Water version of the radial-arm maze: Learning in three inbred strains of mice
暂无分享,去创建一个
[1] A. Galaburda,et al. Effects of cortical ectopias on spatial delayed-matching-to-sample performance in BXSB mice , 1997, Behavioural Brain Research.
[2] M. Ammassari-Teule,et al. Spatial and visual discrimination learning in CD1 mice: Partial analogy between the effect of lesions to the hippocampus and the amygdala , 1996, Physiology & Behavior.
[3] J. Lassalle,et al. Radial maze learning using exclusively distant visual cues reveals learners and nonlearners among inbred mouse strains , 1995, Physiology & Behavior.
[4] R. Jaffard,et al. Spatial Location Learning in Mice with Ibotenate Lesions of Entorhinal Cortex or Subiculum , 1995, Neurobiology of Learning and Memory.
[5] J. Mills,et al. Sex differences in learning and memory in mice: effects of sequence of testing and cholinergic blockade. , 1995, Behavioral neuroscience.
[6] S. Ikegami. Behavioral impairment in radial-arm maze learning and acetylcholine content of the hippocampus and cerebral cortex in aged mice , 1994, Behavioural Brain Research.
[7] Wim E Crusio,et al. Covariations Between Hippocampal Mossy Fibres and Working and Reference Memory in Spatial and Non‐spatial Radial Maze Tasks in Mice , 1993, The European journal of neuroscience.
[8] J. Lassalle,et al. A study of behavioral and sensorial bases of radial maze learning in mice. , 1993, Behavioral and neural biology.
[9] J. Lassalle,et al. Behavioural strategies, sensorial processes and hippocampal mossy fibre distribution in radial maze performance in mice , 1992, Behavioural Brain Research.
[10] Wim E Crusio,et al. Hippocampal mossy fibers and radial-maze learning in the mouse: A correlation with spatial working memory but not with non-spatial reference memory , 1990, Neuroscience.
[11] L. Means,et al. Overcoming unlearned response biases: delayed escape following errors facilitates acquisition of win-stay and win-shift working memory water-escape tasks in rats. , 1989, Behavioral and neural biology.
[12] R. Jaffard,et al. Differential hippocampal and cortical cholinergic activation during the acquisition, retention, reversal and extinction of a spatial discrimination in an 8-arm radial maze by mice , 1988, Behavioural Brain Research.
[13] L. Means. Rats acquire win-stay more readily than win-shift in a water escape situation , 1988 .
[14] C. Goodlett,et al. Constraints on water maze spatial learning in rats Implications for behavioral studies of brain damage and recovery of function , 1988, Behavioural Brain Research.
[15] Wim E Crusio,et al. Radial-maze performance and structural variation of the hippocampus in mice: a correlation with mossy fibre distribution , 1987, Brain Research.
[16] K. Teraoka,et al. Sex differences in appetitive learning of mice , 1986, Physiology & Behavior.
[17] J. Bolhuis,et al. Exponential decay of spatial memory of rats in a radial maze. , 1986, Behavioral and Neural Biology.
[18] D. Goldowitz,et al. Performance of normal and neurological mutant mice on radial arm maze and active avoidance tasks. , 1986, Behavioral and neural biology.
[19] Antonio Caprioli,et al. Spatial learning and memory, maze running strategies and cholinergic mechanisms in two inbred strains of mice , 1985, Behavioural Brain Research.
[20] W. Beatty,et al. Scopolamine degrades spatial working memory but spares spatial reference memory: Dissimilarity of anticholinergic effect and restriction of distal visual cues , 1985, Pharmacology Biochemistry and Behavior.
[21] O. Burešová,et al. Radial maze in the water tank: An aversively motivated spatial working memory task , 1985, Physiology & Behavior.
[22] D. Olton,et al. Radial maze performance in young and aged mice: Neurochemical correlates , 1985, Pharmacology Biochemistry and Behavior.
[23] O. Steward,et al. On the role of hippocampal connections in the performance of place and cue tasks: comparisons with damage to hippocampus. , 1984, Behavioral neuroscience.
[24] B. Will,et al. Working memory theory of hippocampal function needs qualification. , 1984, Behavioral and neural biology.
[25] W. Maki,et al. Spatial memory over long retention intervals: nonmemorial factors are not necessary for accurate performance on the radial-arm maze by rats. , 1984, Behavioral and neural biology.
[26] A. Levy,et al. Radial arm maze performance of mice: acquisition and atropine effects. , 1983, Behavioral and neural biology.
[27] O. Burešová,et al. An attempt to account for controversial estimates of working memory persistence in the radial maze. , 1983, Behavioral and neural biology.
[28] R. Wurtman,et al. Radial maze performance in three strains of mice: role of the fimbria/fornix , 1983, Brain Research.
[29] S. Mizumori,et al. Failure of mice to demonstrate spatial memory in the radial maze. , 1982, Behavioral and neural biology.
[30] O. Burešová,et al. Role of olfactory cues in the radial maze performance of rats , 1981, Behavioural Brain Research.
[31] E. Gaffan,et al. The Role of Exploration in Win-Shift and Win-Stay Performance on a Radial Maze. , 1981 .
[32] R. Dale,et al. Remembrance of places lasts: Proactive inhibition and patterns of choice in rat spatial memory , 1981 .
[33] D. Olton,et al. Spatial memory and hippocampal function , 1979, Neuropsychologia.
[34] D. Olton,et al. Intramaze cues and “odor trails” fail to direct choice behavior on an elevated maze , 1979 .
[35] D. Olton,et al. Food-searching strategies in young rats: Win-shift predominates over win-stay. , 1978 .
[36] William A. Roberts,et al. The sensory basis of spatial memory in the rat , 1978 .
[37] David S. Olton,et al. Spatial memory and radial arm maze performance of rats , 1977 .
[38] J. Sundberg. The acoustics of the singing voice. , 1977, Scientific American.
[39] D. Olton,et al. Remembrance of places passed: Spatial memory in rats. , 1976 .
[40] M. Baxter,et al. Selective immunolesions of hippocampal cholinergic input fail to impair spatial working memory , 1997, Hippocampus.
[41] R. Dale,et al. Limitations on Spatial Memory in Mice , 1984 .
[42] Joel L. Davis,et al. The radial maze performance of mice: assessing the dimensional requirements for serial order memory in animals. , 1984, Behavioral and neural biology.