse the role of the extracellular matrix molecules laminin and tenascin in inducing growth and in determining the form and physiological properties of growing neurites. A preparation in which development and regeneration can be followed at the cellular and molecular level in the animal and in tissue culture is the central nervous system (CNS) of the leech. In leech extracellular matrix (ECM) both laminin and tenascin are present; the molecules are structurally similar but not identical to their vertebrate counterparts. Tenascin extracted from leech ECM shows a typical hexabrachial structure whereas laminin shows a typical cruciform structure in rotary shadowed preparations. Leech laminin purified by means of a monoclonal antibody is a molecule of about 1000 kDa, with a polypeptide composition of 340, 200, 180 and 160 kDa. Substrates that contain tenascin or laminin produce rapid and reliable outgrowth of neurites by identified cells. A remarkable finding is that the outgrowth pattern produced by an individual neuron depends in part on its identity, in part on the substrate upon which it is placed. For example, a Retzius cell grows in a quite different configuration and far more rapidly on laminin substrate than does another type of neuron containing the same transmitter (serotonin); and the pattern of outgrowth of the Retzius cell is different on laminin and on the plant lectin Con A (concanavalin A). Thus Con A induces the growth of processes that are shorter, thicker, more curved and contain fewer calcium channels than those grown on laminin. To determine whether laminin can also influence neurite outgrowth in the animal, immunocytological techniques have been used to follow its distribution in the extracellular matrix of normal, developing and regenerating leech CNS. In adult leeches neuronal processes in the CNS are not in contact with laminin which is confined to the surrounding extracellular matrix. In embryos however, laminin staining appears between ganglionic primordia along the pathways that neurons will follow. Similarly, after injury to the adult CNS, laminin accumulates at the very sites at which sprouting and regeneration begin. How the laminin becomes redistributed to appear in the region of injury has not yet been established. Together these findings suggest a key role for laminin and for other extracellular matrix molecules.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Polyaxonal amacrine cells of rabbit retina: PA2, PA3, and PA4 cells. Light and electron microscopic studies with a functional interpretation.

Polyaxonal (PA) amacrine cells are a new class of amacrine cell bearing one to six branching, axon-like processes that emerge from the cell body or dendritic trees within 50 microns of the cell body. These slender processes of uniform caliber branch at right angles and in many respects closely resemble the axons of Golgi type II cells found elsewhere in the brain. Of the four types of polyaxonal amacrine cell that we have recognized in rabbit retina, two have been described previously in brief communications. One of these, the PA1 amacrine cell with its interstitially displaced cell body, located in the inner plexiform layer (IPL), has been analyzed extensively in two preceding reports. This paper concerns PA2, PA3, and PA4 amacrine cells. Type 2 polyaxonal (PA2) amacrine cells, identified in Golgi preparations of whole-mounted rabbit retinas, have smaller cell bodies (9-14 microns) than the other three types and these are always displaced to the ganglion cell layer (GCL) or the inner border of the inner plexiform layer (IPL). The dendritic fields of PA2 cells are also smaller than those of other PA amacrine cells, and most of their sparse dendritic branching is narrowly stratified at the border of strata (S) 4 and 5. Some members of this more heterogeneous amacrine cell "type" are bistratified, however, and more highly branched with terminal branches rising to end in S1. PA2 amacrine cells bear a scattering of small dendritic spines and may also exhibit complex dendritic appendages arising at the ends of terminal branches in proximal regions of the dendritic tree. PA2 cells emit one to three axons from the proximal dendritic tree, and about half of the cells bear a single axon. Type 3 polyaxonal (PA3) amacrine cells resemble PA1 cells in the large size of their cells bodies (11-16 microns) and dendritic fields, but differ from the latter in placement of cell bodies, which is in the GCL, and dendritic and axonal stratification, which is multistratified, ranging from S4 to S1, with a concentration in S3 or S4 and a variable contribution to S1. PA3 cells differ from PA1 cells in several other respects, including dendritic branching which occurs at higher frequency and is biased toward temporal retina, and in characteristic bristling dendritic spines, clustered in the intermediate regions of the dendritic tree, that are longer, more variable in appearance and more tightly clustered than the small, uniform spines of PA1 cells that are clustered on proximal dendrites.(ABSTRACT TRUNCATED AT 400 WORDS)

Adaptation, Ocular↗

Immunocytochemical distribution of catecholamine-synthesizing neurons in the hypothalamus and pituitary gland of pigs: tyrosine hydroxylase and dopamine-beta-hydroxylase.

