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自闭症斑马鱼模型中听觉习惯化改变背后的全脑回路

Brain-wide circuitry underlying altered auditory habituation in zebrafish models of autism.

作者信息

Wilde Maya, Ghanbari Anahita, Mancienne Tessa, Moran Ailís, Poulsen Rebecca E, Constantin Lena, Lee Conrad, Scholz Leandro Aluisio, Arnold Joshua, Qin Wei, Karle Timothy J, Petrou Steven, Favre-Bulle Itia, Hoffman Ellen J, Scott Ethan K

机构信息

Queensland Brain Institute, University of Queensland, QLD, Australia.

Department of Anatomy and Physiology, University of Melbourne, VIC, Australia.

出版信息

bioRxiv. 2024 Sep 5:2024.09.04.611137. doi: 10.1101/2024.09.04.611137.

Abstract

Auditory processing is widely understood to occur differently in autism, though the patterns of brain activity underlying these differences are not well understood. The diversity of autism also means brain-wide networks may change in various ways to produce similar behavioral outputs. We used larval zebrafish to investigate auditory habituation in four genetic lines relevant to autism: , , and . In free-swimming behavioral tests, we found each line had a unique profile of auditory hypersensitivity and/or delayed habituation. Combining the optical transparency of larval zebrafish with genetically encoded calcium indicators and light-sheet microscopy, we then observed brain-wide activity at cellular resolution during auditory habituation. As with behavior, each line showed unique alterations in brain-wide spontaneous activity, auditory processing, and adaptation in response to repetitive acoustic stimuli. We also observed commonalities in activity across our genetic lines that indicate shared circuit changes underlying certain aspects of their behavioral phenotypes. These were predominantly in regions involved in sensory integration and sensorimotor gating rather than primary auditory areas. Overlapping phenotypes include differences in the activity and functional connectivity of the telencephalon, thalamus, dopaminergic regions, and the locus coeruleus, and excitatory/inhibitory imbalance in the cerebellum. Unique phenotypes include loss of activity in the habenula in , increased activity in auditory regions in and differences in network activity over time in and . Comparing these distinct but overlapping brain-wide auditory networks furthers our understanding of how diverse genetic factors can produce similar behavioral effects through a range of circuit- and network-scale mechanisms.

摘要

虽然人们普遍认为自闭症患者的听觉处理方式有所不同,但这些差异背后的大脑活动模式却尚未得到充分理解。自闭症的多样性还意味着全脑网络可能会以各种方式发生变化,从而产生相似的行为输出。我们使用斑马鱼幼体来研究与自闭症相关的四个基因系中的听觉习惯化:[基因系名称1]、[基因系名称2]、[基因系名称3]和[基因系名称4]。在自由游动行为测试中,我们发现每个基因系都有独特的听觉超敏反应和/或延迟习惯化特征。然后,我们将斑马鱼幼体的光学透明性与基因编码的钙指示剂和光片显微镜相结合,在听觉习惯化过程中以细胞分辨率观察全脑活动。与行为一样,每个基因系在全脑自发活动、听觉处理以及对重复声音刺激的适应方面都表现出独特的变化。我们还观察到各基因系之间活动的共性,这表明它们行为表型的某些方面存在共同的回路变化。这些变化主要发生在参与感觉整合和感觉运动门控的区域,而非初级听觉区域。重叠的表型包括端脑、丘脑、多巴胺能区域和蓝斑核的活动及功能连接差异,以及小脑中的兴奋/抑制失衡。独特的表型包括[基因系名称1]中缰核活动丧失、[基因系名称2]中听觉区域活动增加,以及[基因系名称3]和[基因系名称4]中网络活动随时间的差异。比较这些不同但重叠的全脑听觉网络,有助于我们进一步理解多种遗传因素如何通过一系列回路和网络尺度的机制产生相似的行为效应。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/adfd/11398315/8f5af6bccbda/nihpp-2024.09.04.611137v1-f0001.jpg

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