Plastic Changes in Striatal Fast-Spiking Interneurons Following Hemicerebellectomy and Environmental Enrichment

被引:0
作者
Paola De Bartolo
Francesca Gelfo
Lorena Burello
Andrea De Giorgio
Laura Petrosini
Alberto Granato
机构
[1] IRCCS S. Lucia Foundation,Department of Psychology
[2] “Sapienza” University of Rome,Department of Psychology
[3] Catholic University,undefined
来源
The Cerebellum | 2011年 / 10卷
关键词
Striatum; Hemicerebellectomy; Environmental enrichment; Fast-spiking interneurons; Rat;
D O I
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中图分类号
学科分类号
摘要
Recent findings suggest marked interconnections between the cerebellum and striatum, thus challenging the classical view of their segregated operation in motor control. Therefore, this study was aimed at further investigating this issue by analyzing the effects of hemicerebellectomy (HCb) on density and dendritic length of striatal fast-spiking interneurons (FSi). First, we analyzed the plastic rearrangements of striatal FSi morphology in hemicerebellectomized animals reared in standard conditions. Then, since environmental enrichment (EE) induces structural changes in experimental models of brain disease, we evaluated FSi morphology in lesioned animals exposed to an enriched environment after HCb. Although HCb did not affect FSi density, it progressively shrank dendritic branching of striatal FSi of both sides. These plastic changes, already evident 15 days after the cerebellar ablation, became very marked 30 days after the lesion. Such a relevant effect was completely abolished by postoperative enrichment. EE not only counteracted shrinkage of FSi dendritic arborization but also provoked a progressive increase in dendritic length which surpassed that of the controls as the enrichment period lengthened. These data confirm that the cerebellum and striatum are more interconnected than previously retained. Furthermore, cerebellar damage likely evokes a striatal response through cortical mediation. The EE probably modifies HCb-induced plastic changes in the striatum by increasing the efficiency of the cortical circuitry. This is the first study describing the morphological rearrangement of striatal FSi following a cerebellar lesion; it provides the basis for further studies aimed at investigating the mechanisms underlying cerebello-striatal “talking.”
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页码:624 / 632
页数:8
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[1]  
Friston KJ(1992)Motor practice and neurophysiological adaptation in the cerebellum: a positron tomography study Proc Biol Sci 248 223-8
[2]  
Frith CD(1994)Motor sequence learning: a study with positron emission tomography J Neurosci 14 3775-90
[3]  
Passingham RE(1994)Successive roles of the cerebellum and premotor cortices in trajectorial learning Neuroreport 5 2541-4
[4]  
Liddle PF(1997)Anatomy of motor learning. II. Subcortical structures and learning by trial and error J Neurophysiol 77 1325-37
[5]  
Frackowiak RS(1998)The time course of changes during motor sequence learning: a whole-brain fMRI study Neuroimage 8 50-61
[6]  
Jenkins IH(2001)Distinct contribution of the striatum and cerebellum to motor learning Brain Cogn 45 189-211
[7]  
Brooks DJ(2002)Differential role for the striatum and cerebellum in response to novel movements using a motor learning paradigm Neuropsychologia 40 512-7
[8]  
Nixon PD(2005)Shared brain areas but not functional connections controlling movement timing and order J Neurosci 25 5290-7
[9]  
Frackowiak RS(2006)From preparation to online control: reappraisal of neural circuitry mediating internally generated and externally guided actions Neuroimage 31 1177-87
[10]  
Passingham RE(1994)Cortical control of movement Ann Neurol 36 3-4