Neuroscience and Cognitive Science Program, University of Maryland, College Park, Maryland, USA.
Department of Biology, University of Maryland, College Park, Maryland, USA.
J Comp Neurol. 2023 Oct;531(14):1459-1481. doi: 10.1002/cne.25525. Epub 2023 Jul 21.
Sound perception is highly malleable, rapidly adjusting to the acoustic environment and behavioral demands. This flexibility is the result of ongoing changes in auditory cortical activity driven by fluctuations in attention, arousal, or prior expectations. Recent work suggests that the orbitofrontal cortex (OFC) may mediate some of these rapid changes, but the anatomical connections between the OFC and the auditory system are not well characterized. Here, we used virally mediated fluorescent tracers to map the projection from OFC to the auditory midbrain, thalamus, and cortex in a classic animal model for auditory research, the Mongolian gerbil (Meriones unguiculatus). We observed no connectivity between the OFC and the auditory midbrain, and an extremely sparse connection between the dorsolateral OFC and higher order auditory thalamic regions. In contrast, we observed a robust connection between the ventral and medial subdivisions of the OFC and the auditory cortex, with a clear bias for secondary auditory cortical regions. OFC axon terminals were found in all auditory cortical lamina but were significantly more concentrated in the infragranular layers. Tissue-clearing and lightsheet microscopy further revealed that auditory cortical-projecting OFC neurons send extensive axon collaterals throughout the brain, targeting both sensory and non-sensory regions involved in learning, decision-making, and memory. These findings provide a more detailed map of orbitofrontal-auditory connections and shed light on the possible role of the OFC in supporting auditory cognition.
声音感知具有高度的可塑性,能够根据声学环境和行为需求快速调整。这种灵活性是由于注意力、觉醒或先前期望的波动驱动的听觉皮层活动的持续变化所致。最近的工作表明,眶额皮层(OFC)可能介导了这些快速变化的一部分,但 OFC 与听觉系统之间的解剖连接尚未得到很好的描述。在这里,我们使用病毒介导的荧光示踪剂来绘制在经典的听觉研究动物模型——蒙古沙鼠(Meriones unguiculatus)中,OFC 到听觉中脑、丘脑和皮层的投射。我们没有观察到 OFC 与听觉中脑之间的连接,也没有观察到背外侧 OFC 与高级听觉丘脑区域之间的稀疏连接。相比之下,我们观察到 OFC 的腹侧和内侧部分与听觉皮层之间存在强大的连接,并且与次级听觉皮层区域有明显的偏向性。OFC 轴突末梢存在于所有听觉皮层层中,但在颗粒下层中更为集中。组织清除和光片显微镜进一步显示,投射到听觉皮层的 OFC 神经元在大脑中发出广泛的轴突侧支,靶向参与学习、决策和记忆的感觉和非感觉区域。这些发现提供了更详细的眶额听觉连接图,并阐明了 OFC 在支持听觉认知方面的可能作用。