ReviewFrontiers in neural circuits2026
Pathological neural and immune synapses in glioblastoma progression: mechanisms and therapeutic opportunities.
Review in Frontiers in neural circuits, 2026. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Not yet cited in PubMed.
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Abstract
Glioblastoma (GBM), a high-grade glioma, is the most common primary brain tumor in adults, with a dismal prognosis and a very high recurrence rate. Major challenges to effective treatment arise from the tumor's locally aggressive, diffusely infiltrative nature and extensive intratumoral heterogeneity. Recent advances in cancer neuroscience have uncovered bidirectional neuron-glioma interactions including the formation of functional neuron-glioma synapses (NGS). Neuronal activity drives tumor growth and its synaptic integration into neural circuits; tumor-induced circuit remodeling reciprocally influences neural activity. In parallel, emerging evidence implicates the immunological synapse- a dynamic interface between T cells and antigen-presenting cells analogous to its neural counterpart- as a key driver of GBM pathogenesis and progression. The tumor microenvironment (TME) in GBM is characterized by local immunosuppression, immune evasion, and resistance to immunotherapy. Notably, neural and immune synapses share fundamental architectural and functional principles-spatial confinement of signaling, receptor clustering and adhesion-mediated stabilization, directional information transfer, and use-dependent plasticity-and an expanding catalog of molecular hubs operates across both interfaces. In this context, glioblastoma can be reconceptualized as a disease of coupled neural and immune synaptic networks cooperating to drive tumor progression. Therapeutic strategies targeting these hubs may offer advantages over current approaches by simultaneously disrupting tumor-promoting neuronal input and enhancing antitumor immunity, providing a "double hit" with the potential to dismantle the network architecture sustaining tumor growth and resilience.
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