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Biomedical subjects

P J Best

Publications and source records attributed to P J Best.

At least 19 recordsLinked to original sources

Changes in sensory responsivity in deep layer neurons of the superior colliculus of behaving rats.

Neurons in the deep layers of the superior colliculus in behaving hooded rats were tested for responsivity to visual, auditory, or somesthetic stimuli. Some sensory cells, particularly those responsive to tactile stimuli, showed a change in responsivity (and sometimes an abolishment in firing rate or change in receptive field size) when the animal was gently restrained or placed onto an elevated platform. Thus, sensory neurons in the superior colliculus of the behaving rat have response properties that vary according to the conditions of testing.

Animals

Long-term stability of the place-field activity of single units recorded from the dorsal hippocampus of freely behaving rats.

Over 90% of all spontaneously active hippocampal pyramidal cells in freely moving rats signal the animal's spatial position by reliably changing their firing rate each time the animal enters a given place within an environment. This place-field activity exhibits plasticity when specific environmental variables are manipulated. Indeed, the hippocampus is perhaps best known as a system that serves as a model of neuronal plasticity. Although place-field activity has previously been examined only over relatively short experimental sessions, this behavioral correlate of hippocampal functional activity has been assumed to exhibit stability rather than plasticity in the absence of environmental changes. The present study shows that hippocampal neurons have stable place-field correlates that persist over very long periods of time. Single-unit activity was chronically recorded from the dorsal hippocampus of rats foraging repeatedly in a stable spatial environment. The location of the place fields of all units were stable over all time periods tested, for intervals up to 153 days in duration. The consistency of the information conveyed by this single-unit activity in a fixed spatial environment indicates that stability of neuronal activity may be as important as plasticity in the integrated processing of information that occurs in the hippocampus and throughout the nervous system.

Action Potentials

Mediodorsal thalamic lesions impair "reference" and "working" memory in rats.

The present experiment evaluated the ability of rats with lesions in the thalamic mediodorsal nucleus (MD) to perform a task which differentiates between "reference" and "working" memory. In this task, only four of the arms of an 8-arm radial maze were baited, and animals were to restrict their entries to arms which were baited and to avoid never-baited arms. Despite several postoperative acquisition trials, rats with MD lesions did not acquire the task to a degree comparable to control subjects. Subjects with lesions continued to enter never-baited arms (reference memory errors) and to reenter baited arms (working memory errors). Given the lack of specificity in the behavioural impairment, the reference-working memory distinction seems to be an inappropriate one for characterizing the MD lesion deficit in rats. This deficit may involve an inability to use environmental stimuli to distinguish among arms of the maze, or an alteration in motor mechanisms.

Animals

Response biases do not underlie the radial maze deficit in rats with mediodorsal thalamus lesions.

Previous results indicating that radial maze performance in animals with mediodorsal thalamic lesions is deficient cannot exclude the possibility that these impairments are due to altered motor mechanisms (response biases). The present study sought to eliminate this potentially confounding variable by using a procedure which tests memory for serial position. This procedure involved experimenter-controlled arm entry (number and order) on a radial arm maze. Following this sequence, animals were presented with one previously entered arm along with an arm not yet visited on that trial. Avoidance of the previously entered arm constituted memory for the prior sequence. Thus, this task represents a form of a win-shift or nonmatching-to-sample task. Seven animals were given ibotenic acid lesions of the mediodorsal nucleus and nine others were given sham operations; 2 weeks later testing in the above procedure was conducted. Results indicated that, although control subjects could differentiate between entered and unentered arms without difficulty, animals with lesions were unable to exhibit this distinction. Much of their memory for arms previously entered in a sequence was at chance level, regardless of the placement of the tested arm in the sequence. Some tendency toward increased errors with longer sequences of arm entries was noted. This may indicate that animals with lesions were susceptible to proactive interference from previous choices. Regardless, even without the opportunity to develop or exhibit response biases, animals lesioned in the mediodorsal nucleus were unable to perform this win-shift task reliably. Thus, discrimination among maze arms is impaired after lesion of the mediodorsal nucleus and this impairment is independent of the motor response patterns which emerge during solution of a conventional radial maze task.

