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Erschienen in: The Cerebellum 1/2010

01.03.2010

Processing of Limb Kinematics in the Interpositus Nucleus

verfasst von: Antonino Casabona, Gianfranco Bosco, Vincenzo Perciavalle, Maria Stella Valle

Erschienen in: The Cerebellum | Ausgabe 1/2010

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Abstract

Neural representations of limb movement kinematic parameters are common among central nervous system structures involved in motor control, such as the interpositus nucleus of the cerebellum. Much experimental evidence indicates that neurons in the interpositus may encode limb kinematic parameters both during active, voluntary actions and during limb motion imposed passively, which entrains only sensory afferents. With respect to the sensory processing of information related to movement kinematics, we show that interpositus neuronal activity can parse out the directional from the scalar component (i.e., the movement speed) of the velocity vector. Moreover, a differential role for the anterior and posterior portion of interpositus in encoding these parameters emerged from these data, since the activity of the posterior interpositus was specifically associated to changes of movement speed. Limb movement representations in the interpositus nucleus may be instrumental for the control of goal-directed movements such as shaping hand during grasping or precise foot placement during gait. Finally, we discuss the idea that sensory information about the movement kinematics contribute to both feedback and anticipatory processes for limb movement control.
Literatur
1.
Zurück zum Zitat Brooks VB, Thach WT (1981) Cerebellar control of posture and movement. In: Brookhart JM, Mountcastle VB (eds) Handbook of Physiology, Neurophysiology, vol. II. American Physiological Society, Bethesda, pp 877–946 Brooks VB, Thach WT (1981) Cerebellar control of posture and movement. In: Brookhart JM, Mountcastle VB (eds) Handbook of Physiology, Neurophysiology, vol. II. American Physiological Society, Bethesda, pp 877–946
2.
Zurück zum Zitat Thach WT, Goodkin HP, Keating JG (1992) The cerebellum and the adaptive coordination of movement. Annu Rev Neurosci 15:403–442CrossRefPubMed Thach WT, Goodkin HP, Keating JG (1992) The cerebellum and the adaptive coordination of movement. Annu Rev Neurosci 15:403–442CrossRefPubMed
3.
Zurück zum Zitat Milak MS, Shimansky Y, Bracha V, Bloedel JR (1997) Effects of inactivating individual cerebellar nuclei on the performance and retention of an operantly conditioned forelimb movement. J Neurophysiol 78:939–959PubMed Milak MS, Shimansky Y, Bracha V, Bloedel JR (1997) Effects of inactivating individual cerebellar nuclei on the performance and retention of an operantly conditioned forelimb movement. J Neurophysiol 78:939–959PubMed
4.
Zurück zum Zitat Martin JH, Cooper SE, Hacking A, Ghez C (2000) Differential effects of deep cerebellar nuclei inactivation on reaching and adaptive control. J Neurophysiol 83:1886–1899PubMed Martin JH, Cooper SE, Hacking A, Ghez C (2000) Differential effects of deep cerebellar nuclei inactivation on reaching and adaptive control. J Neurophysiol 83:1886–1899PubMed
5.
Zurück zum Zitat Harvey RJ, Porter R, Rawson JA (1979) Discharges of intracerebellar nuclear cells in monkeys. J Physiol 297:559–580PubMed Harvey RJ, Porter R, Rawson JA (1979) Discharges of intracerebellar nuclear cells in monkeys. J Physiol 297:559–580PubMed
6.
Zurück zum Zitat Cody FW, Moore RB, Richardson HC (1981) Patterns of activity evoked in cerebellar interpositus nuclear neurones by natural somatosensory stimuli in awake cats. J Physiol 317:1–20PubMed Cody FW, Moore RB, Richardson HC (1981) Patterns of activity evoked in cerebellar interpositus nuclear neurones by natural somatosensory stimuli in awake cats. J Physiol 317:1–20PubMed
7.
