首页> 美国卫生研究院文献>The Journal of Neuroscience >Cross-Modal Plasticity in Higher-Order Auditory Cortex of Congenitally Deaf Cats Does Not Limit Auditory Responsiveness to Cochlear Implants
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Cross-Modal Plasticity in Higher-Order Auditory Cortex of Congenitally Deaf Cats Does Not Limit Auditory Responsiveness to Cochlear Implants

机译:先天性聋猫的高阶听觉皮层的跨模态可塑性并不限制听觉对人工耳蜗的响应能力。

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摘要

Congenital sensory deprivation can lead to reorganization of the deprived cortical regions by another sensory system. Such cross-modal reorganization may either compete with or complement the “original“ inputs to the deprived area after sensory restoration and can thus be either adverse or beneficial for sensory restoration. In congenital deafness, a previous inactivation study documented that supranormal visual behavior was mediated by higher-order auditory fields in congenitally deaf cats (CDCs). However, both the auditory responsiveness of “deaf” higher-order fields and interactions between the reorganized and the original sensory input remain unknown. Here, we studied a higher-order auditory field responsible for the supranormal visual function in CDCs, the auditory dorsal zone (DZ). Hearing cats and visual cortical areas served as a control. Using mapping with microelectrode arrays, we demonstrate spatially scattered visual (cross-modal) responsiveness in the DZ, but show that this did not interfere substantially with robust auditory responsiveness elicited through cochlear implants. Visually responsive and auditory-responsive neurons in the deaf auditory cortex formed two distinct populations that did not show bimodal interactions. Therefore, cross-modal plasticity in the deaf higher-order auditory cortex had limited effects on auditory inputs. The moderate number of scattered cross-modally responsive neurons could be the consequence of exuberant connections formed during development that were not pruned postnatally in deaf cats. Although juvenile brain circuits are modified extensively by experience, the main driving input to the cross-modally (visually) reorganized higher-order auditory cortex remained auditory in congenital deafness.>SIGNIFICANCE STATEMENT In a common view, the “unused” auditory cortex of deaf individuals is reorganized to a compensatory sensory function during development. According to this view, cross-modal plasticity takes over the unused cortex and reassigns it to the remaining senses. Therefore, cross-modal plasticity might conflict with restoration of auditory function with cochlear implants. It is unclear whether the cross-modally reorganized auditory areas lose auditory responsiveness. We show that the presence of cross-modal plasticity in a higher-order auditory area does not reduce auditory responsiveness of that area. Visual reorganization was moderate, spatially scattered and there were no interactions between cross-modally reorganized visual and auditory inputs. These results indicate that cross-modal reorganization is less detrimental for neurosensory restoration than previously thought.
机译:先天性感觉剥夺可导致另一种感觉系统对剥夺的皮质区域进行重组。在感官恢复之后,这种交叉模式的重组可能会与“原始”输入竞争或补充到贫困地区的“原始”输入,因此可能对感觉恢复不利或有益。在先天性耳聋中,先前的一项灭活研究表明,先天性聋猫(CDC)的高阶听觉场介导了超正常的视觉行为。然而,“聋”高阶场的听觉响应能力以及重组和原始感觉输入之间的相互作用仍然未知。在这里,我们研究了一个高阶听觉区域,该区域负责CDC中的超正常视觉功能,即听觉背部区域(DZ)。听力猫和视觉皮层区域作为对照。使用微电极阵列作图,我们证明了DZ中空间分散的视觉(交叉模式)响应能力,但表明这基本上不干扰通过人工耳蜗植入引起的健壮听觉响应能力。聋人听觉皮层中的视觉响应和听觉响应神经元形成两个不同的群体,没有显示出双峰相互作用。因此,聋哑高阶听觉皮层的交叉模态可塑性对听觉输入的影响有限。中等数量的交叉模态响应神经元散布可能是发育过程中形成的旺盛连接的结果,而聋哑猫出生后并未对其进行修剪。尽管青少年的大脑回路根据经验进行了广泛的修改,但在先天性耳聋中,跨模式(视觉上)重组的高阶听觉皮层的主要驱动输入仍然是听觉。>重要声明在发育过程中,聋人未使用的“听觉皮层”会重新组织为代偿性感觉功能。根据这种观点,交叉模态可塑性接管了未使用的皮质,并将其重新分配给其余的感官。因此,跨模态可塑性可能与耳蜗植入物的听觉功能恢复相冲突。尚不清楚跨模式重组的听觉区域是否会失去听觉响应能力。我们表明,在高阶听觉区域中存在交叉模态可塑性不会降低该区域的听觉响应能力。视觉重组是适度的,在空间上是分散的,跨模态重组的视觉和听觉输入之间没有相互作用。这些结果表明,跨模态重组对神经感觉恢复的危害要比以前认为的要小。

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