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Anterior and medial thalamic lesions, discriminative avoidance learning, and cingulate cortical neuronal activity in rabbits

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Four groups of male albino rabbits were trained to perform a conditioned response (CR, stepping in an activity wheel) to an acoustic (pure tone) conditional stimulus (CS+). A 1.5–2.0 mA shock unconditional stimulus (US) delivered through the grid floor of the wheel was administered 5 s after CS + onset, but stepping during the CS-US interval prevented the US. The rabbits were also trained to ignore a second tone (a negative conditional stimulus or CS-) of different auditory frequency than the CS+, that was presented in an irregular order on half of the conditioning trials but never followed by the US. One group had bilateral electrolytic lesions in the medial dorsal (MD) thalamic nucleus, a second group had combined bilateral lesions in the MD and the anterior thalamic nuclei, and a third group had no lesions. The fourth group was composed of rabbits with combined lesions that resulted in only partial damage in the anterior and MD nuclei. In all rabbits, multi-unit activity and field potentials were recorded from the cingulate cortical projection targets of the MD and anterior nuclei. The average rate of acquisition in rabbits with MD and partial lesions was not significantly different from that in controls, but the asymptotic performance in rabbits with lesions was significantly impaired, relative to that in controls. None of the rabbits that had the combined MD and anterior thalamic lesions reached the acquisition criterion. The average proportion of trials in which these rabbits performed avoidance responses during their final training sessions was 0.3, compared to 0.8 in controls. The unconditioned response was not significantly affected by the lesions, nor was there any indication that the lesions impaired the sensory processing of the CSs. These results and the massive traininginduced neuronal discharges shown in past studies to occur in the limbic thalamic neurons indicate that these neurons are importantly involved in the circuitry that mediates discriminative avoidance conditioning in rabbits. The training-induced neuronal activity in cingulate cortex was dramatically attenuated in rabbits with lesions. Differences in the degree of this attenuation between lesion conditions and with respect to training stages were discussed in relation to a theoretical working model of limbic thalamic and cingulate cortical associative functions.

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References

  • Aggleton JP, Mishkin M (1983) Visual recognition impairment following medial thalamic lesions in monkeys. Neuropsychologia 21:189–197

    Google Scholar 

  • Aggleton JP (1986) Memory impairments caused by experimental thalamic lesions in monkeys. Rev Neurol (Paris) 4:418–424

    Google Scholar 

  • Bachevalier J, Parkinson JK, Mishkin M (1985) Visual recognition in monkeys: effects of separate vs. combined transection of fornix and amygdalofugal pathways. Exp Brain Res 57:554–561

    Google Scholar 

  • Brogden WJ, Culler FA (1936) A device of motor conditioning of small animals. Science 83:269

    Google Scholar 

  • Buchanan SL, Powell DA (1987) Mediodorsal thalamic lesions impair differential Pavlovian heart rate conditioning. Soc Neurosci Abstr 181.11:644

    Google Scholar 

  • Buchwald J, Holstein SB, Weber DS (1973) Multiple unit recording: technique, interpretation, and experimental applications. In: Thompson RF, Patterson MM (eds) Bioelectric recording techniques. Part A. Cellular processes and brain potentials. Academic Press, New York, 202–242

    Google Scholar 

  • Cohen NJ (1984) Preserved learning capacity in amnesia: Evidence for multiple memory systems. In: Squire LR, Butters N (eds) The neuropsychology of memory. Guildord Press, New York, pp 83–103

    Google Scholar 

  • Donovick PJ (1974) A metachromatic stain for neural tissue. Stain Technol 49:49–51

    Google Scholar 

  • Foster K, Orona E, Lambert RW, Gabriel M (1980) Early and late acquisition of discriminative neuronal activity during differential conditioning in rabbits: specificity within the laminae of cingulate cortex and the anteroventral thalamus. J Comp Physiol Psychol 94:1069–1086

    Google Scholar 

  • Fox CA, Eichman J (1959) A rapid method for locating intracerebral electrode tracks. Stain Technol 34:39–42

    Google Scholar 

  • Gabriel M, Foster K, Orona E (1980) Interaction of the laminae of cingulate cortex and the anteroventral thalamus during behavioral learning. Science 208:1050–1052

    Google Scholar 

  • Gabriel M, Lambert RW, Foster K, Orona E, Sparenborg S, Maiorca RR (1983) Anterior thalamic lesions and neuronal activity in the cingulate and retrosplenial cortices during discriminative avoidance behavior in rabbits. Behav Neurosci 97:675–696

    Google Scholar 

  • Gabriel M, Miller J, Saltwick SE (1977) Unit activity in cingulate cortex and anteroventral thalamus of the rabbit during differential conditioning and reversal. J Comp Physiol Psychol 91:423–433

    Google Scholar 

  • Gabriel M, Orona E (1982) Parallel and serial processes of the prefrontal and cingulate cortical systems during behavioral learning. Brain Res Bull 8:781–785

    Google Scholar 

  • Gabriel M, Sparenborg S (1986) Anterior thalamic discriminative neuronal responses enhanced during learning in rabbits with subicular and cingulate cortical lesions. Brain Res 384:195–198

    Google Scholar 

  • Gabriel M, Sparenborg S, Stolar N (1987a) Hippocampal control of cingulate cortical and anterior thalamic information processing during learning in rabbits. Exp Brain Res 67:131–152

    Google Scholar 

  • Gabriel M, Kubota Y, Sparenborg S, Straube K (1987b) Anterior cingulate cortical ibotenic acid lesions enhance conditioning-induced unit activity in the MD thalamic nucleus in rabbits. Soc Neurosci Abstr 305.17:1104

