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Results of search for 'au:"RIGOR, B M"', page 3 of 5
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Authors
Ackerman, W E
BUNAG, R D
Brown, M
Burks, T F
Dafny, N
Divakaran, P
Edmonds, H L
Fuller, G N
GUEVARA, R
Hashimoto, Y
Ho, B T
Miller, J J
Payne, R S
RIGOR, B M
Reid, K H
Rigor, B M
Schurr, A
Tseng, M T
West, C A
Wiggins, R C
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Topics
Animals
Brain
Dose-Response Relationship, Drug
Electrophysiology
Evoked Potentials
Female
Halothane
Hippocampus
Humans
In Vitro Techniques
Male
Morphine
Neurons
Rats
Rats, Inbred Strains
Rats, Sprague-Dawley
drug effects
metabolism
pharmacology
physiology
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English
Your search returned 91 results.
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41.
Morphine tolerance and dependence: sensitivity of caudate nucleus neurons.
[electronic resource]
by
Dafny, N
Brown, M
Burks, T F
Rigor, B M
Producer:
19790428
In:
Brain research
vol. 162
Online resources:
Available from publisher's website
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42.
Patterns of unit responses to incremental doses of morphine in central gray, reticular formation, medial thalamus, caudate nucleus, hypothalamus, septum and hippocampus in unanesthetized rats.
[electronic resource]
by
Dafny, N
Brown, M
Burks, T F
Rigor, B M
Producer:
19790917
In:
Neuropharmacology
vol. 18
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43.
Dose effects of halothane on sensory evoked responses obtained from the cortex, reticular formation and central gray.
[electronic resource]
by
Prasad, C M
Pardo, L
Rigor, B M
Dafny, N
Producer:
19850926
In:
The International journal of neuroscience
vol. 27
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44.
Unit activity recorded simultaneously from medial thalamus and caudate nucleus in naive and morphine-dependent rats.
[electronic resource]
by
Dafny, N
Brown, M
Burks, T F
Rigor, B M
Producer:
19790629
In:
Experimental neurology
vol. 64
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45.
Morphine tolerance and dependence: sensitivity of caudate nucleus neurons.
[electronic resource]
by
Dafny, N
Brown, M
Burks, T F
Rigor, B M
Producer:
19790428
In:
Brain research
vol. 162
Online resources:
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46.
Effects of halothane on evoked field potentials recorded from cortical and subcortical nuclei.
[electronic resource]
by
Rabe, L S
Moreno, L
Rigor, B M
Dafny, N
Producer:
19801218
In:
Neuropharmacology
vol. 19
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47.
Enflurane effects on acoustic and photic evoked responses.
[electronic resource]
by
Yeoman, R R
Moreno, L
Rigor, B M
Dafny, N
Producer:
19800928
In:
Neuropharmacology
vol. 19
Online resources:
Available from publisher's website
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48.
Morphine acute effects on spontaneous multiunit activity recorded simultaneously from medial thalamus and caudate nucleus in freely behaving rats.
[electronic resource]
by
Dafny, N
Brown, M
Rigor, B M
Burks, T F
Producer:
19810513
In:
Neurological research
vol. 1
Online resources:
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49.
Various inputs modify caudate neuronal activity.
[electronic resource]
by
Schurr, A
Rigor, B M
Ho, B T
Dafny, N
Producer:
19840214
In:
Neurological research
vol. 5
Online resources:
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50.
Accumulation and persistence of halothane in adult and fetal rat brain as a result of subanesthetic exposure.
[electronic resource]
by
Divakaran, P
Joiner, F
Rigor, B M
Wiggins, R C
Producer:
19800828
In:
Journal of neurochemistry
vol. 34
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51.
Periaqueductal gray neurons response to microiontophoretically injected morphine in naive and morphine-dependent rats.
[electronic resource]
by
Schurr, A
Rigor, B M
Ho, B T
Dafny, N
Producer:
19810915
In:
Brain research bulletin
vol. 6
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52.
Does chronic halothane exposure alter brain electrical activity? Sensory evoked potentials recorded from cortex, diencephalon, and mesencephalon in freely behaving rats.
[electronic resource]
by
Fuller, G N
Rigor, B M
Wiggins, R C
Dafny, N
Producer:
19820322
In:
Substance and alcohol actions/misuse
vol. 1
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53.
Study of cerebral energy metabolism using the rat hippocampal slice preparation.
[electronic resource]
by
Schurr, A
Payne, R S
Miller, J J
Rigor, B M
Producer:
19990803
In:
Methods (San Diego, Calif.)
vol. 18
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54.
Quantitative comparison of atropine and tricyclamol with standard blocking agents on neuromuscular transmission in cats under Dial-urethane anesthesia.
[electronic resource]
by
VILLALOBOS, J G
RIGOR, B M
ALCANTARA, V A
GUEVARA, R
Producer:
19981101
In:
Journal of the Philippine Medical Association
vol. 38
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55.
Hypoxia, excitotoxicity, and neuroprotection in the hippocampal slice preparation.
[electronic resource]
by
Schurr, A
Payne, R S
Heine, M F
Rigor, B M
Producer:
19951124
In:
Journal of neuroscience methods
vol. 59
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56.
Glia are the main source of lactate utilized by neurons for recovery of function posthypoxia.
[electronic resource]
by
Schurr, A
Payne, R S
Miller, J J
Rigor, B M
Producer:
19980311
In:
Brain research
vol. 774
Online resources:
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57.
An increase in lactate output by brain tissue serves to meet the energy needs of glutamate-activated neurons.
[electronic resource]
by
Schurr, A
Miller, J J
Payne, R S
Rigor, B M
Producer:
19990205
In:
The Journal of neuroscience : the official journal of the Society for Neuroscience
vol. 19
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58.
Taurine improves the recovery of neuronal function following cerebral hypoxia: an in vitro study.
[electronic resource]
by
Schurr, A
Tseng, M T
West, C A
Rigor, B M
Producer:
19870706
In:
Life sciences
vol. 40
Online resources:
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59.
Brain lactate, not glucose, fuels the recovery of synaptic function from hypoxia upon reoxygenation: an in vitro study.
[electronic resource]
by
Schurr, A
Payne, R S
Miller, J J
Rigor, B M
Producer:
19970415
In:
Brain research
vol. 744
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60.
Brain lactate is an obligatory aerobic energy substrate for functional recovery after hypoxia: further in vitro validation.
[electronic resource]
by
Schurr, A
Payne, R S
Miller, J J
Rigor, B M
Producer:
19970724
In:
Journal of neurochemistry
vol. 69
Online resources:
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