How do neural connectivity and time delays influence bimanual coordination?

被引:32
作者
Banerjee, Arpan [1 ]
Jirsa, Viktor K.
机构
[1] Florida Atlantic Univ, Ctr Complex Syst Syst & Brain Sci, Boca Raton, FL 33431 USA
[2] CNRS, UMR Movement & Percept 6152, F-13288 Marseille 9, France
[3] Florida Atlantic Univ, Dept Phys, Boca Raton, FL 33431 USA
关键词
D O I
10.1007/s00422-006-0114-4
中图分类号
TP3 [计算技术、计算机技术];
学科分类号
0812 ;
摘要
Multilevel crosstalk as a neural basis for motor control has been widely discussed in the literature. Since no natural process is instantaneous, any crosstalk model should incorporate time delays, which are known to induce temporal coupling between functional elements and stabilize or destabilize a particular mode of coordination. In this article, we systematically study the dynamics of rhythmic bimanual coordination under the influence of varying connection topology as realized by callosal fibers, cortico-thalamic projections, and crossing peripheral fibers. Such connectivity contributes to various degrees of neural crosstalk between the effectors which we continuously parameterize in a mathematical model. We identify the stability regimes of bimanual coordination as a function of the degree of neural crosstalk, movement amplitude and the time delays involved due to signal processing. Prominent examples include explanations of the decreased stability of the antiphase mode of coordination in split brain patients and the role of coupling in mediating bimanual coordination.
引用
收藏
页码:265 / 278
页数:14
相关论文
共 79 条
[11]   Neuromuscular-skeletal constraints upon the dynamics of unimanual and bimanual coordination [J].
Carson, RG ;
Riek, S ;
Smethurst, CJ ;
Párraga, JFL ;
Byblow, WD .
EXPERIMENTAL BRAIN RESEARCH, 2000, 131 (02) :196-214
[12]   Simulating a neural cross-talk model for between-hand interference during bimanual circle drawing [J].
Cattaert, D ;
Semjen, A ;
Summers, JJ .
BIOLOGICAL CYBERNETICS, 1999, 81 (04) :343-358
[13]   Sensory feedback contributes to early movement-evoked fields during voluntary finger movements in humans [J].
Cheyne, D ;
Endo, H ;
Takeda, T ;
Weinberg, H .
BRAIN RESEARCH, 1997, 771 (02) :196-202
[14]   Intracranial ERPs in humans during a lateralized visual oddball task: II. Temporal, parietal, and frontal recordings [J].
Clarke, JM ;
Halgren, E ;
Chauvel, P .
CLINICAL NEUROPHYSIOLOGY, 1999, 110 (07) :1226-1244
[15]   SIMPLE REACTION-TIMES TO LATERALIZED LIGHT-FLASHES - VARIETIES OF INTERHEMISPHERIC COMMUNICATION ROUTES [J].
CLARKE, JM ;
ZAIDEL, E .
BRAIN, 1989, 112 :849-870
[16]   Stabilization of bimanual coordination due to active interhemispheric inhibition: a dynamical account [J].
Daffertshofer, A ;
Peper, CE ;
Beek, PJ .
BIOLOGICAL CYBERNETICS, 2005, 92 (02) :101-109
[18]   Neural interactions between motor cortical hemispheres during bimanual and unimanual arm movements [J].
de Oliveira, SC ;
Gribova, A ;
Donchin, O ;
Bergman, H ;
Vaadia, E .
EUROPEAN JOURNAL OF NEUROSCIENCE, 2001, 14 (11) :1881-1896
[19]   The neuronal basis of bimanual coordination: recent neurophysiological evidence and functional models [J].
de Oliveira, SC .
ACTA PSYCHOLOGICA, 2002, 110 (2-3) :139-159
[20]   Brain areas involved in interlimb coordination:: A distributed network [J].
Debaere, F ;
Swinnen, SP ;
Béatse, E ;
Sunaert, S ;
Van Hecke, P ;
Duysens, J .
NEUROIMAGE, 2001, 14 (05) :947-958