Zurück zum Zitat Thach WT (1968) Discharge of Purkinje and cerebellar nuclear neurons during rapidly alternating arm movements in the monkey. J Neurophysiol 31:785–797PubMed Thach WT (1968) Discharge of Purkinje and cerebellar nuclear neurons during rapidly alternating arm movements in the monkey. J Neurophysiol 31:785–797PubMed
8.
Zurück zum Zitat Thach WT (1970) Discharge of cerebellar neurons related to two maintained postures and two prompt movements. II. Purkinje cell output and input. J Neurophysiol 33:537–547PubMed Thach WT (1970) Discharge of cerebellar neurons related to two maintained postures and two prompt movements. II. Purkinje cell output and input. J Neurophysiol 33:537–547PubMed
9.
Zurück zum Zitat Fortier PA, Kalaska JF, Smith AM (1989) Cerebellar neuronal activity related to whole-arm reaching movements in the monkey. J Neurophysiol 62:198–211PubMed Fortier PA, Kalaska JF, Smith AM (1989) Cerebellar neuronal activity related to whole-arm reaching movements in the monkey. J Neurophysiol 62:198–211PubMed
10.
Zurück zum Zitat Schieber MH, Thach WT Jr (1985) Trained slow tracking. II. Bidirectional discharge patterns of cerebellar nuclear, motor cortex, and spindle afferent neurons. J Neurophysiol 54:1228–1270PubMed Schieber MH, Thach WT Jr (1985) Trained slow tracking. II. Bidirectional discharge patterns of cerebellar nuclear, motor cortex, and spindle afferent neurons. J Neurophysiol 54:1228–1270PubMed
11.
Zurück zum Zitat MacKay WA (1988) Unit activity in the cerebellar nuclei related to arm reaching movements. Brain Res 442:240–254CrossRefPubMed MacKay WA (1988) Unit activity in the cerebellar nuclei related to arm reaching movements. Brain Res 442:240–254CrossRefPubMed
12.
Zurück zum Zitat MacKay WA (1988) Cerebellar nuclear activity in relation to simple movements. Exp Brain Res 71:47–58CrossRefPubMed MacKay WA (1988) Cerebellar nuclear activity in relation to simple movements. Exp Brain Res 71:47–58CrossRefPubMed
13.
Zurück zum Zitat Gibson AR, Horn KM, Stein JF, Van Kan PL (1996) Activity of interpositus neurons during a visually guided reach. Can J Physiol Pharmacol 74:499–512CrossRefPubMed Gibson AR, Horn KM, Stein JF, Van Kan PL (1996) Activity of interpositus neurons during a visually guided reach. Can J Physiol Pharmacol 74:499–512CrossRefPubMed
14.
Zurück zum Zitat van Kan PL, Houk JC, Gibson AR (1993) Output organization of intermediate cerebellum of the monkey. J Neurophysiol 69:57–73PubMed van Kan PL, Houk JC, Gibson AR (1993) Output organization of intermediate cerebellum of the monkey. J Neurophysiol 69:57–73PubMed
15.
Zurück zum Zitat van Kan PL, Horn KM, Gibson AR (1994) The importance of hand use to discharge of interpositus neurones of the monkey. J Physiol 480:171–190PubMed van Kan PL, Horn KM, Gibson AR (1994) The importance of hand use to discharge of interpositus neurones of the monkey. J Physiol 480:171–190PubMed
16.
Zurück zum Zitat Mason CR, Miller LE, Baker JF, Houk JC (1998) Organization of reaching and grasping movements in the primate cerebellar nuclei as revealed by focal muscimol inactivations. J Neurophysiol 79:537–554PubMed Mason CR, Miller LE, Baker JF, Houk JC (1998) Organization of reaching and grasping movements in the primate cerebellar nuclei as revealed by focal muscimol inactivations. J Neurophysiol 79:537–554PubMed
17.