Animals

Place cells and silent cells in the hippocampus of freely-behaving rats.

In the present study, nearly two-thirds of all hippocampal pyramidal units isolated under barbiturate anesthesia, which maximizes these cell's activity, were behaviorally silent. These "silent cells" showed no spontaneous firing activity in the awake, freely-behaving rat. Both reanesthetization and antidromic stimulation, however, activated these silent cells. More than 92% of the remaining spontaneously active hippocampal pyramidal cells recorded from freely-behaving rats were place cells; i.e., they exhibited spatially specific changes in firing activity in at least one environment. The firing rates of these place cells varied depending on the animal's location in this environment. Interestingly many of these place cells displayed low or no spontaneous activity and no spatial specificity in other, dissimilar environments; i.e., their lack of firing in some spatial environments mirrored the behavioral silence of the more numerous silent cells reported here. In complex information processing, such as the processing of spatial information by the hippocampus demonstrated here, neural silence may be as important a signal as neural activity.

Animals

Mediodorsal thalamic lesions impair radial maze performance in the rat.

The role of the mediodorsal thalamic nucleus (MD) in spatial memory processes was assessed. Animals were preoperatively trained on an 8-arm maze placed in a visually deprived environment. Following 50 acquisition trials, one group received bilateral electrolytic lesion of the MD thalamus, whereas the other group received sham lesions. On postoperative tests of radial maze performance, MD lesioned animals made significantly more errors, made more errors sooner, and emitted fewer correct responses before making an error than did sham controls. The lesioned subjects also exhibited considerable perseveration immediately postoperation and developed response patterning on postlesion trials. Lesions of the mediodorsal thalamus may fundamentally compromise memory systems and alter ability to respond appropriately in a minimally cued environment.

Animals

Drug-preexposure effects in flavor-aversion learning: associative interference by conditioned environmental stimuli.

Previous research has documented that exposure to a drug reduces the ability of the drug to support subsequent flavor-aversion learning. The four experiments reported here examined the hypothesis that this drug-preexposure effect is due to associative interference from environmental stimuli associated with the drug effects during preexposure. When distinctive environmental stimuli (confinement in a black compartment) were present during drug preexposure, these stimuli significantly disrupted subsequent flavor-aversion learning. Furthermore, flavor conditioning was not significantly disrupted when drug preexposure occurred in the absence of salient environmental stimuli or when the previously conditioned environmental stimuli were extinguished prior to flavor conditioning. It is significant, and in contrast to other published research, that flavor conditioning was not disrupted when the distinctive cues paired with the drug during preexposure were absent at the time of the flavor-drug pairing. These results are thus consistent with results from conventional studies of stimulus blocking and suggest that associative processes can play a major role in the drug-preexposure effect.

Animals

Pairing novel exteroceptive cues and illness reduces illness-induced taste aversions.

Four experiments are reported that lead to the conclusion that pairing novel exteroceptive stimulation (placement into a black compartment) with a poison (lithium chloride) attenuates the development of an aversion to a taste (saccharin) subsequently paired with the poison. Such an attenuation effect occurs whether the exteroceptive cues are present or absent when the taste-poison pairing is administered. Interpretation and implications of this finding are discussed.

Animals

Differential effects of cortical ablation and spreading depression on sensitivity to footshock: implications for the role of the cortex in learning.

Rats were tested for flinch and jump responses to shock under unilateral and bilateral spreading depression (USD and BSD) and unilateral cortical ablation (UCA). Some Ss were tested with insulating boots on the left or right limbs. Under USD and UCA the limbs contralateral to the depressed or ablated hemisphere were as insensitive as when under BSD, and the ipsilateral limbs were almost as sensitive as in the normal condition. The data indicate that lack of transfer typically found in the USD transfer paradigm can be attributed to stimulus factors and not to learning or memory deficits, especially since most studies have used a shock level which does not exceed the jump threshold for a depressed hemisphere.

Animals