Neurosci 19:10940–10947.
Garey LJ (1994) Broadmann’s ‘Localization in the cerebral cortex.’ Translated and edited by Laurence J. Garey. London: Smith-Gorden.
Garwicz M, Jorntell H, Ekerot CF (1998) Cutaneous receptive fields and topography of mossy fibres and climbing fibres projecting to cat cerebellar C3 zone. J Physiol (London) 512:277–293.
Gauck V, Jaeger D (2000) The control of rate and timing of spikes in the deep cerebellar nuclei by inhibition. J Neurosci 20:3006–3016.
Gebhart AL, Petersen SE, Thach WT (2002) Role of the posterolateral cerebellum in language. Ann NY Acad Sci 978:318–333.
Gerardin E, Sirigu A, Lehericy S. Poline JB, Gaymard B, Marsault C, Agid Y, Le Bihan D (2000) Partially overlapping neural networks for real and imagined hand movements. Cereb Cortex 10:1093–1104.
Gerrits NM, Voogd J (1989) The topographical organization of climbing and mossy fiber afferents in the flocculus and ventral paraflocculus in rabbit, cat and monkey. Exp Brain Res Suppl 17:26–29.
Gerrits, NM, Epema AH, van Linge A, Dalm E (1989) The primary vestibulocerebellar projection in the rabbit: absence of primary afferents in the flocculus. Neurosci Let 105:27–33.
Geurts FJ, Timmermans J, Shigemoto R, De Schutter E (2001) Morphological and neurochemical differentiation of large granular layer interneurons in the adult rat cerebellum. Neuroscience 104:499–512.
Ghelarducci B, Ito M, Yagi N (1975) Impulse discharges from floccular Purkinje cells of alert rabbits during visual stimulation combined with horizontal head rotation. Brain Res 87:66–72.
Gilbert PF, Thach WT (1977) Purkinje cell activity during motor learning. Brain Res 128:309–328.
Glickstein M (1994) Cerebellar agensis. Brain 117:1209–1212.
Glickstein M, Gerrits N, Kralj-Hans I, Mercier B, Stein J, Voogd J (1994) Visual pontocerebellar projections in the macaque. J Comp Neurol 349:51–72.
Glickstein M, Strata P, Voogd J (2009) Cerebellum: history. Neuroscience 162:549–559.
Glickstein M, Sultan F, Voogd J (2009) Functional localization in the cerebellum. Cortex 47:59–80.
Glickstein M, Voogd J (1995) Lodewijk Bolk and the comparative anatomy of the cerebellum. Trend Neurosci 18:206–210.
Gómez-Beldarrain M, Garcóa-Moncó, JC, Rubio B, Pascual-Leone A (1998) Effect of focal cerebellar lesions on procedural learning in the serial reaction time task. Exp Brain Res 120:25–30.
Gomi H, Shidara M, Takemura A, Inoue Y, Kawano K, Kawato M (1998) Temporal firing patterns of Purkinje cells in the cerebellar ventral paraflocculus during ocular following responses in monkeys. I. Simple spikes. J Neurophysiol 80:818–831.
Gomi H, Sun W, Finch CE, Itohara S, Yoshimi K, Thompson RF (1999) Learning induces a CDC2-related protein kinase, KKIAMRE. J Neurosci 19:9530–9537.
Gonshor A, Melvill-Jones GM (1974) Extreme vestibulo-ocular adaptation induced by prolonged optical reversal of vision. J Physiol (London) 256:381–414.
Goto MM, Romero GG, Balaban CD (1997) Transient changes in flocculonodular lobe protein kinase C expression during vestibular compensation. J Neurosci 17:4367–4381.
Graf W, Gerrits N, Yatim-Dhiba N, Ugolini G (2002) Mapping the oculomotor system: the power of transneuronal labelling with rabies virus. Eur J Neurosci 15:1557–1562.
Graham BP, Dutia MB (2001) Cellular basis of vestibular compensation: analysis and modelling of the role of the commissural inhibitory system. Exp Brain Res 137:387–396.
Granit R (1975) The functional role of the muscle spindles—facts and hypotheses. Brain 98:531–556.
Granit R, Phillips CG (1956) Excitatory and inhibitory processes acting upon individual Purkinje cells of the cerebellum in cats. J Physiol (London) 133:520–547.5.
Graybiel AM (2005) The basal ganglia: learning new tricks and loving it. Cur Opinion Neurobiol 15:638–644.
Grey MJ, Ladouceur M, Andersen JB, Nielsen JB, Sinkjær T (2001)