Zurück zum Zitat Casabona A, Valle MS, Bosco G, Garifoli A, Lombardo SA, Perciavalle V (2003) Anisotropic representation of forelimb position in the cerebellar cortex and nucleus interpositus of the rat. Brain Res 972:127–136CrossRefPubMed Casabona A, Valle MS, Bosco G, Garifoli A, Lombardo SA, Perciavalle V (2003) Anisotropic representation of forelimb position in the cerebellar cortex and nucleus interpositus of the rat. Brain Res 972:127–136CrossRefPubMed
18.
Zurück zum Zitat Casabona A, Valle MS, Bosco G, Perciavalle V (2004) Cerebellar encoding of limb position. Cerebellum 3:172–177CrossRefPubMed Casabona A, Valle MS, Bosco G, Perciavalle V (2004) Cerebellar encoding of limb position. Cerebellum 3:172–177CrossRefPubMed
19.
Zurück zum Zitat Casabona A, Valle MS, Bosco G, Perciavalle V (2008) Comparison of neuronal activities of external cuneate nucleus, spinocerebellar cortex and interpositus nucleus during passive movements of the rat's forelimb. Neuroscience 157:271–279CrossRefPubMed Casabona A, Valle MS, Bosco G, Perciavalle V (2008) Comparison of neuronal activities of external cuneate nucleus, spinocerebellar cortex and interpositus nucleus during passive movements of the rat's forelimb. Neuroscience 157:271–279CrossRefPubMed
20.
Zurück zum Zitat Valle MS, Bosco G, Casabona A, Garifoli A, Perciavalle V, Coco M, Perciavalle V (2009) Representation of movement velocity in the rat's interpositus nucleus during passive forelimb movements. European Workshop on Movement Science. Lisbon 102 Valle MS, Bosco G, Casabona A, Garifoli A, Perciavalle V, Coco M, Perciavalle V (2009) Representation of movement velocity in the rat's interpositus nucleus during passive forelimb movements. European Workshop on Movement Science. Lisbon 102
21.
Zurück zum Zitat Burton JE, Onoda N (1978) Dependence of the activity of interpositus and red nucleus neurons on sensory input data generated by movement. Brain Res 152:41–63CrossRefPubMed Burton JE, Onoda N (1978) Dependence of the activity of interpositus and red nucleus neurons on sensory input data generated by movement. Brain Res 152:41–63CrossRefPubMed
22.
Zurück zum Zitat Soechting JF, Burton JE, Onoda N (1978) Relationships between sensory input, motor output and unit activity in interpositus and red nuclei during intentional movement. Brain Res 152:65–79CrossRefPubMed Soechting JF, Burton JE, Onoda N (1978) Relationships between sensory input, motor output and unit activity in interpositus and red nuclei during intentional movement. Brain Res 152:65–79CrossRefPubMed
23.
Zurück zum Zitat Garifoli A, Caserta C, Bosco G, Lombardo SA, Casabona A, Perciavalle V (2002) Kinematic features of passive forelimb movements and rat cuneate neuron discharges. NeuroReport 13:267–271CrossRefPubMed Garifoli A, Caserta C, Bosco G, Lombardo SA, Casabona A, Perciavalle V (2002) Kinematic features of passive forelimb movements and rat cuneate neuron discharges. NeuroReport 13:267–271CrossRefPubMed
24.
Zurück zum Zitat Bosco G, Poppele RE (2000) Reference frames for spinal proprioception: kinematics based or kinetics based? J Neurophysiol 83:2946–2955PubMed Bosco G, Poppele RE (2000) Reference frames for spinal proprioception: kinematics based or kinetics based? J Neurophysiol 83:2946–2955PubMed
25.
Zurück zum Zitat Bosco G, Poppele RE (1997) Representation of multiple kinematic parameters of the cat hindlimb in spinocerebellar activity. J Neurophysiol 78:1421–1432PubMed Bosco G, Poppele RE (1997) Representation of multiple kinematic parameters of the cat hindlimb in spinocerebellar activity. J Neurophysiol 78:1421–1432PubMed
26.
