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Kaymak, D.

Publications and source records attributed to Kaymak, D..

3 recordsLinked to original sources

Enhancing anti-EGFRvIII CAR T cell therapy against glioblastoma with a paracrine SIRPγ-derived CD47 blocker

A major challenge for chimeric antigen receptor (CAR) T cell therapy against glioblastoma (GBM) is its immunosuppressive tumor microenvironment (TME), which is densely populated and supported by protumoral glioma-associated microglia and macrophages (GAMs). Targeting of CD47, a "dont-eat-me" signal overexpressed by tumor cells, disrupts the CD47-SIRP axis and induces GAM phagocytic function. However, antibody-mediated CD47 blockade monotherapy is associated with toxicity and low bioavailability in solid tumors. To overcome these limitations, we combined local CAR T cell therapy with paracrine GAM modulation for more effective elimination of GBM. To this end, we engineered a new CAR T cell against epidermal growth factor receptor variant III (EGFRvIII) that constitutively secretes a SIRP{gamma}-related protein (SGRP) with high affinity to CD47. Anti-EGFRvIII-SGRP CAR T cells eliminated EGFRvIII+ GBM in a dose-dependent manner in vitro and eradicated orthotopically xenografted EGFRvIII-mosaic GBM by locoregional application in vivo. This resulted in significant tumor-free long-term survival, followed by partial tumor control upon tumor re-challenge. The combination of anti-CD47 antibodies with anti-EGFRvIII CAR T cells failed to achieve a similar therapeutic effect, underscoring the importance of sustained paracrine GAM modulation. Multidimensional brain immunofluorescence microscopy and in-depth spectral flow cytometry on GBM-xenografted brains showed that anti-EGFRvIII-SGRP CAR T cells accelerated GBM clearance, increased CD68+ cell trafficking to tumor scar sites, and induced myeloid-mediated tumor cell uptake. Additionally, in a peripheral lymphoma mouse xenograft model, anti-CD19-SGRP CAR T cells had superior efficacy compared to conventional anti-CD19 CAR T cells. Validation on human GBM explants revealed that anti-EGFRvIII-SGRP CAR T cells had similar tumor-killing capacity to anti-EGFRvIII CAR monotherapy, but showed a slight improvement in maintenance of tumor-infiltrated CD14+ myeloid cells. Thus, local anti-EGFRvIII-SGRP CAR T cell therapy combines the potent antitumor effect of engineered T cells with the modulation of the surrounding innate immune TME, resulting in the additive elimination of bystander EGFRvIII- tumor cells in a manner that overcomes major mechanisms of CAR T cell therapy resistance, including tumor innate immune suppression and antigen escape.

cancer biology↗

Multidimensional analysis of matched primary and recurrent glioblastoma identifies Fcgamma receptors upregulation on microglia as a contributor of tumor recurrence.

O_LIBackground: Glioblastoma (GBM) is a lethal brain tumor without effective treatment options. The aim of this study was to characterize longitudinal tumor immune microenvironment (iTME) changes in order to find potential actionable targets to prevent GBM-induced immune evasion mechanisms. C_LIO_LIMethods: This study included 15 patient-matched treatment-naive WHO grade 4 primary (pGBM) and recurrent (rGBM) tumors. RNA and proteins extracted from fresh frozen tumor samples from matched pGBM and rGBM were profiled via transcriptomics and proteomics, respectively. A tissue microarray containing paired formalin-fixed paraffin-embedded tumor samples was processed for spatial transcriptomics analysis. C_LIO_LIResults: Differentially expressed genes and proteins between pGBM and rGBM were involved in pathways responsible for synapse development and myelination which have been shown to play a role in GBM recurrence. By categorizing patients into short and long time-to-relapse (STTR vs LTTR), we identified genes positively or negatively associated with TTR. Expression of Fc{gamma} receptors and complement system genes such as FCGR1A (CD64), FCGR3A and C3 in rGBM samples were negatively correlated with TTR, whereas expression of DNMT1/3A, and SMARCA4, involved in DNA methylation, were positively correlated with TTR. Spatial transcriptomic analysis of the tumor cell compartment showed enrichment of oligodendrocytes in rGBM, whereas the myeloid cell compartment switched from quiescent to activated microglia, was enriched in B and T cells, specifically in rGBM with STTR. C_LIO_LIConclusions: Our results uncover a role for CD64-expressing activated microglia in GBM recurrence and suggest that interfering with these cells may represent a therapeutic option for hindering GBM relapse. C_LI Key pointsO_LITranscriptomic and proteomic differences exist between patient-paired primary and recurrent GBM tumors C_LIO_LIHigh expression of Fcy receptors genes on activated microglia at tumor recurrence is associated with shorter time to relapse. C_LI Importance of this studyIn glioblastoma (GBM), the tumor recurs in almost all cases after standard treatment such as surgery and chemo-radiotherapy. In this study, we longitudinally evaluated the immune- and neoplastic compartments using transcriptomic, proteomic, and spatial transcriptomics in patient-matched treatment-naive and recurrent tumor samples. By correlating gene expression with time-to-relapse, we identified a geneset associated with treatment resistance and faster tumor recurrence. Moreover, this study highlighted the plasticity of the myeloid compartment during disease progression and an unfavorable role of activated microglia in tumor recurrence.

cancer biology↗

The Siglec-sialic acid-axis is a target for innate immunotherapy of glioblastoma

Glioblastoma (GBM) is the most aggressive form of primary brain tumor, for which effective therapies are urgently needed. Cancer cells are capable of evading clearance by phagocytes such as microglia and monocyte-derived cells through engaging tolerogenic programs. Here, we found that high level of Siglec-9 expression correlates with reduced survival in GBM patients. Using conditional knockouts of Siglec-E, the murine functional homologue of Siglec-9, together with single-cell RNA sequencing, we demonstrated significant pro-phagocytosis effects in microglia and monocyte-derived cells in the absence of Siglec-E. Loss of Siglec-E on monocyte-derived cells enhances antigen cross-presentation and production of pro-inflammatory cytokines, resulting in more efficient T cell priming. This bridging of innate and adaptive responses delays tumor growth and results in prolonged survival. Further, we showed synergistic activity of Siglec-E blockade in combinatorial immunotherapies and demonstrate its translational potential against GBM.

cancer biology↗