This study describes the distribution of catecholaminergic neurons in the hypothalamus and the pituitary gland of the domestic pig, Sus scrofa, an animal that is widely used as an experimental model of human physiology in addition to its worldwide agricultural importance. Hypothalamic catecholamine neurons were identified by immunocytochemical staining for the presence of the catecholamine synthesizing enzymes, tyrosine hydroxylase and dopamine-beta-hydroxylase. Tyrosine hydroxylase-immunoreactive perikarya were observed in the periventricular region throughout the extent of the third ventricle, the anterior and retrochiasmatic divisions of the supraoptic nucleus, the suprachiasmatic nucleus, the ventral and dorsolateral regions of the paraventricular nucleus and adjacent dorsal hypothalamus, the ventrolateral arcuate nucleus, and the posterior hypothalamus. Perikarya ranged from parvicellular (10-15 microns) to magnocellular (25-50 microns) and were of multiple shapes (rounded, fusiform, triangular, or multipolar) and generally had two to five processes with branched arborization. No dopamine-beta-hydroxylase immunoreactive perikarya were observed within the hypothalamus or in the adjacent basal forebrain structures. Both tyrosine hydroxylase- and dopamine-beta-hydroxylase-immunoreactive fibers and punctate varicosities were observed throughout areas containing tyrosine hydroxylase perikarya, but dopamine-beta-hydroxylase immunoreactivity was very sparse within the median eminence. Within the pituitary gland, only tyrosine hydroxylase fibers, and not dopamine-beta-hydroxylase immunoreactive fibers, were located throughout the neurohypophyseal tract and within the posterior pituitary in both pars intermedia and pars nervosa regions. Generally, the location and patterns of both catecholamine-synthesizing enzymes were similar to those reported for other mammalian species except for the absence of the A15 dorsal group and the very sparse dopamine-beta-hydroxylase immunoreactive fibers and varicosities in the median eminence in the pig. These findings provide an initial framework for elucidating behavioral and neuroendocrine species differences with regard to catecholamine neurotransmitters.

Animals↗

Ultrastructural and immunohistological study of immunoblastic sarcoma developing in child with immunoblastic lymphadenopathy.

The first case of immunoblastic lymphadenopathy developing in a child which progressed to immunoblastic sarcoma is reported. The sarcoma cells showed light and electron microscopic features of transformed lymphocytes (immunoblasts) but it was not possible to establish their B-cell origin using a peroxidase-antiperoxidase technique for the demonstration of intracellular immunoglobulins. In the affected lymph nodes there was marked proliferation of reticulum and endothelial cells both of which contained numerous intranuclear inclusions which may be of viral origin. Ultrastructural studies suggest that the amorphous eosinophilic interstitial material, an important diagnostic morphological feature of immunoblastic lymphadenopahy, results from the oblique sectioning of the elongated and branching cytoplasmic processes of reticulum cells. It is postulated that in immunoblastic lymphadenopathy the proliferation of reticulum and endothelial cells may be the primary event, perhaps stimulated by viral infection and that the intense lymphocytic and plasmacytic infiltration and sarcomatous transformation occur as secondary phenomena.

Child↗

Ultrastructural differentiation of stromal and vascular components in early macaque placental villi.

In this study, closely staged placental villi from rhesus monkeys between 19 and 60 days of gestation were used to examine 1) the origin of endothelial cells and the mechanism of angiogenesis in villi; 2) the origin of placental macrophages (Hofbauer cells), and 3) the origin of the reticular cells that compartmentalize the stroma. The results did not support the concept that early stromal cells in the villi were derived by in situ delamination from cytotrophoblast. The extraembryonic mesodermal (mesenchymal) cells at the earliest of ages examined contained considerable granular ER. These cells organized into groups and formed primitive intercellular junctions, thus giving rise to the early angioblastic masses. The angioblastic masses were cellular, not syncytial; and lumen formation was not the result of intracellular vacuolization, but rather was the result of the acquisition of junctionally defined spaces. The earliest capillaries lacked intravascular blood cells and a basal lamina. Later, blood cells were evident in the lumina. At about 45-50 days of gestation, fetal capillaries began to indent the basal surface of the trophoblast. The basal lamina of the fetal capillaries still had not developed by 60 days of gestation. Between 35 and 40 days of gestation, significant morphological changes took place in the villous stroma. Evidence was obtained that the mesenchymal cells differentiated into the reticular cells that subdivided the stroma into fibril-rich and fibril-free compartments. At the same time, Hofbauer cells were observed for the first time; they occupied the fibril-free regions of the stroma. We did not observe any clear indications of intermediate stages of differentiation between other stromal cell types and Hofbauer cells. It is suggested that placental macrophages may have an origin independent of other stromal types; one possibility is that they are derived from blood monocytes as in other tissues. It is further suggested that the activities of the macrophages and reticular cells may be important in remodeling the extracellular matrix and may be related to the process of branching morphogenesis in the villi.

Animals↗

Intrinsic neuronal determinants that promote axonal sprouting and elongation.

Nerve processes elongate, branch and form synaptic contacts in a highly regulated and specific manner. Long-distance axon elongation is restricted to the main phase of axon formation during development, but can be reinduced upon lesions in the adult (regeneration). It correlates with the expression of defined genes, including proteins involved in signalling (e.g. src, NCAM, integrins), transcription factors (e.g. c-jun) and structural proteins (e.g. actin and tubulin isoforms). Activation of an exon elongation program may require bcl-2. The formation and growth of local branches (sprouting) is controlled by mechanisms in the target region. In addition, the expression of growth-associated proteins such as GAP-43 and CAP-23 in neurons lowers the threshold for nerve sprouting and potentiates its vigour. Recent studies suggest that nerve sprouting and long-distance elongation depend on the expression of different intrinsic components in neurons. One implication of these findings is that the differential expression of genes facilitating local branching may affect structural plasticity in the intact adult nervous system.