Zurück zum Zitat MacKay WA, Murphy JT (1974) Responses of interpositus neurons to passive muscle stretch. J Neurophysiol 37:1410–1423PubMed MacKay WA, Murphy JT (1974) Responses of interpositus neurons to passive muscle stretch. J Neurophysiol 37:1410–1423PubMed
27.
Zurück zum Zitat Kawaguchi S, Ono T (1974) Responses of interpositus neurones to inputs from muscle receptors. Exp Brain Res 21:375–386CrossRefPubMed Kawaguchi S, Ono T (1974) Responses of interpositus neurones to inputs from muscle receptors. Exp Brain Res 21:375–386CrossRefPubMed
28.
Zurück zum Zitat Eccles JC, Rosen I, Scheid P, Taborikova H (1972) Cutaneous afferent responses in interpositus neurones of the cat. Brain Res 42:207–211CrossRefPubMed Eccles JC, Rosen I, Scheid P, Taborikova H (1972) Cutaneous afferent responses in interpositus neurones of the cat. Brain Res 42:207–211CrossRefPubMed
29.
Zurück zum Zitat Rowland NC, Jaeger D (2005) Coding of tactile response properties in the rat deep cerebellar nuclei. J Neurophysiol 94:1236–1251CrossRefPubMed Rowland NC, Jaeger D (2005) Coding of tactile response properties in the rat deep cerebellar nuclei. J Neurophysiol 94:1236–1251CrossRefPubMed
30.
Zurück zum Zitat Soteropoulos DS, Baker SN (2008) Bilateral representation in the deep cerebellar nuclei. J Physiol 586:1117–1136CrossRefPubMed Soteropoulos DS, Baker SN (2008) Bilateral representation in the deep cerebellar nuclei. J Physiol 586:1117–1136CrossRefPubMed
31.
Zurück zum Zitat Zackowski KM, Thach WT Jr, Bastian AJ (2002) Cerebellar subjects show impaired coupling of reach and grasp movements. Exp Brain Res 146:511–522CrossRefPubMed Zackowski KM, Thach WT Jr, Bastian AJ (2002) Cerebellar subjects show impaired coupling of reach and grasp movements. Exp Brain Res 146:511–522CrossRefPubMed
32.
Zurück zum Zitat Thach WT, Bastian AJ (2004) Role of the cerebellum in the control and adaptation of gait in health and disease. Prog Brain Res 143:353–366CrossRefPubMed Thach WT, Bastian AJ (2004) Role of the cerebellum in the control and adaptation of gait in health and disease. Prog Brain Res 143:353–366CrossRefPubMed
33.
Zurück zum Zitat Cooper SE, Martin JH, Ghez C (2000) Effects of inactivation of the anterior interpositus nucleus on the kinematic and dynamic control of multijoint movement. J Neurophysiol 84:1988–2000PubMed Cooper SE, Martin JH, Ghez C (2000) Effects of inactivation of the anterior interpositus nucleus on the kinematic and dynamic control of multijoint movement. J Neurophysiol 84:1988–2000PubMed
34.
Zurück zum Zitat Bastian AJ, Martin TA, Keating JG, Thach WT (1996) Cerebellar ataxia: abnormal control of interaction torques across multiple joints. J Neurophysiol 76:492–509PubMed Bastian AJ, Martin TA, Keating JG, Thach WT (1996) Cerebellar ataxia: abnormal control of interaction torques across multiple joints. J Neurophysiol 76:492–509PubMed
35.
Zurück zum Zitat Miall RC, Weir DJ, Stein JF (1987) Visuo-motor tracking during reversible inactivation of the cerebellum. Exp Brain Res 65:455–464CrossRefPubMed Miall RC, Weir DJ, Stein JF (1987) Visuo-motor tracking during reversible inactivation of the cerebellum. Exp Brain Res 65:455–464CrossRefPubMed
36.
