LBPO.CL01 · 临床研究 · Late-Breaking

胶质母细胞瘤进展过程中的动态环路重塑:深度分辨电生理学和皮层成像定义网络生物标志物

Dynamic circuit remodeling during glioblastoma progression: Depth-resolved electrophysiology and cortical imaging define network biomarkers

编号 LB001 展板 1 时间 4/19 02:00–05:00 区域 Section 50 主讲 Murat Yildirim, PhD
分会场 Late-Breaking Research: Clinical Research 1
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作者与单位 Authors & Affiliations

Murat Yildirim, Tenesha Connor, Maryam Faisal, Omer Dinc, Kemal Ozdemirli, Frederick Bell, Berfin Dinc, Miguel Maldonado, Daniel Silver, Anthony Sloan, Justin Lathia

Cleveland Clinic Research, Cleveland, OH

摘要 Abstract

中文摘要
胶质母细胞瘤(GBM)深刻改变神经环路动态,然而大多数研究依赖于静态终点测量,忽视了网络功能障碍如何随时间演变。我们通过一个纵向、多模态框架来弥补这一空白,该框架结合了大规模成像、电生理学、行为学、计算建模和环路扰动,以定义GBM进展和恢复的动态生物标志物。我们假设胶质母细胞瘤诱导进行性且性别依赖性的抑制性网络平衡破坏,削弱远程皮层通信,而恢复抑制性张力可以恢复神经同步性和行为。使用介观尺度皮层钙成像、深度分辨的Neuropixel记录,以及使用多种钙指示剂的单光子和多光子显微镜,我们捕获了同基因(SB28、KR158)和基因工程(GEMM)GBM模型中的皮层和皮层下活动。进行性环路重塑表现为加速且方向偏倚的行波、半球间和半球内耦合破坏,以及以肿瘤核心附近delta波段升高和周围区域高频抑制为特征的层持续性过度兴奋。反复出现的时空基序揭示了两个半球中不断演变的网络模式,与组织学中观察到的肿瘤浸润相平行,并凸显了皮层通信网络的广泛重组。为将这些神经变化与功能结局联系起来,我们在自发活动、虚拟现实导航和社交互动范式期间同时进行了瞳孔和口面部追踪。我们的深度学习模型(DeepVision和DeepFace)提取了高分辨率行为特征,而广义线性模型(GLM)从这些信号中预测皮层活动。GBM进展降低了脑动态的行为可预测性,反映了感觉运动耦合退化和跨皮层区域状态依赖性协调受损。这些发现建立了反映神经不稳定性的行为和生理特征,可作为纵向疾病监测的可扩展、非侵入性生物标志物。最后,抑制性神经元的光遗传学激活恢复了皮层同步性,使振荡模式正常化,并改善了行为表现。值得注意的是,这一干预使雌性小鼠的生存率翻倍,揭示了一种性别依赖性的治疗获益,可能由激素对抑制性张力和环路弹性的调节所介导。总之,这个整合平台——跨越细胞到系统尺度、自发到社交行为、生理到光遗传学领域——提供了一个全面视角,展示胶质母细胞瘤如何破坏、以及靶向环路调节如何恢复脑功能。通过桥接光学、电生理学、行为学和计算模态,本工作鉴定出用于早期检测、机制指导干预和个性化治疗开发的可量化、可转化的网络生物标志物,为精准癌症神经科学奠定了基础。
查看英文原文 English abstract
Glioblastoma (GBM) profoundly alters neural circuit dynamics, yet most studies rely on static endpoint measurements that overlook how network dysfunction evolves over time. We address this gap through a longitudinal, multimodal framework that combines large-scale imaging, electrophysiology, behavior, computational modeling, and circuit perturbation to define dynamic biomarkers of GBM progression and restoration. We hypothesize that glioblastoma induces progressive and sex-dependent disruption of inhibitory network balance that weakens long-range cortical communication, and that restoring inhibitory tone can recover both neural synchrony and behavior. Using mesoscale cortical calcium imaging, depth-resolved Neuropixel recordings, and single- and multiphoton microscopy with multiple calcium indicators, we captured cortical and subcortical activity in syngeneic (SB28, KR158) and genetically engineered (GEMM) GBM models. Progressive circuit remodeling emerged as accelerated and directionally biased traveling waves, disrupted inter- and intrahemispheric coupling, and layer-persistent hyperexcitability characterized by delta-band elevation near the tumor core and high-frequency suppression in surrounding regions. Recurrent spatiotemporal motifs revealed evolving network patterns in both hemispheres, paralleling tumor infiltration observed in histology and highlighting widespread reorganization of cortical communication networks. To link these neural changes with functional outcomes, we performed simultaneous pupil and orofacial tracking during spontaneous activity, virtual-reality navigation, and social-interaction paradigms. Our deep learning models (DeepVision and DeepFace) extracted high-resolution behavioral features, while generalized linear models (GLMs) predicted cortical activity from these signals. GBM progression reduced the behavioral predictability of brain dynamics, reflecting degraded sensorimotor coupling and impaired state-dependent coordination across cortical regions. These findings establish behavioral and physiological signatures that mirror neural instability and can serve as scalable, noninvasive biomarkers for longitudinal disease monitoring. Finally, optogenetic activation of inhibitory neurons restored cortical synchrony, normalized oscillatory patterns, and improved behavioral performance. Remarkably, this intervention doubled the survival rate of female mice, revealing a sex-dependent therapeutic benefit likely mediated by hormonal modulation of inhibitory tone and circuit resilience. Together, this integrative platform-spanning cellular to systems scales, spontaneous to social behaviors, and physiological to optogenetic domains-provides a comprehensive view of how glioblastoma disrupts, and how targeted circuit modulation can restore, brain function. By bridging optical, electrophysiological, behavioral, and computational modalities, this work identifies quantitative and translatable network biomarkers for early detection, mechanism-guided intervention, and personalized therapy development, establishing a foundation for precision cancer neuroscience.
利益披露 Disclosure
M. Yildirim, None.. T. Connor, None.. M. Faisal, None.. O. Dinc, None.. K. Ozdemirli, None.. F. Bell, None.. B. Dinc, None.. M. Maldonado, None.. D. Silver, None.. A. Sloan, None.. J. Lathia, None.

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