Sibih Youssef E, Dada Abraham O, Cunningham Emily, Olshausen Niels, Kaur Jasleen, Jayabal Velmurugan, Oten Sena, Herr Sanjeev, Gonzales Cesar Nava, Daniel Andy, Krishna Saritha, Ambati Vardhaan S, Aabedi Alexander A, Umbach Gray, Mirchia Kanish, Lalwani Poortata, Chang Edward F, Raleigh David R, Nagarajan Srikantan, Brang David, Hervey-Jumper Shawn L
Department of Neurological Surgery, University of California, San Francisco, San Francisco, CA, USA.
Department of Psychology, University of Michigan, Ann Arbor, MI, USA.
bioRxiv. 2025 May 24:2025.05.23.655626. doi: 10.1101/2025.05.23.655626.
Diffuse gliomas remodel neuronal circuits with prognostic and therapeutic significance for patients. Electrophysiologic measures of cortical excitability hold promise for monitoring disease progression and evaluating therapeutic responses. The power law exponent (aperiodic slope) reflects the balance between excitatory and inhibitory activity within neuronal networks, a critical aspect of normal brain function often disrupted in neurological conditions. Despite its potential, the significance of the aperiodic slope in glioma-infiltrated tissue and its underlying cellular processes has not been fully investigated. Here, we integrate multimodal electrophysiological analysis with transcriptomic profiling to analyze the aperiodic slope in both normal and glioma-infiltrated cortex. We determine that glioma infiltration induces a flattening of the aperiodic slope, indicating a shift toward excitation dominance that varies according to tumor subtype and correlates with impairments in semantic naming. Single-nucleus RNA sequencing revealed that cortical regions with flat aperiodic slope exhibit transcriptional programs enriched in glutamatergic signaling, membrane depolarization, and excitatory synaptic transmission. The aperiodic slope responds to pharmacologically induced changes in cortical inhibition during propofol administration, a GABA agonist. Our results establish the aperiodic slope as a robust biomarker of glioma-associated excitation-inhibition imbalance, with potential applications in tumor classification and treatment monitoring.
弥漫性胶质瘤重塑对患者具有预后和治疗意义的神经回路。皮质兴奋性的电生理测量有望用于监测疾病进展和评估治疗反应。幂律指数(非周期性斜率)反映了神经网络中兴奋性和抑制性活动之间的平衡,这是正常脑功能的一个关键方面,在神经疾病中常常受到破坏。尽管具有潜力,但非周期性斜率在胶质瘤浸润组织中的意义及其潜在的细胞过程尚未得到充分研究。在这里,我们将多模态电生理分析与转录组分析相结合,以分析正常和胶质瘤浸润皮质中的非周期性斜率。我们确定胶质瘤浸润会导致非周期性斜率变平,表明向兴奋优势转变,这种转变因肿瘤亚型而异,并且与语义命名障碍相关。单核RNA测序显示,非周期性斜率平坦的皮质区域表现出富含谷氨酸能信号传导、膜去极化和兴奋性突触传递的转录程序。在使用GABA激动剂丙泊酚期间,非周期性斜率对皮质抑制的药理学诱导变化有反应。我们的结果确定非周期性斜率是胶质瘤相关兴奋 - 抑制失衡的可靠生物标志物,在肿瘤分类和治疗监测中具有潜在应用。