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Adaptive crossmodal plasticity in deaf auditory cortex: areal and laminar contributions to supranormal vision in the deaf

机译:聋人听觉皮层的自适应跨型塑​​性:聋人中对素统一性的贡献

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This chapter is a summary of three interdigitated investigations to identify the neural substrate underlying supranormal vision in the congenitally deaf. In the first study, we tested both congenitally deaf and hearing cats on a battery of visual psychophysical tasks to identify those visual functions that are enhanced in the congenitally deaf. From this investigation, we found that congenitally deaf, compared to hearing, cats have superior visual localization in the peripheral field and lower visual movement detection thresholds. In the second study, we examined the role of "deaf" auditory cortex in mediating the supranormal visual abilities by reversibly deactivating specific cortical loci with cooling. We identified that in deaf cats, reversible deactivation of a region of cortex typically identified as the posterior auditory field (PAF) in hearing cats selectively eliminated superior visual localization abilities. It was also found that deactivation of the dorsal zone (DZ) of "auditory" cortex eliminated the superior visual motion detection abilities of deaf cats. In the third study, graded cooling was applied to deaf PAF and deaf DZ to examine the laminar contributions to the superior visual abilities of the deaf. Graded cooling of deaf PAF revealed that deactivation of the superficial layers alone does not cause significant visual localization deficits. Profound deficits were identified only when cooling extended through all six layers of deaf PAF. In contrast, graded cooling of deaf DZ showed that deactivation of only the superficial layers was required to elicit increased visual motion detection thresholds. Collectively, these three studies show that the superficial layers of deaf DZ mediate the enhanced visual motion detection of the deaf, while the full thickness of deaf PAF must be deactivated in order to eliminate the superior visual localization abilities of the congenitally deaf. Taken together, this combination of experimental approaches has demonstrated a causal link between the crossmodal reorganization of auditory cortex and enhanced visual abilities of the deaf, as well as identified the cortical regions responsible for adaptive supranormal vision.
机译:本章是三种间隔调查的概述,以鉴定在先天性耳聋中的神经血管视觉下面的神经基质。在第一项研究中,我们在视觉心理物理任务的电池上测试了在视觉心理物理任务的电池上的测试,以识别在同机聋的那些可视功能。根据这一调查,我们发现,与听力相比,聋人聋了,猫在外围场中具有卓越的视觉定位和较低的视觉运动检测阈值。在第二项研究中,我们通过可逆地停用细细的皮质基因座来检查“聋”听觉皮质在调解Supranormal视觉能力中的作用。我们认为,在聋猫中,在听觉猫中,通常被识别为后听觉区域(PAF)的皮质区域的可逆停用,从而选择性地消除了优异的视觉局部化能力。还发现,“听觉”皮质的背区(DZ)的失活消除了聋猫的卓越视觉运动检测能力。在第三研究中,将分级冷却施加到聋人PAF和聋人DZ中,以检查层层贡献对聋人的优越视觉能力。聋人PAF的分级冷却显示,单独的浅层层的失活不会引起显着的视觉本地化缺陷。仅在通过所有六层聋人PAF延伸时才能识别深刻的赤字。相反,聋人DZ的分级冷却显示,仅需要浅表层的失活来引发增加的视觉运动检测阈值。集体,这三个研究表明,聋哑DZ的浅层层介导聋人的增强的视觉运动检测,而必须停用聋人PAF的全厚度,以消除先天性耳聋的优越视觉定位能力。在一起,这种实验方法的组合已经证明了听觉皮层的横戴重组和增强聋人的视觉能力之间的因果关系,以及鉴定了负责适应性血阶视觉的皮质区域。

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