Viruslike particles in peripheral nerve of the house cricket.
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Biomedical subjects
Publications and source records attributed to J S Edwards.
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Central projections of sensory neurons from homeotic mutant appendages (Antennapedia) of Drosophila melanogaster were compared with those of wild-type antennae and wild-type legs by means of degeneration and cobalt backfilling methods. Sensory axons originating from wild-type thoracic legs terminate within the ventral ipsilateral half of the corresponding neuropile segment and do not project to the brain. Sensory fibers from the third antennal segment (AIII) of wild-type animals project into the ipsilateral antennal glomerulus (AG) and to a lesser extent into the contralateral AG, whereas those from the second antennal segment terminate principally within the ipsilateral posterior antennal center. The sensory terminals of femur, tibia, and tarsi of the homeotic leg show a distribution very similar to that of the homologous wild-type antennal segment AIII, differing to a minor degree only in the size and precise localization of terminals within the antennal glomeruli. No degenerating axons were evident in ultrastructural examination of neck connectives after removal of homeotic legs. It is thus very improbable that any sensory fibers of the homeotic leg project to normal leg projection areas in the thoracico-abdominal ganglion. Several alternative explanations are offered for the apparent retention of antennal specificity by axons from the transformed appendage.
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The paired abdominal cerci of the cricket Acheta domesticus are mechanosensory appendages which regenerate readily when amputated during larval life. Their peripherally-located sense cells form axons which project centrally as a purely sensory nerve to the terminal abdominal ganglion. In an attempt to analyze some of the factors which guide a regenerating sensory nerve to correct central terminations, implants of homologous, supernumerary terminal ganglia were made in cricket larvae and the host cerci amputated. The possibility that implants with multiple nerve stumps might release an attracting substance was considered. Surgical procedures used were (1) implant in posterior abdomen; (2) implant in posterior abdomen, ipsilateral to chronic cercal deprivation; (3) implant in mesothoracic leg socket, adjacent to heterotopically-transplanted regenerated cercus; (4) implant in posterior abdomen, ipsilateral host cercal motor nerve sectioned; (5) implant in posterior abdomen, ipsilateral margin of host terminal ganglion wounded. Results were determined after the adult molt, by conventional histology or by cobalt chloride filling of regenerated cercal nerves. In all procedures except (3) and (4), the regenerated afferent nerve bypassed the implant and terminated in the host terminal ganglion. In (3), the regenerated fibers from cercal grafts bypassed the implant; terminations were not found. In (4), some regenerated cercal axons connected with the implant and the majority terminated in the host ganglion. It is suggested that regenerating cercal afferents may depend in a facultative way on the cercal motor nerve as a pathway guide but there is as yet no clear evidence for a trophic influence from the central nervous system.
The effect deafferentation has on the morphology of giant interneurons was studied in the abdominal nervous system of crickets (Acheta domesticus). The morphology of four uniquely identified giant interneurons was exxamined by iontophoresing cobalt chloride into the neurons of interest. A major source of afferents for these interneurons consists of mechanoreceptors located on paired abdominal sensory appendages -- the cerci. Partial deafferentation of the giant interneurons was obtained by pinching off the cercus at hatching and maintaing the specimen in this deprived condition until adulthood. The interneurons of three groups of animals were examined; control specimens which were not treated surgically, unilaterally treated specimens which had a single cercus removed and bilaterally treated specimens which had both cerci removed. Two types of morphological changes were detected. (1) Chronic removal of a cercus was correlated with a reduction in length of dendrites ipsilateral to the ablated cercus; however, the general form of the dendritic branching pattern remained constant and recognizable. Two dendrites of a single neuron could be influenced independently if they were innervated by separate cerci. Thus deprivation did not have a generalized effect on growth of a neuron, rather it specifically influenced the dendrites deprived of afferents. (2) It was also observed that the projection of cercal sensory fibers in specimens reared with a single cercus differed from normal in that scattered fibers cross the midline in regions of the ganglion where none usually exist. It is suggested that modifications in the response properties of these deprived neurons are based on these two changes in morphology.
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Correlated anatomical and electrophysiological results demonstrate that sensory neurons, which differentiate de novo within the epidermis of regenerate abdominal cerci of crickets, enter the terminal ganglion and form functional central connections even when regeneration of the cerci is delayed through the greater part of postembryonic development. Stimulation of regenerate cerci evokes activity in giant interneurons which is normal by several physiological criteria.
Prenatal behavior develops in three phases: early rates, acceleration and maintenance, and deceleration to birth. Fetal activity occurs as discrete movements, bursts of activity, and prolonged activity. Four-hour samples were most representative of the daily rates of movement.
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