Centre of Bio-Medical Research, Sanjay Gandhi Postgraduate Institute of Medical Sciences Campus, Lucknow 226014, India
Centre of Bio-Medical Research, Sanjay Gandhi Postgraduate Institute of Medical Sciences Campus, Lucknow 226014, India.
J Neurosci. 2024 Mar 27;44(13):e1649232024. doi: 10.1523/JNEUROSCI.1649-23.2024.
Within the intricate matrices of cognitive neuroscience, auditory deprivation acts as a catalyst, propelling a cascade of neuroanatomical adjustments that have, until now, been suboptimally articulated in extant literature. Addressing this gap, our study harnesses high-resolution 3 T MRI modalities to unveil the multifaceted cortical transformations that emerge in tandem with congenital auditory deficits. We conducted a rigorous cortical surface analysis on a cohort of 90 congenitally deaf individuals, systematically compared with 90 normoacoustic controls. Our sample encompassed both male and female participants, ensuring a gender-inclusive perspective in our analysis. Expected alterations within prototypical auditory domains were evident, but our findings transcended these regions, spotlighting modifications dispersed across a gamut of cortical and subcortical structures, thereby epitomizing the cerebral adaptive dynamics to sensory voids. Crucially, the study's innovative methodology integrated two pivotal variables: the duration of auditory deprivation and the extent of sign language immersion. By intersecting these metrics with structural changes, our analysis unveiled nuanced layers of cortical reconfigurations, elucidating a more granulated understanding of neural plasticity. This intersectional approach bestows a unique advantage, allowing for a discerning exploration into how varying durations of sensory experience and alternative communication modalities modulate the brain's morphological terrain. In encapsulating the synergy of neuroimaging finesse and incisive scientific rigor, this research not only broadens the current understanding of adaptive neural mechanisms but also paves the way for tailored therapeutic strategies, finely attuned to individual auditory histories and communicative repertoires.
在认知神经科学的复杂矩阵中,听觉剥夺起着催化剂的作用,推动了一连串的神经解剖学调整,这些调整在现有文献中一直没有得到充分阐述。为了弥补这一空白,我们的研究利用高分辨率 3T MRI 模式来揭示与先天性听觉缺陷同时出现的多方面皮质转变。我们对 90 名先天性耳聋个体进行了严格的皮质表面分析,并与 90 名正常听力对照进行了系统比较。我们的样本包括男性和女性参与者,以确保在分析中具有性别包容性视角。预期的典型听觉区域内的改变是明显的,但我们的发现超出了这些区域,突出了分布在一系列皮质和皮质下结构中的改变,从而体现了大脑对感觉缺失的适应性动态。至关重要的是,该研究的创新方法整合了两个关键变量:听觉剥夺的持续时间和手语沉浸的程度。通过将这些指标与结构变化相交,我们的分析揭示了皮质重新配置的细微层次,阐明了对神经可塑性的更细致理解。这种交叉方法提供了一个独特的优势,允许对不同持续时间的感官体验和替代交流方式如何调节大脑的形态地形进行细致探索。通过将神经影像学的精细和尖锐的科学严谨性结合起来,这项研究不仅拓宽了对适应性神经机制的现有理解,而且为针对个体听觉史和交流能力的定制治疗策略铺平了道路。