De novo H3.3K27M-altered Diffuse Midline Glioma in human brainstem organoids to dissect GD2 CAR T cell function

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This study developed a human brainstem organoid model of H3.3K27M-altered diffuse midline glioma to analyze GD2 CAR T cell function and identify effector cell markers and immunosuppressive myeloid interactions.

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The paper studied how de novo H3.3K27M–altered diffuse midline glioma (DMG) can be modeled in scalable, patient-representative human brainstem organoids, and used this platform to dissect GD2 CAR T cell function. Using an FGF4-driven, pontine-glial organoid specification followed by genetic engineering of H3.3K27M-altered DMG, the authors found that brainstem glial specification is essential for tumorigenesis and that resulting tumors mimic infiltrative behavior and molecular heterogeneity from patient samples. Prolonged GD2 CAR T cell treatment produced variable outcomes and CAR T cell transcriptional heterogeneity, identifying a potent effector population and validating NCAM1 as a selection marker for enriching it, while NCAM1– cells were linked to a stress response associated with immunotherapy resistance; they also incorporated the brain-resident myeloid compartment to show DMG-specific immunosuppressive microglia subtypes reduced CAR T cell efficacy. The paper does not explicitly discuss endometriosis or adenomyosis; it was included in the corpus via a keyword match in the upstream search index.

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Abstract

Diffuse midline glioma (DMG) is a rare yet highly aggressive paediatric cancer primarily arising in the pontine region of the brainstem, necessitating the development of scalable patient-representative models for treatment advance 1,2 . Here, we developed an FGF4-driven human brainstem organoid model, with high representation of pontine glial lineages. By genetically engineering de novo H3.3K27M-altered DMG, we show that this brainstem glial specification is essential for driving DMG tumorigenesis, resulting in tumours that recapitulate the infiltrative nature and molecular heterogeneity of patient samples. By performing prolonged GD2 CAR T cell treatment in this model, we could mirror variable treatment outcomes as observed in the clinic 3,4 and demonstrate a high level of CAR T cell transcriptional heterogeneity. From these CAR T cell functional states, we could identify the most potent effector population and validated NCAM1 as a selection marker for their enrichment. In contrast, NCAM1 - cells were linked to a cellular stress response, previously associated to immunotherapy resistance 5 . Furthermore, incorporating the brain-resident myeloid compartment resulted in DMG-specific, largely immunosuppressive microglia subtypes 6 . These disease-representative microglia reduced GD2 CAR T cell treatment efficacy and we identified the functional profiles most susceptible to this microglia-dependent immune modulation. Thus, we present a scalable human DMG model with critical applications towards understanding CAR T cell functionality to aid therapy development for this detrimental disease.
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Abstract Diffuse midline glioma (DMG) is a rare yet highly aggressive paediatric cancer primarily arising in the pontine region of the brainstem, necessitating the development of scalable patient-representative models for treatment advance1,2. Here, we developed an FGF4-driven human brainstem organoid model, with high representation of pontine glial lineages. By genetically engineering de novo H3.3K27M-altered DMG, we show that this brainstem glial specification is essential for driving DMG tumorigenesis, resulting in tumours that recapitulate the infiltrative nature and molecular heterogeneity of patient samples. By performing prolonged GD2 CAR T cell treatment in this model, we could mirror variable treatment outcomes as observed in the clinic3,4 and demonstrate a high level of CAR T cell transcriptional heterogeneity. From these CAR T cell functional states, we could identify the most potent effector population and validated NCAM1 as a selection marker for their enrichment. In contrast, NCAM1- cells were linked to a cellular stress response, previously associated to immunotherapy resistance5. Furthermore, incorporating the brain-resident myeloid compartment resulted in DMG-specific, largely immunosuppressive microglia subtypes6. These disease-representative microglia reduced GD2 CAR T cell treatment efficacy and we identified the functional profiles most susceptible to this microglia-dependent immune modulation. Thus, we present a scalable human DMG model with critical applications towards understanding CAR T cell functionality to aid therapy development for this detrimental disease. Competing Interest Statement A.C.R. and N.B. are listed as inventors on a pending patent related to the novel brainstem-regionalized organoid model. A.K.L.W., E.J.W., M.A. and A.C.R. are listed as inventors on a pending patent related to the development of marker-based T cell selection.

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