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B N Christensen

Publications and source records attributed to B N Christensen.

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The relationship between some measures of synaptic ultrastructure as a function of distance from the soma on lamprey reticulospinal neurons.

Synaptic junctions located on the dendrites of lamprey (Petromyzon marinus) reticulospinal neurons labelled with intracellularly-injected horseradish peroxidase were studied. The normal ultrastructure of the synaptic junctions was defined and several quantitative measures made from each junction in order to test the hypothesis that distally-located synapses are ultrastructurally different from those located at proximal dendritic sites. A total of 820 contacts from one neuron and 279 from a second neuron ranging from 20 to 340 microns from the soma were quantified. The vast majority of the presynaptic endings contained round, clear-cored vesicles and formed an asymmetrical membrane differentiation with the postsynaptic dendrite. A small fraction of the population contained flattened or pleomorphic vesicles and these synapses were equally distributed with respect to distance from the soma. Many of the terminals contained a few large dark- and clear-cored vesicles. Four quantitative measures of each synaptic contact were made. These included vesicle number, length of differentiated membrane, vesicle area and terminal area. Four ratios relating the different quantitative measures were also calculated. Each ratio or measurement from the synaptic junctions was plotted as a function of distance from the soma to determine if differences existed at any distance. It was found that synaptic junctions are uniformly similar and that distal junctions did not differ significantly (P greater than 0.05) from those at proximal dendritic sites. It is concluded that if distal synapses do compensate for their remote location they do this is some other way, possibly by increasing the number of synaptic contacts made by each presynaptic axon.

Animals

Estimates of cable parameters in lamprey spinal cord neurones.

1. Two micro-electrodes were used to penetrate giant interneurones in the isolated lamprey spinal cord. A brief (50--100 microsec) current pulse was applied to one electrode while the other recorded the voltage transient response. 2. A formal analysis of the voltage transient was achieved by the simplifying reduction of each neurone. Somas were treated as a parallel combination of resistance and capacitance. Dendrite trees were reduced to an equivalent cylinder (Rall, 1959). 3. The voltage transients were analysed according to the procedure suggested by Jack & Redman (1971b) to estimate the cable parameters governing the passive propagation of transmembrane potentials. Membrane time constant (tau m), dendritic to soma conductance ratio (rho 00), and electrotonic length (L) of the equivalent cylinder were estimated from these data. 4. In thirty-two interneurones it was possible to determine the membrane time constant, but rho 00 and L were determined in only twenty-two. 5. For the twenty-two neurones in which all cable parameters were estimated, the electrotonic length of the equivalent cylinder was similar to that found for cat spinal motoneurones (1--2 space constants). 6. Simulations of the voltage transient using the Rall model of the motoneurone as developed by Jack & Redman (1971b) resulted in a voltage response which closely ditted the experimental data. 7. These results suggest that the Rall model of the motoneurone accurately describes the propagation of passive transmembrane potentials in lamprey spinal cord neurones. It is further concluded that the time constant for soma and dendritic membrane is similar in these neurones.

Animals

Localization of synaptic input on dendrites of a lamprey spinal cord neurone from physiological measurements of membrane properties.

1. Composite excitatory post-synaptic potentials (e.p.s.p.s) resulting from electrotonic and chemical synaptic junctions were recorded from eighteen interneurones following stimulation of the I2 burster axon in the isolated lamprey spinal cord. 2. In each cell, the half-width of the electrotonic e.p.s.p. was measured and used, together with the cable parameters estimated for the same neurone, to locate the position of synaptic contact made by the I2 axon on the dendrites of the interneurone. The synaptic location ranged from 0.05 to 1.35 space constants with a mean of 0.46. 3. The synaptic potential was simulated using the Rall model of the neurone. When compared with the experimentally recorded e.p.s.p. with the same half-width, the rise-time of the simulated synaptic potential was found to be faster. By changing the value of synaptic distance and/or synaptic current duration the half-width, rise-time, and decay of the simulated synaptic potential fit closely the experimental e.p.s.p. The range of synaptic distance estimated from the simulation decreased considerably (0.2--0.7 space constants; mean 0.52). 4. Direct comparison of synaptic location estimated from histological tracings of dendritic trees from these same cells injected with horseradish peroxidase compared favourably with synaptic location estimated from the simulations. 5. These results support the hypothesis that functionally similar presynaptic axons make synaptic connexions at the same electrotonic distance from the soma on functionally similar post-synaptic cells. This occurs in the face of large variations in physical distance for these same synaptic contacts.

Animals

Morphological correlates of synaptic transmission in lamprey spinal cord.

The dye Procion brown was used to identify in the light and electron microscope, synaptic contacts made between monosynaptically coupled neurons in the lamprey spinal cord whose synaptic interaction had been recorded. Synaptic contacts were made on different dendrites of the postsynaptic cell at different distances from the soma. Some of the contacts were made on dentritic spines and some on the smooth shaft of the dentrites. Serial sections through synaptic contacts made on dendritic processess of the postsynaptic cells were used for three-dimensional reconstruction of the synapses using computer graphics techniques. The computer reconstructions and detailed examination of the serial EM micrographs revealed the large proliferation of membrane involved in making these en passant synapses as well as the morphological changes due to stimulation of the presynaptic axon. These changes include depletion of synaptic vesicles and formation of complex vesicles and synaptic cisternae. Besides chemical synaptic contacts, four electrotonic contacts were located, confirming the mixed electrochemical synaptic response recorded from the postsynaptic cell. The mean quantum content was estimated and compared with the estimate of the available transmitter pool, assuming the quantal release hypothesis applies at these synapses. The total transmitter pool was estimated by counting all synaptic vesicles in all synaptic contacts. It was estimated that about 6% of the total transmitter pool is available for release at these synapses. This compares with less than 1% at the neuromuscular junction and about 20% at sympathetic synapses. These results support the hypothesis that synaptic vesicles may be recycled as described by Heuser and Reese (22) at the neuromuscular junction. Ongoing studies are investigating the effect on a variety of synaptic junctions to stimulation for different periods of time of presynaptic axons. The methods described in this study can also be used to test the models of synaptic interaction on dendritic trees described by Rall (39) and Jack and Redman (24).

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