Volumetric alterations in auditory and visual subcortical nuclei following perinatal deafness in felines

IF 4.5 2区 医学 Q1 NEUROIMAGING NeuroImage Pub Date : 2025-03-01 Epub Date: 2025-01-23 DOI:10.1016/j.neuroimage.2025.121047
Alessandra Sacco , Stephen G. Gordon , Stephen G. Lomber
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Abstract

In response to sensory deprivation, the brain adapts to efficiently navigate a modified perceptual environment through a process referred to as compensatory crossmodal plasticity, allowing the remaining senses to repurpose deprived regions and networks. A mechanism that has been proposed to contribute to this plasticity involves adaptations within subcortical nuclei that trigger cascading effects throughout the brain. The current study uses 7T MRI to investigate the effect of perinatal deafness on the volumes of subcortical structures in felines, focusing on key sensory nuclei within the brainstem and thalamus. Using both ROI-based and morphometric approaches, the regional macrostructure of four auditory and two visual nuclei were studied, as well as the corresponding volumetric asymmetries within and across groups. In the auditory pathway, significant bilateral volumetric reductions were revealed within the lower-level structures (cochlear nucleus, superior olivary complex, and inferior colliculus), alongside a shrinkage of solely the left medial geniculate body. Within the visual pathway, a significant bilateral volumetric reduction was found in the lateral geniculate nucleus, with the superior colliculus largely unaffected. These regional alterations, along with an extensive loss of volume throughout the brainstem of deprived cats, were attributed to disuse-driven atrophy corresponding to evolved functional demands reflective of a modified perceptual environment. Furthermore, the left-right volumetric symmetries of the control subcortex were preserved following deafness. Overall, the current study reinforces the notion that subcortical structures likely contribute to compensatory crossmodal plasticity prior to cortical processing, and that these deafness-induced adaptations appear to be influenced by both the level of the affected structure within its respective sensory processing hierarchy and the specifics of its afferent profile.
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猫围产期耳聋后听觉和视觉皮层下核的体积变化。
作为对感觉剥夺的反应,大脑通过一种被称为代偿性跨模态可塑性的过程来适应有效地导航改变的感知环境,允许剩余的感官重新利用被剥夺的区域和网络。已经提出的一种机制有助于这种可塑性涉及皮质下核的适应性,这种适应性触发了整个大脑的级联效应。本研究使用7T MRI研究围产期耳聋对猫皮质下结构体积的影响,重点关注脑干和丘脑内的关键感觉核。采用基于roi和形态测量的方法,研究了四个听觉核和两个视觉核的区域宏观结构,以及组内和组间相应的体积不对称性。在听觉通路中,双侧较低水平结构(耳蜗核、上橄榄复合体和下丘)的体积明显减少,同时仅左侧内侧膝状体(MGB)缩小。在视觉通路内,发现外侧膝状核的双侧体积明显减少,而上丘基本未受影响。这些区域的改变,以及在被剥夺的猫的脑干中大面积的体积损失,被归因于与进化的功能需求相对应的无用驱动的萎缩,反映了改变的感知环境。此外,耳聋后,对照组皮层下的左右体积对称性得以保留。总的来说,目前的研究强化了皮层下结构可能在皮层处理之前促进代偿性跨模态可塑性的观点,并且这些耳聋诱导的适应似乎受到其各自感觉处理层次中受影响结构的水平及其传入轮廓的具体情况的影响。
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来源期刊
NeuroImage
NeuroImage 医学-核医学
CiteScore
11.30
自引率
10.50%
发文量
809
审稿时长
63 days
期刊介绍: NeuroImage, a Journal of Brain Function provides a vehicle for communicating important advances in acquiring, analyzing, and modelling neuroimaging data and in applying these techniques to the study of structure-function and brain-behavior relationships. Though the emphasis is on the macroscopic level of human brain organization, meso-and microscopic neuroimaging across all species will be considered if informative for understanding the aforementioned relationships.
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