Zurück zum Zitat Giaquinta G, Valle MS, Caserta C, Casabona A, Bosco G, Perciavalle V (2000) Sensory representation of passive movement kinematics by rat's spinocerebellar Purkinje cells. Neurosci Lett 285:41–44CrossRefPubMed Giaquinta G, Valle MS, Caserta C, Casabona A, Bosco G, Perciavalle V (2000) Sensory representation of passive movement kinematics by rat's spinocerebellar Purkinje cells. Neurosci Lett 285:41–44CrossRefPubMed
37.
Zurück zum Zitat Fu QG, Flament D, Coltz JD, Ebner TJ (1997) Relationship of cerebellar Purkinje cell simple spike discharge to movement kinematics in the monkey. J Neurophysiol 78:478–491PubMed Fu QG, Flament D, Coltz JD, Ebner TJ (1997) Relationship of cerebellar Purkinje cell simple spike discharge to movement kinematics in the monkey. J Neurophysiol 78:478–491PubMed
38.
Zurück zum Zitat Coltz JD, Johnson MTV, Ebner TJ (1999) Cerebellar Purkinje cell simple spike discharge encodes movement velocity in primates during visuomotor arm tracking. J Neurosci 19:1782–1803PubMed Coltz JD, Johnson MTV, Ebner TJ (1999) Cerebellar Purkinje cell simple spike discharge encodes movement velocity in primates during visuomotor arm tracking. J Neurosci 19:1782–1803PubMed
39.
Zurück zum Zitat Roitman AV, Pasalar S, Johnson MT, Ebner TJ (2005) Position, direction of movement, and speed tuning of cerebellar Purkinje cells during circular manual tracking in monkey. J Neurosci 25:9244–9257CrossRefPubMed Roitman AV, Pasalar S, Johnson MT, Ebner TJ (2005) Position, direction of movement, and speed tuning of cerebellar Purkinje cells during circular manual tracking in monkey. J Neurosci 25:9244–9257CrossRefPubMed
40.
Zurück zum Zitat Tarnecki R, Morrison AR, Rajkowski J (1974) Neuronal activity in normal and cortically deprived interpositus neurons of the cat. Brain Res 73(3):534–539CrossRefPubMed Tarnecki R, Morrison AR, Rajkowski J (1974) Neuronal activity in normal and cortically deprived interpositus neurons of the cat. Brain Res 73(3):534–539CrossRefPubMed
41.
Zurück zum Zitat Holdefer RN, Houk JC, Miller LE (2005) Movement-related discharge in the cerebellar nuclei persists after local injections of GABA(A) antagonists. J Neurophysiol 93(1):35–43CrossRefPubMed Holdefer RN, Houk JC, Miller LE (2005) Movement-related discharge in the cerebellar nuclei persists after local injections of GABA(A) antagonists. J Neurophysiol 93(1):35–43CrossRefPubMed
42.
Zurück zum Zitat Apps R, Garwicz M (2005) Anatomical and physiological foundations of cerebellar information processing. Nat Rev Neurosci 6:297–311CrossRefPubMed Apps R, Garwicz M (2005) Anatomical and physiological foundations of cerebellar information processing. Nat Rev Neurosci 6:297–311CrossRefPubMed
43.
Zurück zum Zitat van Kan PL, McCurdy ML (2001) Role of primate magnocellular red nucleus neurons in controlling hand preshaping during reaching to grasp. J Neurophysiol 85:1461–1478PubMed van Kan PL, McCurdy ML (2001) Role of primate magnocellular red nucleus neurons in controlling hand preshaping during reaching to grasp. J Neurophysiol 85:1461–1478PubMed
44.
Zurück zum Zitat van Kan PL, McCurdy ML (2002) Discharge of primate magnocellular red nucleus neurons during reaching to grasp in different spatial locations. Exp Brain Res 142:151–157CrossRefPubMed van Kan PL, McCurdy ML (2002) Discharge of primate magnocellular red nucleus neurons during reaching to grasp in different spatial locations. Exp Brain Res 142:151–157CrossRefPubMed
45.
