Search PubMed⌕ Search

Biomedical subjects

G L Gerstein

Publications and source records attributed to G L Gerstein.

At least 73 records · Page 4Linked to original sources

Proprioceptive fields of crayfish claw motor neurons.

1. Action potentials of crayfish claw motor neurons were recorded during both imposed constant-velocity displacements and imposed alternating sequences of opening and closing step movements of the dactyl. 2. Peristimulus time (PST) histograms show that the firing probabilities of two neurons, the opener inhibitor (OI) and the slow closer excitor (CE) consistently increased during opening ramp movements and declined during closing ramp movements. Hyperpolarizing synaptic potentials were observed in both cells during closing movements. 3. The proprioceptive field organizations of OI and CE were analyzed with response planes and contour planes. Each PST histogram in a plane displays the firing probability of the neuron as a function of time following step displacements at a given position. A relatively uniform early primary response followed each successive opening step. The probability of occurrence of later activity, when present, usually became more pronounced as the joint angle increased. Often both cells were silent during closing steps; when the cells were active, their firing probabilities were highest at the more open joint angles. 4. When both OI and CE were active, their spike trains were usually temporally correlated. 5. The other claw efferents did not respond to imposed movements in a consistent manner. When CE was active it was most likely to respond to closing movements near the closed position. 6. It is concluded that OI and CE are strongly and similarly influenced by proprioceptive reflexes. The responses of the two cells to imposed dactyl movements change as a function of joint angle, time after movement, and direction of movement.

Animals↗

Interactions among an ensemble of chordotonal organ receptors and motor neurons of the crayfish claw.

1. Action potentials of crayfish propodite-dactyl (PD) chordotonal organ receptors and two claw motor neurons, the opener inhibitor (OI) and slow closer excitor CE) were simultaneously monitored during imposed step and ramp movements of the dactyl or while the dactyl was held at various positions. 2. The activities of the cells during imposed displacements were analyzed using peristimulus time histograms and response and contour planes. The proprioceptive fields (PFs) of individual receptors resemble components of the more complex motor neuron PFs. Some receptors are briefly active after each successive opening step, while others do not respond to steps near the closed position but respond as the joint angle increases, becoming active when the claw is held open. Another type of receptor responds to closing movements. 3. Interactions among the various types of receptors and the two motor neurons were detected and analyzed by various statistical methods and intracellular recording techniques. The results indicate that receptors activated during opening movements and when the dactyl is held at open positions excite OI and CE via divergent functional connections. The efficacies of the connections made by a receptor may differ. Receptors activated by closing movements produce hyperpolarizing synaptic potentials in both efferents, possible directly or via interneurons. 4. It is concluded that several types of chordotonal organ receptors form an ensemble of parallel input channels, which modulates the activities of OI and CE and contributes to the generation of the spatial-temporal nonuniformities of their proprioceptive reflex responses.

Animals↗

Identification of functionally related neural assemblies.

Present-day techniques of multiple-electrode together with computer-aided separation of impulses arising from different neurons permit the simultaneous recording of nerve-impulse timings in sets of neurons exceeding 20 in number. This in turn makes it feasible to search for functional groups of neurons, defined as subsets that tend to fire in near simultaneity significantly more often than would independent neurons at corresponding mean rates. A statistical technique is described that permits the detection and identification of such functional groups. The method is accretional, based on identification of associated neurons through interative application of a significance test on multiple coincidences of neuronal firings within an observational window. Examples of the operation of the method and indications as to its sensitivity are furnished through computer simulations of neural networks. The entire algorithm may be used as a screening technique to select smaller groups of neurons for cross-correlational and related finer-grained temporal analyses, or it may be used in its own right to detect and characterize functional groups that are not distinguishable by other statistical procedures.

Action Potentials↗

Simple striate neurons in the cat. I. Comparison of responses to moving and stationary stimuli.

1. Peristimulus time (PST) histograms of simple striate responses to static presentations of narrow bright and dark bars in an array of receptive-field (RF) positions have demonstrated one to four response regions with distinct response properties. 2. There is a high degree of correlation of these responses with PST histograms of responses to the same stimuli moving smoothly ("dynamic" stimuli) in a direction perpendicular to the long axis of the RF. 3. Trailing responses to smoothly moving bar stimuli usually occur as the stimulus leaves an apparently inhibitory (for that stimulus) RF region. 4. Spatially leading responses to smoothly moving stimuli occur just as a bar stimulus enters an excitatory RF region, and may be based on certain gradient-detecting properties of neurons. 5. Close agreement in peak firing rates and in positions of responses for statically and dynamically elicited responses in units that are not strongly directionally selective suggests the possibility that in most respects smooth movement responses may be the sequential linear superposition of static responses. A quantitative superposition of static responses from two units supports this conclusion. 6. The dependence on a steady background for sustained responses to static presentation of dark bars illustrates the significance of steady illumination in the RF and raises questions about the efficacy of using edge stimuli as elemental visual probes.