Animals↗

Characterization and quantification of peptidergic amacrine cells in the turtle retina: enkephalin, neurotensin, and glucagon.

Immunocytochemical methods were used for selective labeling and characterization of amacrine cells of the turtle (Pseudemys scripta elegans) retina which contained neuropeptide-like immunoreactivity (leu-enkephalin, glucagon, and neurotensin). Processes of amacrine cells arborized in specific strata of the inner plexiform layer (IPL). Different strata were defined in relation to the boundaries of the IPL. Zero represented the strata nearest the inner nuclear layer and 100 represented the strata nearest the ganglion cells. Antisera directed against leu-enkephalin labeled approximately 7,300 amacrine cells in a single turtle retina which were concentrated in the region of the visual streak and decreased in density toward the periphery. In retinal regions outside the visual streak the labeled neurons were similar in size and shape with dendritic arbors which lacked a particular orientation. In contrast, in the visual streak, there were particular neurons which were labeled with enkephalin antiserum which had elongated dendritic arbors that ran parallel to the streak. Both types of amacrine cells with enkephalinergic immunoreactivity sent their dendrites into the 0-20 region and the 65-100 region of the IPL. Antisera directed against glucagon labeled approximately 2,500 amacrine cells in a single turtle retina. These cells were concentrated in areas near the visual streak. Amacrine cells labeled with glucagon antiserum had dendritic arbors which were asymmetrically skewed toward one end of the cell and ramified in the 0-20 strata with sparse projections at the 40 and 80 strata of the IPL. Antisera directed against neurotensin labeled 12,800 amacrine cells in a single turtle retina. These cells were concentrated in the region of the visual streak. Two distinct amacrine cell types were labeled selectively. One type had a large, vertically oriented cell body (10 X 14 micron) which gave rise to a single 2-micron-thick process that branched and ramified within the 45-70 strata. The other amacrine cell type with neurotensin-like immunoreactivity had a smaller cell body (8 micron) that sent numerous thin dendrites into the same 45-70 strata. The present results indicated that various neuropeptides were present in amacrine cells of the turtle retina and that a specific neuropeptide could be found in more than one anatomical type of amacrine cell. Each anatomical type of amacrine cell had a unique dendritic arborization which ramified within particular strata within the IPL.

Animals↗

Microtubule-associated protein 2 (MAP2) in Purkinje cell dendrites: evidence that factors other than binding to microtubules are involved in determining its cytoplasmic distribution.

We have studied the distribution of microtubule-associated protein 2 (MAP2) in the Purkinje cell dendrites of rats whose cerebella were exposed to X-irradiation during the second postnatal week. The Purkinje cells of such animals have abnormally elongated apical primary processes that branch in the other molecular layer rather than close to the cell body as in normal tissue. The results show that in these distorted dendrites the MAP2 distribution is "shifted" distally relative to the normal pattern, in which MAP2 is distributed evenly throughout the dendritic tree. Tubulin and other microtubule-associated proteins, such as MAP1, are not affected and remain evenly distributed throughout the dendritic tree despite the anatomical distortion. We conclude that the distribution of MAP2 in Purkinje cells is not determined solely by its binding to tubulin. Other factors must be involved and these appear to be related to dendritic morphology and possibly to branching.

Animals↗

Neuropeptide Y immunoreactivity identifies a group of gamma-type retinal ganglion cells in the cat.

Ganglion cells within the cat retina have been traditionally grouped by morphological criteria into three major classes: alpha, beta, and gamma. The gamma-type cells have been least well characterized, but the available evidence indicates that this class comprises a relatively heterogeneous population of neurons. In the present study we demonstrate that an antibody for neuropeptide Y (NPY) recognizes a subpopulation of about 2,000 gamma-type ganglion cells. The NPY-immunoreactive (IR) neurons project to the superior colliculus and to the C layers of the lateral geniculate nucleus as demonstrated by retrograde labeling with fluorescent tracers (fluorogold or rhodamine latex microspheres). Virtually all of these cells disappear following lesions of the optic nerve. The NPY-IR ganglion cells were identified as gamma cells on the basis of soma size and dendritic branching patterns. The somas of these neurons are small (8-22 microns in diameter), and each cell is characterized by sparsely branching dendritic processes, usually extending into the middle third of the inner plexiform layer, the physiologically defined ON sublamina. These neurons are distributed across the entire retina, with the highest density at the area centralis. Within local regions of the retina, however, there was no indication that the NPY-IR gamma cells are arrayed in a regular mosaic pattern. These results provide the first evidence that the gamma class of ganglion cells of the cat retina can be subdivided on the basis of immunocytochemical properties.

Animals↗