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M Tigges

Publications and source records attributed to M Tigges.

At least 73 records · Page 4Linked to original sources

Types of degenerating geniculocortical axon terminals and their contribution to layer IV of area 17 in the squirrel monkey (Saimiri).

Radiofrequency lesions were made in the lateral geniculate nuclei of six squirrel monkeys. The resulting degenerating terminals and their postsynaptic structures in layer IV of area 17 were quantitatively categorized on photomontages covering large areas of neuropil. Two to five days after the lesion, numerous axon terminals were affected by a variety of degenerative changes, i.e., enlargement and distortion of synaptic vesicles, neurofilamentous hyperplasia, electron-lucent and electron-dense reactions. Based on the aggregation of electron-dense material beneath the postsynaptic membrane, the degenerating terminals were considered to be of the asymmetric type. Among the degenerating boutons were the largest axon endings that occur in layer IV. Three days postoperatively, degenerating boutons contributed an average of 16.2% to the total synapse population; five days postoperatively, the average had increased to 19.3%. The percentage of degenerating boutons on individual montages, however, amounted to as much as 29%. This amount probably reflects more closely the actual contribution of the geniculocortical fiber system to layer IV of striate cortex. The postsynaptic structure most frequently contacted by degenerating axon endings was the dendritic spine, followed by dendrites of small diameter. To account for the diversity of degenerative changes in the same fiber system, we offer the tentative suggestion that heterogeneously degenerating axon terminals arise from a heterogeneous population of neurons in the lateral geniculate nucleus, i.e., from magnocellular versus parvocellular laminae.

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Neurons with presynaptic somatic protrusions in the visual cortex of monkeys.

In layer IV of the visual cortex of two primate species three small neurons were found that gave rise to short presynaptic somatic protrusions. The protrusions contained a cluster of predominantly round vesicles and established asymmetrical synaptic contacts with the characteristics of Gray's type 1 terminals.

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Synthesis of Sindbis virus complementary DNA by avian myeloblastosis virus RNA-directed DNA polymerase.

Sindbis virus 42 S RNA was efficiently transcribed into complementary DNA (CDNA) by avian myeloblastosis virus alphabeta DNA polymerase using oligo- (dT) or single-stranded calf thymus DNA as primers. Both of the Sindbis virus cDNA products were able to protect 60% of 125I-labeled Sindbis virus RNA, at near equal weight ratios, from RNAase A and T1 digestion. Using hybridization kinetics, the Crt 1/2 value for hybridization of the calf thymus-primed cDNA product with excess Sindbis RNA was determined to be 1.8 9 10-2 mol . s . 1-1. Thes data demonstrate that the Sindbis virus cDNA products are relatively uniform representations of Sindbis virus RNA sequences.

Avian Myeloblastosis Virus↗

Complementary laminar terminations of afferents to area 17 originating in area 18 and in the lateral geniculate nucleus in squirrel monkey.

The projections from area 18 and the lateral geniculate nucleus onto area 17 of the squirrel monkey (Saimiri) were investigated with retrograde (horseradish peroxidase) and anterograde (tritiated proline) labelling techniques, and the (Fink-Heimer) silver impregnation method for degenerating axons and their terminals. The association fibers from area 18 terminated in all layers of area 17 except in layer IV and in the lower aspect of layer IIIc. The greatest number of terminals were in layers I, V and VI. The bulk of geniculocortical fibers terminated in layer IV and the lower aspect of layer IIIc; a minority of the geniculocortical fibers terminated in layer VI and the lower aspect of layer IIIb. Thus, the majority of fibers from the two sources investigated terminate in a complementary laminar fashion in area 17. The portion of area 17 on the lateral surface of the hemisphere, where the central visual field is represented, received a less dense projection from the geniculate nucleus than the striate cortex in the calcarine fissure, where the peripheral visual field is represented. Ocular dominance columns were not apparent in the striate cortex. No evidence was found that the lateral geniculate nucleus projects to area 18. The results of combined injections of horseradish peroxidase and tritiated proline in area 17 indicated a point-to-point reciprocity between area 17 and the ipsilateral lateral geniculate nucleus.

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An autoradiographic investigation of the subcortical visual system in chimpanzee.

Based on one adult chimpanzee monocularly injected with radioactive proline, retinofugal fibers were found to terminate bilaterally in the suprachiasmatic, pregeniculate, lateral geniculate, olivary, pretectal and lateral terminal nuclei, and the superior colliculi; the existence of a dorsal terminal nucleus of the accessory optic system is in doubt. In the ipsilateral geniculate nucleus, the fibers terminate in layers 2, 3 and 5; in the contralateral nucleus, they end in layers 1, 4 and 6. Midway through the geniculate nucleus, layers 3 and 4 split medially into two daughter layers each. In the superior colliculi, most of the retinal terminals are aggregated superficially in a band located in the stratum griseum superficiale. The contralateral band is interrupted by gaps; the ipsilateral band has fewer gaps, is slightly thicker and located more deeply. There is a limited second tier of terminals in the contralateral superficial gray.

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Presynaptic dendrite cells and two other classes of neurons in the superficial layers of the superior colliculus of the chimpanzee.

In the superior colliculus of chimpanzee, three classes of neurons can be identified by ultrastructural criteria. They are 1) marginal cells located in the stratum zonale, 2) collicular relay cells in the stratum griseum superficiale and 3) presynaptic dendrite (PSD) cells, i.e., neurons with presynaptic specializations in soma and/or dendrites. PSD cells are the smallest neurons in the stratum griseum superficiale; they have a relatively large, deeply infolded nucleus and a small rim of cytoplasm rich in free ribosomes. PSD cells are sufficiently different from the two other classes of neurons to be reliably identified at the ultrastructural level. They closely resemble presynaptic neurons as described in the lateral geniculate nucleus of other mammalian species. Presynaptic dendrites in continuity with PSD cells are rich in organelles, especially ribosomal cluster, and establish en passage contact with other dendrites. Another type of presynaptic dendrite, poor in organelles, except for bundles of microtubules, could not be traced back to its parent neuron. Homo- or heterogeneity of PSD cells is discussed. No amxon was traced from a PSD cell.

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Tilt analysis of pleomorphic vesicles in the superficial layers of the superior colliculus of Galago and chimpanzee.

Pleomorphic vesicles in two different classes of 'flat-vesicle-containing profiles'(F-profiles) from the superficial layers of the superior colliculus of Galago and chimpanzee were found to be disk-like in shape as revealed by tilt analysis. In both primates, presynaptic dendrites, postsynaptic F-profiles and exclusively presynaptic F-profiles cannot be distinguished on the basis of vesicle morphology. This lends to support to the notion that F-profiles originate from one type of neuron. Modifications of the basic disk shape are interpreted as manifestations of different stages in the life cycle of individual vesicles.

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