    Google Scholar 

  • Gabriel M, Sparenborg S, Stolar N (1986) An executive function of the hippocampus: pathway selection for thalamic neuronal significance code. In: Isaacson RL, Pribram K (eds) The hippocampus, Vol IV. Plenum Press, New York, pp 1–39

    Google Scholar 

  • Girgis M, Shi-Chang W (1981) A new stereotaxic atlas of the rabbit brain. Warren H. Green Inc, Saint Louis

    Google Scholar 

  • Irle E, Markowitsch HJ (1982) Single and combined lesions of the cat's thalamic mediodorsal nucleus and the mammillary bodies lead to severe deficits in the acquisition of an alternation task. Behav Brain Res 6:147–165

    Google Scholar 

  • Isserhof A, Rosvold HE, Galkin TW, Goldman-Rakic P (1982) Spatial memory impairments following damage to the mediodorsal nucleus of the thalamus in rhesus monkeys. Brain Res 232:97–113

    Google Scholar 

  • Kessler J, Markowitsch HJ, Otto B (1982) Subtle but distinct impairments of rats with chemical lesions in the thalamic mediodorsal nucleus, tested in a radial arm maze. J Comp Physiol Psychol 96:712–720

    Google Scholar 

  • Kubota Y, Shenker J, Mignard M, Bentzinger D, Gabriel M (1987) AD thalamic lesions, AV thalamic and cingulate cortical neuronal activity, and avoidance learning in rabbits. Soc Neurosci Abstr 305.18:1104

    Google Scholar 

  • Kubota Y, Shenker J, Mignard M, Parish D, Gabriel M (1988) Cue elicited neuronal discharges in limbic thalamic nuclei peak at different training levels during avoidance learning in rabbits. Soc Neurosci Abstr 160.2:394

    Google Scholar 

  • Lambert RW, Gabriel M (1982) Effects of midline limbic cortical lesions on discriminative avoidance behavior and neuronal activity in the neostriatum. Soc Neurosci Abstr 8:318

    Google Scholar 

  • Markowitsch HJ (1982) Retention performance of a learned delayed-alternation task after chemical lesions of the cat's mediodorsal nucleus. Behavioral Brain Res 4:263–277

    Google Scholar 

  • McCormick DA, Thompson RF (1984) Cerebellum: essential involvement of the classically conditioned eyelid response. Science 223:296–299

    Google Scholar 

  • Mishkin M (1978) Memory in monkeys severely impaired by combined but not by separate removal of amygdala and hippocampus. Nature 273:297–298

    Google Scholar 

  • Mishkin M, Malamut BL, Bachevalier J (1984) Memories and habits: two neural systems. In: Lynch G, McGaugh JL, Weinberger NM (eds) Neurobiology of learning and memory. Guilford Press, New York, pp 65–77

    Google Scholar 

  • O'Keefe JO, Nadel L (1978) The hippocampus as a cognitive map. Oxford University Press, Oxford

    Google Scholar 

  • Olton DS, Becker JT, Handelmann GE (1979) Hippocampus, space and memory. Behav Brain Sci 2:313–365

    Google Scholar 

  • Orona E, Gabriel M (1983) Unit activity of the prefrontal cortex and the mediodorsal thalamic nucleus during acquisition of discriminative avoidance behavior in rabbits. Brain Res 263:295–312

    Google Scholar 

  • Rescorla RA (1967) Pavlovian conditioning and its proper control procedures. Psych Rev 74:71–80

    Google Scholar 

  • Sakurai Y, Sugimoto S (1985) Effects of lesions of prefrontal cortex and dorsomedial thalamus on delayed go/no-go alternation in rats. Behav Brain Res 17:213–219

    Google Scholar 

  • Sparenborg S, Gabriel M (1987) Limbic system unit activity and behavior altered during learning by local depletions of norepinephrine in rabbits. Soc Neurosci Abstr 184.14:657

    Google Scholar 

  • Squire L, Cohen NJ (1984) Human memory and amnesia. In: Lynch G, McGaugh JL, Weinberger NM (eds) Neurobiology of learning and memory. Guilford Press, New York, pp 1–64

    Google Scholar 

  • Stabuli U, Schottler F, Nejat-Bina D (1987) Role of dorsomedial thalamic nucleus and piriform cortex in processing olfactory information. Behav Brain Res 25:117–129

    Google Scholar 

  • Stokes KA, Best PJ (1988) Mediodorsal thalamic lesions impair radial maze performance in the rat. Behav Neurosci 102:294–300

    Google Scholar 

  • Vogt BA (1985) The cingulate cortex. In: Jones EG, Peters A (eds) Cerebral cortex. Plenum Press, New York, pp 89–149

    Google Scholar 

  • Vogt BA, Sikes RW, Swadlow HA, Weyand TG (1986) Rabbit cingulate cortex: cytoarchitecture, physiological border with visual cortex and afferent cortical conntections of visual, motor, postsubicular and intracingulate origin. J Comp Neurol 248:74–94

    Google Scholar 

  • Walker HM, Lev J (1953) Statistical inference. Holt, New York

    Google Scholar 

  • Winer BJ (1962) Statistical principles in experimental design. McGraw-Hill, New York

    Google Scholar 

  • Zola-Morgan S, Squire LR (1985) Amnesia in monkeys after lesions of the mediodorsal nucleus of the thalamus. Ann Neurol 17:558–564

    Google Scholar 

Download references

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Gabriel, M., Sparenborg, S. & Kubota, Y. Anterior and medial thalamic lesions, discriminative avoidance learning, and cingulate cortical neuronal activity in rabbits. Exp Brain Res 76, 441–457 (1989). https://doi.org/10.1007/BF00247901

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