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Updated: Jul 28, 2026

Quantitative Immunohistochemistry of the Cellular Microenvironment in Patient Glioblastoma Resections
Published on: July 31, 2017
Glioblastoma-Secreted C1QL1 Orchestrates Tumor Microtube Expansion and Neural Synaptic Pruning to Drive Malignant
Chaoqiong Ding1,2, Jiayi Dong1,3, Zhenzhong Pan1
1Department of Biotherapy, Cancer Center and State Key Laboratory of Biotherapy, West China Hospital, Sichuan University, Chengdu, China.
Abstract:
Glioblastoma (GBM) cells form neuron-to-glioma malignant synapses on neurite-like tumor microtubes (TM), driving infiltrative growth and recurrence. The mechanisms underlying coordinated cross-talk among GBM cells and with neurons to favor malignant over normal synapses remain largely unknown. Here, we demonstrate that glioma-secreted C1QL1 is a key messenger for glioma-neuron and glioma-glioma cross-talk to drive TM expansion and malignant synapse formation. C1QL1 binds to its receptor BAI3 on neighboring neurons and GBM cells, activating RAC1-mediated cytoskeleton rearrangement to prune normal synapses and outgrow TMs, promoting malignant synapse and glioma network formation. Targeted treatment with a non-GEF-targeting, first-in-class RAC1 inhibitor rescues C1QL1-mediated synaptic pruning, inhibiting TMs and malignant synapses to impede glioma recurrence. Our findings elucidate how cross-talk among GBM cells and neurons allows infiltrating GBM cells to sculpt and integrate into the existing neural network, highlighting a therapeutic strategy against GBM recurrence through simultaneous inhibition of TMs and glioma-induced synaptic pruning.
Significance:
Our study identifies C1QL1 as a key messenger secreted by infiltrating glioma cells, orchestrating glioma-glioma and glioma-neuron cross-talk to induce TM expansion and neural synaptic pruning, driving malignant synapse formation and recurrence through a C1QL1-BAI3-RAC1 axis. Targeting RAC1 with a non-GEF-targeting RAC1 inhibitor could impede glioma recurrence and improve survival. See related commentary by Li and Borniger, p. 1047.
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