Zurück zum Zitat van Kan PL, McCurdy ML (2002) Contribution of primate magnocellular red nucleus to timing of hand preshaping during reaching to grasp. J Neurophysiol 87:1473–1487PubMed van Kan PL, McCurdy ML (2002) Contribution of primate magnocellular red nucleus to timing of hand preshaping during reaching to grasp. J Neurophysiol 87:1473–1487PubMed
46.
Zurück zum Zitat Miller LE, Sinkjaer T (1998) Primate red nucleus discharge encodes the dynamics of limb muscle activity. J Neurophysiol 80:59–70PubMed Miller LE, Sinkjaer T (1998) Primate red nucleus discharge encodes the dynamics of limb muscle activity. J Neurophysiol 80:59–70PubMed
47.
Zurück zum Zitat Johnson MT, Ebner TJ (2000) Processing of multiple kinematic signals in the cerebellum and motor cortices. Brain Res Brain Res Rev 33:155–168CrossRefPubMed Johnson MT, Ebner TJ (2000) Processing of multiple kinematic signals in the cerebellum and motor cortices. Brain Res Brain Res Rev 33:155–168CrossRefPubMed
48.
Zurück zum Zitat Johnson MT, Coltz JD, Ebner TJ (1999) Encoding of target direction and speed during visual instruction and arm tracking in dorsal premotor and primary motor cortical neurons. Eur J NeuroSci 81:4433–4445CrossRef Johnson MT, Coltz JD, Ebner TJ (1999) Encoding of target direction and speed during visual instruction and arm tracking in dorsal premotor and primary motor cortical neurons. Eur J NeuroSci 81:4433–4445CrossRef
49.
Zurück zum Zitat Prud'homme MJ, Kalaska JF (1994) Proprioceptive activity in primate primary somatosensory cortex during active arm reaching movements. J Neurophysiol 72:2280–2301PubMed Prud'homme MJ, Kalaska JF (1994) Proprioceptive activity in primate primary somatosensory cortex during active arm reaching movements. J Neurophysiol 72:2280–2301PubMed
50.
Zurück zum Zitat Thach WT (1978) Correlation of neural discharge with pattern and force of muscular activity, joint position, and direction of intended next movement in motor cortex and cerebellum. J Neurophysiol 41:654–676PubMed Thach WT (1978) Correlation of neural discharge with pattern and force of muscular activity, joint position, and direction of intended next movement in motor cortex and cerebellum. J Neurophysiol 41:654–676PubMed
51.
Zurück zum Zitat Gordon J, Ghilardi MF, Ghez C (1995) Impairments of reaching movements in patients without proprioception. I. Spatial errors. J Neurophysiol 73:347–360PubMed Gordon J, Ghilardi MF, Ghez C (1995) Impairments of reaching movements in patients without proprioception. I. Spatial errors. J Neurophysiol 73:347–360PubMed
52.
Zurück zum Zitat Allen GI, Tsukahara N (1974) Cerebrocerebellar communication systems. Physiol Rev 54:957–1006PubMed Allen GI, Tsukahara N (1974) Cerebrocerebellar communication systems. Physiol Rev 54:957–1006PubMed
53.
Zurück zum Zitat Allen GI, Gilbert PF, Marini R, Schultz W, Yin TC (1977) Integration of cerebral and peripheral inputs by interpositus neurons in monkey. Exp Brain Res 27:81–99CrossRefPubMed Allen GI, Gilbert PF, Marini R, Schultz W, Yin TC (1977) Integration of cerebral and peripheral inputs by interpositus neurons in monkey. Exp Brain Res 27:81–99CrossRefPubMed
54.
Zurück zum Zitat Bastian AJ (2006) Learning to predict the future: the cerebellum adapts feedforward movement control. Curr Opin Neurobiol 16:645–649CrossRefPubMed Bastian AJ (2006) Learning to predict the future: the cerebellum adapts feedforward movement control. Curr Opin Neurobiol 16:645–649CrossRefPubMed
55.
