Skip to content

Disease-associated microglia adopt stage-specific phenotypes that regulate T cell fate and immunity in glioma.

Jul 2026 · Immunity · Vol 59, pp. 2299-2316.e7 · 0 citations · 85 references
Medicine

TL;DR

This work integrated single-cell profiling and spatial transcriptomics of glioma-associated microglia in the GL261 model to identify distinct microglial states that aligned with tumor architecture and highlighted microglial state transitions as a stage-specific layer of immune regulation in glioma that shapes T cell fate and support targeting microglial plasticity to rebalance anti-tumor immunity.

Abstract

Malignant gliomas are lethal brain tumors characterized by profound local immunosuppression and a radically remodeled myeloid landscape. Although these tumors mobilize resident microglia and infiltrating monocyte-derived macrophages, the mechanisms governing their phenotypic convergence and diversification remain elusive. Here, we integrated single-cell profiling and spatial transcriptomics of glioma-associated microglia in the GL261 model. We identified distinct microglial states that aligned with tumor architecture, most notably Cst7-expressing disease-associated microglia (DAMs) that aggregated at the tumor invasive margin and exhibited a conserved transcriptional signature shared across various central nervous system pathologies. Interferon-γ and toll-like receptor signaling sequentially tuned stage-specific DAM features, including transient MHC-II expression and sustained PD-L1 upregulation, thereby recalibrating the local immune equilibrium by reshaping bidirectional DAM-T cell interactions during glioma progression. Our findings highlight microglial state transitions as a stage-specific layer of immune regulation in glioma that shapes T cell fate and support targeting microglial plasticity to rebalance anti-tumor immunity.

View source

Similar papers

Open access Aug 2026

Resveratrol reprograms ARG1⁺ microglia to remodel the immunosuppressive microenvironment in primary CNS lymphoma via secretion cytokine

Primary central nervous system lymphoma (PCNSL) is a CNS-restricted lymphoma with poor prognosis. Despite sharing pathological features with systemic diffuse large B-cell lymphoma (DLBCL), PCNSL exhibits unique molecular mutation patterns, highlighting the critical role of the intracranial tumor microenvironment (TME...

Cheng-Han Chen, Ming Lu, Zibo Du et al. · 0 citations
Open access Sep 2026

Better than hiding: high-grade glioma cells remodel the immune microenvironment to suppress cytotoxic immunity

Gliomas are aggressive brain tumors that progressively acquire a profound immune-evasive phenotype during malignant evolution. However, the mechanisms driving this transition from immune surveillance to immune tolerance are only partially understood. We used a PDGF-B-driven murine model in which sequential low- and...

Francesca Piaggio, Giorgia Guccione, Davide Ceresa et al. · 0 citations
Open access Sep 2026

FAP+ pericyte-like cells promote monocyte differentiation into tumor-associated macrophages in glioblastoma

It is found that FAP+ pericytes are linked to increased monocyte recruitment and differentiation into tumor-associated macrophages, particularly those with an M2-like, tumor-supportive phenotype, and Targeting this stromal population may offer new therapeutic avenues to reprogram tumor-associated immune responses in GB...

Magdalena Houdova Megova, C. Shard, B. Výmolová et al. · 0 citations
Sep 2026

Vascularized glioblastoma-on-a-chip reveals microglia-mediated regulation of tumor invasion and stemness.

Glioblastoma multiforme (GBM) is the most aggressive primary brain tumor in adults, characterized by rapid progression and poor prognosis. Central to GBM pathobiology are glioma stem cells (GSCs), which preferentially localize within the perivascular niche (PVN) and sustain tumor growth, invasion, and therapeutic resis...

Twinkle Jina Minette Manoharan, K. Ravi, Shwetal Mehta et al. · 0 citations
Review Open access Aug 2026

Immune niches in brain tumors: glial–immune cell interactions and spatial microdomains

The immune microenvironment of brain tumors is characterized by remarkable diversity, where immune cells are not randomly distributed but are systematically organized into specific spatial microdomains. This spatial order is primarily orchestrated by glial cells, including astrocytes, microglia, and oligodendrocyte-lin...

Qian Guo, Si-Hang Shen, Zhou-Yuan Zhang et al. · 1 citation

We use cookies to run the site and, with your consent, for analytics and to show ads. See our Cookie Policy.