Brainstem white matter microstructure is associated with hyporesponsiveness and overall sensory features in autistic children.

IF 6.3 1区 医学 Q1 GENETICS & HEREDITY Molecular Autism Pub Date : 2022-12-19 DOI:10.1186/s13229-022-00524-3
Olivia Surgent, Ali Riaz, Karla K Ausderau, Nagesh Adluru, Gregory R Kirk, Jose Guerrero-Gonzalez, Emily C Skaletski, Steven R Kecskemeti, Douglas C Dean Iii, Susan Ellis Weismer, Andrew L Alexander, Brittany G Travers
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Abstract

Background: Elevated or reduced responses to sensory stimuli, known as sensory features, are common in autistic individuals and often impact quality of life. Little is known about the neurobiological basis of sensory features in autistic children. However, the brainstem may offer critical insights as it has been associated with both basic sensory processing and core features of autism.

Methods: Diffusion-weighted imaging (DWI) and parent-report of sensory features were acquired from 133 children (61 autistic children with and 72 non-autistic children, 6-11 years-old). Leveraging novel DWI processing techniques, we investigated the relationship between sensory features and white matter microstructure properties (free-water-elimination-corrected fractional anisotropy [FA] and mean diffusivity [MD]) in precisely delineated brainstem white matter tracts. Follow-up analyses assessed relationships between microstructure and sensory response patterns/modalities and analyzed whole brain white matter using voxel-based analysis.

Results: Results revealed distinct relationships between brainstem microstructure and sensory features in autistic children compared to non-autistic children. In autistic children, more prominent sensory features were generally associated with lower MD. Further, in autistic children, sensory hyporesponsiveness and tactile responsivity were strongly associated with white matter microstructure in nearly all brainstem tracts. Follow-up voxel-based analyses confirmed that these relationships were more prominent in the brainstem/cerebellum, with additional sensory-brain findings in the autistic group in the white matter of the primary motor and somatosensory cortices, the occipital lobe, the inferior parietal lobe, and the thalamic projections.

Limitations: All participants communicated via spoken language and acclimated to the sensory environment of an MRI session, which should be considered when assessing the generalizability of this work to the whole of the autism spectrum.

Conclusions: These findings suggest unique brainstem white matter contributions to sensory features in autistic children compared to non-autistic children. The brainstem correlates of sensory features underscore the potential reflex-like nature of behavioral responses to sensory stimuli in autism and have implications for how we conceptualize and address sensory features in autistic populations.

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自闭症儿童脑干白质微观结构与低反应性和整体感觉特征有关。
背景:对感官刺激的反应增强或减弱,即所谓的感官特征,在自闭症患者中很常见,并经常影响生活质量。我们对自闭症儿童的感觉特征的神经生物学基础知之甚少。然而,脑干可能提供关键的见解,因为它与基本的感觉处理和自闭症的核心特征有关。方法:对133例儿童(6 ~ 11岁,有自闭症儿童61例,非自闭症儿童72例)进行弥散加权成像(DWI)和感官特征的家长报告。利用新的DWI处理技术,我们研究了精确描绘的脑干白质束中感官特征与白质微观结构特性(经自由水消除校正的分数各向异性[FA]和平均扩散率[MD])之间的关系。后续分析评估了微观结构与感觉反应模式/模式之间的关系,并使用基于体素的分析分析了全脑白质。结果:自闭症儿童与非自闭症儿童相比,脑干微观结构与感觉特征有明显的关系。在自闭症儿童中,更突出的感觉特征通常与较低的MD相关。此外,在自闭症儿童中,几乎所有脑干束的感觉低反应性和触觉反应性与白质微结构密切相关。后续基于体素的分析证实,这些关系在脑干/小脑中更为突出,在自闭症组的初级运动皮层和体感觉皮层、枕叶、下顶叶和丘脑投射的白质中也有额外的感觉脑发现。局限性:所有参与者都通过口头语言进行交流,并适应MRI会话的感官环境,在评估这项工作对整个自闭症谱系的普遍性时应考虑到这一点。结论:这些发现表明,与非自闭症儿童相比,自闭症儿童的脑干白质对感觉特征有独特的贡献。感觉特征的脑干相关性强调了自闭症患者对感觉刺激的行为反应的潜在反射性质,并对我们如何概念化和处理自闭症人群的感觉特征具有启示意义。
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来源期刊
Molecular Autism
Molecular Autism GENETICS & HEREDITY-NEUROSCIENCES
CiteScore
12.10
自引率
1.60%
发文量
44
审稿时长
17 weeks
期刊介绍: Molecular Autism is a peer-reviewed, open access journal that publishes high-quality basic, translational and clinical research that has relevance to the etiology, pathobiology, or treatment of autism and related neurodevelopmental conditions. Research that includes integration across levels is encouraged. Molecular Autism publishes empirical studies, reviews, and brief communications.
期刊最新文献
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