Department of Neuroscience, UT Southwestern Medical Center, Dallas, TX, USA.
Department of Neurosurgery, UT Southwestern Medical Center, Dallas, TX, USA.
Nat Neurosci. 2021 Apr;24(4):554-564. doi: 10.1038/s41593-021-00803-x. Epub 2021 Mar 8.
In humans, brain oscillations support critical features of memory formation. However, understanding the molecular mechanisms underlying this activity remains a major challenge. Here, we measured memory-sensitive oscillations using intracranial electroencephalography recordings from the temporal cortex of patients performing an episodic memory task. When these patients subsequently underwent resection, we employed transcriptomics on the temporal cortex to link gene expression with brain oscillations and identified genes correlated with oscillatory signatures of memory formation across six frequency bands. A co-expression analysis isolated oscillatory signature-specific modules associated with neuropsychiatric disorders and ion channel activity, with highly correlated genes exhibiting strong connectivity within these modules. Using single-nucleus transcriptomics, we further revealed that these modules are enriched for specific classes of both excitatory and inhibitory neurons, and immunohistochemistry confirmed expression of highly correlated genes. This unprecedented dataset of patient-specific brain oscillations coupled to genomics unlocks new insights into the genetic mechanisms that support memory encoding.
在人类中,大脑振荡支持记忆形成的关键特征。然而,理解这种活动的分子机制仍然是一个主要的挑战。在这里,我们使用来自颞叶皮层的颅内脑电图记录来测量记忆敏感的振荡,这些患者在进行情景记忆任务时进行了记录。当这些患者随后接受切除手术时,我们在颞叶皮层上进行了转录组学研究,将基因表达与大脑振荡联系起来,并确定了与六个频带的记忆形成振荡特征相关的基因。共表达分析分离了与神经精神障碍和离子通道活性相关的振荡特征特异性模块,具有高度相关性的基因在这些模块内具有很强的连接性。使用单核转录组学,我们进一步揭示了这些模块富含特定类别的兴奋性和抑制性神经元,免疫组织化学证实了高度相关基因的表达。这种前所未有的患者特定脑振荡与基因组学相结合的数据集,为支持记忆编码的遗传机制提供了新的见解。