Animals↗

Simple striate neurons in the cat. II. Mechanisms underlying directional asymmetry and directional selectivity.

1. Directionally asymmetric (DA) units respond preferentially to one direction of image movement. If that preferred direction is independent of stimulus contrast then the DA unit is considered directionally selective (DS). We have analyzed receptive-field (RF) properties of striate units with these properties by presenting bar-shaped stimuli that are moved in a stepwise sequence. Short interstimulus durations for certain ranges of step size elicit DA responses similar to those from smooth movement, while still allowing identification of on- and off-components of the response. 2. We have been able to isolate three mechanisms underlying DA and DS. The simplest, superposition, explains the dependence of preferred direction on stimulus contrast found in some DA units. It relies completely on asymmetries in static RF regions to provide an advantage for one direction of image motion by means of the simultaneity of image elements leaving an apparently inhibitory region and entering an excitatory one. 3. For all DA and DS units we have encountered forward inhibition of otherwise excitatory influences that reduces the responsiveness in the antipreferred direction. The spatial specificity of inhibitory target RF regions and the nonlinearity of the effect suggest that lateral inhibition may be transmitted via sequence-detecting subunits. 4. Units that do not show superposition in the preferred direction exhibit forward facilitation of responses in a nonlinear and target-specific way which suggests that facilitation may also be transmitted via sequence-detecting subunits. 5. Each of these mechanisms depends on short-lived influences that are laterally transmitted between 0.125 and 0.5 degrees in visual space. These spatial and temporal values are appropriate for the analysis of smooth movement by the visual system. 6. Stepwise movement sequences using dark bars on a bright background demonstrate for some DA units exactly the same mechanisms as demonstrated using bright-bar sequences in other units or, in the case of DS units, in the same units. In such DS units, which do not normally exhibit strong stationary RF asymmetries, differential sensitivity of the nonlinear DS mechanisms to stimulus elements of either contrast will yield an effective preferred movement direction for complex stimuli.

Animals↗

Spatiotemporal organization of cat lateral geniculate receptive fields.

Spatial and temporal properties of LGN receptive fields were studied by flashing a small bar of light across the field in 28 discrete steps. The flashes at each of the spatial positions were used to produce 28 PST histograms. These histograms were in turn displayed as a plane, with space on the chi axis, time on the psi axis, and probability of firing on the zota axis. These response planes demonstrate that the terms on, off, center, and surround do not adequately describe when the simplest LGN receptive field. We, therefore, introduce a new terminology describing the four major spatiotemporal components of LGN fields. The primary excitatory (PE) domain corresponds to the strongest excitatory response, the secondary excitatory (SE) domain corresponds to the second-strongest excitatory domain, the primary inhibitory (PI) domain corresponds to the strongest inhibitory domain and, finally, the secondary inhibitory (SI) domain corresponds to the second-strongest inhibitory domain. Based on the arrangement of these four domains, it is possible to divide LGN fields into four major categories: 1) homogeneous-on, on-center receptive fields which have a spatially homogeneous distribution of domains; 2) homogeneous-off, off-center receptive fields which have a spatially homogeneous distribution of domains; 3) heterogeneous-on, on-center receptive fields which have a spatially heterogeneous distribution of domains; and 4) heterogeneous-off, off-center receptive fields which have a spatially heterogeneous distribution of domains; 3) heterogeneous-on, on-center receptive fields which have a spatially heterogeneous distribution of domains; and 4) heterogeneous-off, off-center receptive fields which have a spatially heterogeneous distribution of domains. Using grating, it can be demonstrated that our heterogeneous/homogeneous fields correspond to X/Y fields, respectively. These data lead us to suggest that retinal PE domains generage LGN PE and SI domains, while retinal SE domains generate LGN SE and SI domains.

Animals↗

Interactions between cat lateral geniculate neurons.