Zurück zum Zitat Blakemore SJ, Frith CD, Wolpert DM (2001) The cerebellum is involved in predicting the sensory consequences of action. NeuroReport 12:1879–1884CrossRefPubMed Blakemore SJ, Frith CD, Wolpert DM (2001) The cerebellum is involved in predicting the sensory consequences of action. NeuroReport 12:1879–1884CrossRefPubMed
56.
Zurück zum Zitat Schweighofer N, Spoelstra J, Arbib MA, Kawato M (1998) Role of the cerebellum in reaching movements in humans. II. A neural model of the intermediate cerebellum. Eur J NeuroSci 10:95–105CrossRefPubMed Schweighofer N, Spoelstra J, Arbib MA, Kawato M (1998) Role of the cerebellum in reaching movements in humans. II. A neural model of the intermediate cerebellum. Eur J NeuroSci 10:95–105CrossRefPubMed
57.
Zurück zum Zitat Ebner TJ, Pasalar S (2008) Cerebellum predicts the future motor state. Cerebellum 7:583–588CrossRefPubMed Ebner TJ, Pasalar S (2008) Cerebellum predicts the future motor state. Cerebellum 7:583–588CrossRefPubMed
58.
59.
Zurück zum Zitat Wolpert DM, Ghahramani Z, Flanagan JR (2001) Perspectives and problems in motor learning. Trends Cogn Sci 5:487–494CrossRefPubMed Wolpert DM, Ghahramani Z, Flanagan JR (2001) Perspectives and problems in motor learning. Trends Cogn Sci 5:487–494CrossRefPubMed
60.
Zurück zum Zitat Morton SM, Bastian AJ (2006) Cerebellar contributions to locomotor adaptations during splitbelt treadmill walking. J Neurosci 26:9107–9116CrossRefPubMed Morton SM, Bastian AJ (2006) Cerebellar contributions to locomotor adaptations during splitbelt treadmill walking. J Neurosci 26:9107–9116CrossRefPubMed
61.
Zurück zum Zitat Smith MA, Shadmehr R (2005) Intact ability to learn internal models of arm dynamics in Huntington's disease but not cerebellar degeneration. J Neurophysiol 93:2809–2821CrossRefPubMed Smith MA, Shadmehr R (2005) Intact ability to learn internal models of arm dynamics in Huntington's disease but not cerebellar degeneration. J Neurophysiol 93:2809–2821CrossRefPubMed
62.
Zurück zum Zitat Lang CE, Bastian AJ (1999) Cerebellar subjects show impaired adaptation of anticipatory EMG during catching. J Neurophysiol 82:2108–2119PubMed Lang CE, Bastian AJ (1999) Cerebellar subjects show impaired adaptation of anticipatory EMG during catching. J Neurophysiol 82:2108–2119PubMed
63.
Zurück zum Zitat Diedrichsen J, Verstynen T, Lehman SL, Ivry RB (2005) Cerebellar involvement in anticipating the consequences of self-produced actions during bimanual movements. J Neurophysiol 93:801–812CrossRefPubMed Diedrichsen J, Verstynen T, Lehman SL, Ivry RB (2005) Cerebellar involvement in anticipating the consequences of self-produced actions during bimanual movements. J Neurophysiol 93:801–812CrossRefPubMed
64.
Zurück zum Zitat Monzee J, Drew T, Smith AM (2004) Effects of muscimol inactivation of the cerebellar nuclei on precision grip. J Neurophysiol 91:1240–1249CrossRefPubMed Monzee J, Drew T, Smith AM (2004) Effects of muscimol inactivation of the cerebellar nuclei on precision grip. J Neurophysiol 91:1240–1249CrossRefPubMed
Metadaten
Titel
Processing of Limb Kinematics in the Interpositus Nucleus
verfasst von
Antonino Casabona
Gianfranco Bosco
Vincenzo Perciavalle
Maria Stella Valle
Publikationsdatum
01.03.2010
Verlag
Springer-Verlag
Erschienen in
The Cerebellum / Ausgabe 1/2010
Print ISSN: 1473-4222
Elektronische ISSN: 1473-4230
DOI
https://doi.org/10.1007/s12311-009-0149-x

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