Neuroscience Program, University of Illinois at Urbana-Champaign, Urbana, IL 61801, United States of America.
Neuroscience Program, University of Illinois at Urbana-Champaign, Urbana, IL 61801, United States of America; Beckman Institute for Advanced Science and Technology, University of Illinois at Urbana-Champaign, Urbana, IL 61801, United States of America; Department of Molecular and Integrative Physiology, University of Illinois at Urbana-Champaign, Urbana, IL 61801, United States of America.
Cell Calcium. 2023 May;111:102717. doi: 10.1016/j.ceca.2023.102717. Epub 2023 Mar 12.
Our sensory environment is permeated by a diverse array of auditory and somatosensory stimuli. The pairing of acoustic signals with concurrent or forthcoming tactile cues are abundant in everyday life and various survival contexts across species, thus deeming the ability to integrate sensory inputs arising from the combination of these stimuli as crucial. The corticothalamic system plays a critical role in orchestrating the construction, integration and distribution of the information extracted from these sensory modalities. In this mini-review, we provide a circuit-level description of the auditory corticothalamic pathway in conjunction with adjacent corticothalamic somatosensory projections. Although the extent of the functional interactions shared by these pathways is not entirely elucidated, activation of each of these systems appears to modulate sensory perception in the complementary domain. Several specific issues are reviewed. Under certain environmental noise conditions, the spectral information of a sound could induce modulations in nociception and even induce analgesia. We begin by discussing recent findings by Zhou et al. (2022) implicating the corticothalamic system in mediating sound-induced analgesia. Next, we describe relevant components of the corticothalamic pathway's functional organization. Additionally, we describe an emerging body of literature pointing to intrathalamic circuitry being optimal for controlling and selecting sensory signals across modalities, with the thalamic reticular nucleus being a candidate mechanism for directing cross-modal interactions. Finally, Ca bursting in thalamic neurons evoked by the thalamic reticular nucleus is explored.
我们的感觉环境中充满了各种各样的听觉和体感刺激。在日常生活和各种物种的生存环境中,声音信号与同时或即将到来的触觉提示配对非常丰富,因此,将这些刺激组合产生的感觉输入进行整合的能力至关重要。皮质丘脑系统在协调这些感觉模式中提取的信息的构建、整合和分布方面发挥着关键作用。在这篇迷你综述中,我们提供了听觉皮质丘脑通路与相邻皮质丘脑体感投射的回路水平描述。尽管这些通路共享的功能相互作用的程度尚未完全阐明,但这些系统的激活似乎都能调节互补领域的感觉感知。我们回顾了几个具体问题。在某些环境噪声条件下,声音的频谱信息可能会引起疼痛的调制,甚至会引起镇痛。我们首先讨论了 Zhou 等人(2022 年)最近的发现,表明皮质丘脑系统在介导声音诱导的镇痛中起作用。接下来,我们描述了皮质丘脑通路功能组织的相关组成部分。此外,我们还描述了一个新兴的文献体系,指出丘脑内回路最适合控制和选择跨模态的感觉信号,而丘脑网状核是一种用于指导跨模态相互作用的候选机制。最后,我们探讨了由丘脑网状核诱发的丘脑神经元的 Ca 爆发。