Friel Kathleen M, Martin John H
Department of Neuroscience, Columbia University, New York, New York 10032, USA.
J Neurosci. 2007 Oct 10;27(41):11083-90. doi: 10.1523/JNEUROSCI.2814-07.2007.
Activity-dependent competition between the corticospinal (CS) systems in each hemisphere drives postnatal development of motor skills and stable CS tract connections with contralateral spinal motor circuits. Unilateral restriction of motor cortex (M1) activity during an early postnatal critical period impairs contralateral visually guided movements later in development and in maturity. Silenced M1 develops aberrant connections with the contralateral spinal cord whereas the initially active M1, in the other hemisphere, develops bilateral connections. In this study, we determined whether the aberrant pattern of CS tract terminations and motor impairments produced by early postnatal M1 activity restriction could be abrogated by reducing activity-dependent synaptic competition from the initially active M1 later in development. We first inactivated M1 unilaterally between postnatal weeks 5-7. We next inactivated M1 on the other side from weeks 7-11 (alternate inactivation), to reduce the competitive advantage that this side may have over the initially inactivated side. Alternate inactivation redirected aberrant contralateral CS tract terminations from the initially silenced M1 to their normal spinal territories and reduced the density of aberrant ipsilateral terminations from the initially active side. Normal movement endpoint control during visually guided locomotion was fully restored. This reorganization of CS terminals reveals an unsuspected late plasticity after the critical period for establishing the pattern of CS terminations in the spinal cord. Our findings show that robust bilateral interactions between the developing CS systems on each side are important for achieving balance between contralateral and ipsilateral CS tract connections and visuomotor control.
每个半球的皮质脊髓(CS)系统之间依赖活动的竞争驱动了运动技能的产后发育以及CS束与对侧脊髓运动回路的稳定连接。在出生后早期关键期单侧限制运动皮层(M1)活动会损害发育后期和成熟时对侧视觉引导的运动。沉默的M1与对侧脊髓形成异常连接,而另一侧最初活跃的M1则形成双侧连接。在本研究中,我们确定了出生后早期M1活动限制所产生的CS束终末异常模式和运动障碍是否可以通过在发育后期减少来自最初活跃的M1的依赖活动的突触竞争来消除。我们首先在出生后第5 - 7周单侧灭活M1。接下来在第7 - 11周灭活另一侧的M1(交替灭活),以减少这一侧相对于最初灭活侧可能具有的竞争优势。交替灭活将异常的对侧CS束终末从最初沉默的M1重新引导至其正常的脊髓区域,并降低了来自最初活跃侧的异常同侧终末的密度。在视觉引导的运动过程中,正常的运动终点控制得以完全恢复。CS终末的这种重组揭示了在脊髓中建立CS终末模式的关键期之后未曾预料到的晚期可塑性。我们的研究结果表明,两侧发育中的CS系统之间强大的双侧相互作用对于在对侧和同侧CS束连接以及视觉运动控制之间实现平衡很重要。