Action potentials of 31 pairs of cat LGN neurons were recorded on single electrodes. Cross-correlograms, response planes, and a new function, the logical response plane, were calculated. The cross-correlograms between these pairs revealed four interactive classes: 1) a class with a flat cross-correlogram, 2) a class with a peak in the center of the cross-correlogram seen both during spontaneous activity and during driven activity, 3) a class with an inhibitory dip in the center of the cross-correlogram seen only when the cell pairs were driven by a stimulus and predicted by the shift predictor, 4) finally, a class with an inhibitory dip in the center of the cross-correlogram seen both during driven activity and spontaneous activity and not predicted by the shift predictor. Response plane pairs calculated for the unit pairs with flat cross-correlograms showed no predictable relationship. The pairs with a dip in the center of the cross-correlograms always had response planes that were antagonistic (i.e., approximate negative images of each other). When one cell was excited, the second cell was inhibited, and vice versa. More detailed analysis, using the logical response plane, demonstrated that the majority of the antagonistic response planes had either excitatory or inhibitory overlap. That is, the cells were simultaneously excited and/or inhibited at specific spatiotemporal loci on the response plane. These data are consistent with a feed-forward inhibitory circuit in LGN. Furthermore, the data suggest that retinal centers (PE domains) produce LGN excitatory centers (PE domains) and inhibitory centers (PI domains). In turn, retinal excitatory surrounds (SE domains) produce LGN excitatory surrounds (SE domains) and inhibitory surrounds (SI domains).

Action Potentials↗

Nerve-impulse patterns: a quantitative display technique for three neurons.

A scatter diagram is described that displays the relative timings of nerve impulses in 3 simultaneously monitored neurons. The technique is a generalization of the cross-correlation histogram for two impulse trains. The time intervals between impulses in different neurons are plotted on triangular coordinates to yield a Joint Impulse Configuration Scatter Diagram. The resulting 'snowflake' plot shows a pattern of spots and lines, which is interpretable in terms of the functional circuitry among teh neurons. Illustrations are given of the snowflakes produced by a variety of three-neuron circuits, which may serve as a preliminary catalog of snowflake types for interpretation of experimental data.

Computers↗

Elaboration of a conditioned reflex in a single experiment with simultaneous recording of neural activity.

In 18 of 20 experiments with click CS, and in 5 of 10 experiments with flash CS, we have elaborated a conditioned EMG response in a single session (less than 60 pairings). The US was direct electrical stimulation of the rabbit's motor cortex that evoked a movement of the forelimb. Electrical stimulation of the lateral hypothalamus was used as reinforcement. Parameters for this reinforcement were chosen to evoke a feeding reaction or self-stimulation in the freely behaving animal. The elaborated EMG response satisfied most of the required characteristics of a conditioned reflex. These included spontaneous recovery after extinction, savings of long duration, specificity to stimulus pairing, and weak efferent and afferent generalization. In most experiments with click CS, the elaborated phasic response had an amplitude of 0.1-6 mV with a latency of 12-16 msec. In form and latency the conditioned response was similar to the unconditioned startle reaction of the same animal under chloralose anesthesia, or to its unanesthetized response to a loud sound. However, the conditioned response differed from the startle reaction in that it was localized. Extracellular recordings of 2-5 neurons were simultaneously made from sensory motor cortex near the point at which the US was applied. In 7 experiments 17 neurons were followed through the entire cycle of elaboration and extinction of the conditioned response. Seven neurons showed a statistically significant (P less than 0.05) increase of the response to CS during conditioning. Latencies were 20-140 msec. Interactions between neurons were studied by computing cross-correlograms and joint PST scatter diagrams. These measures were less informative than we had hoped because of the low level of spontaneous and evoked activity, and because of the small numbers of stimulus presentations that were needed for elaboration and extinction of the conditioned reflex. In isolated presentations of the CS after elaboration of the CR, we sometimes observed neural responses to click with a latency less than 6 msec. We propose that at least one of the pathways involved in the localized conditioned startle reflex reported here goes through the sensory motor cortex.

Acoustic Stimulation↗

Plasticity in small neuronal assemblies.

When spike activity of two or more individual neurons is simultaneously recorded, it is possible to detect various types of neuronal connections to and between the observed neurons by making appropriate statistical analysis of the data. Such methods are reviewed. This approach is particularly useful in seeking changes of neuronal connectivity associated with behavioral plasticity. Examples from experiments with Aplysia and crayfish are given.

Animals↗

Mutual temporal relationships among neuronal spike trains. Statistical techniques for display and analysis.

We describe a statistical technique, the joint peristimulus time (PST) scatter diagram, for the analysis of data from simultaneously recorded neurons subjected to repeated stimulation. Distinguishable features in the scatter diagram are related to effects of the stimulus on the observed neurons and to functional relations among the neurons. Properties of this measure and its variants are described and practical aspects of its application to experimental data are discussed.

Animals↗

Plasticity of synchronous activity in a small neural net.

Electrical activity from three neurons at a time was recorded in a pleural ganglion of Aplysia. Synchonous activity could be temporally patterned by electrical stimulation over a single nerve. After a period of pairing with electrical stimuli over another nerve the degree and time course of the synchrony were altered. Such alterations reverted after 5 to 30 minutes.

Animals↗