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Biology subjects

Heth, J. A.

Publications and source records attributed to Heth, J. A..

2 recordsLinked to original sources

MIF-mediated reprogramming of myeloid lineage within the glioma tumor microenvironment impacts the efficacy of immune stimulatory gene therapy

Gliomas with mutant isocitrate dehydrogenase 1 (mIDH1) represent a distinct subgroup of brain tumors characterized by unique metabolic and immunological profiles compared to wildtype IDH1 (wtIDH1) gliomas. Despite recent progress, the cellular mechanisms underlying tumor progression and immune modulation in these subtypes remain poorly understood. In this study, we employed single-cell RNA sequencing (scRNA-seq) to characterize the cellular heterogeneity of wtIDH1 and mIDH1 gliomas, with a particular focus on myeloid cell populations. Our analyses revealed a marked reduction of monocyte-derived tumor-associated macrophages (Mo-TAMs) and lower expression of macrophage migration inhibitory factor (MIF) in mIDH1 gliomas, which was attributable to epigenetic reprogramming. Mechanistic studies using MIF and CD74 knockout mice demonstrated that the MIF-CD74 axis plays a crucial role in regulating the glioma immune microenvironment, thereby driving tumor growth and progression. Importantly, the combination of immune-stimulatory gene therapy (HSV1-thymidine kinase/Fms-like tyrosine kinase 3 ligand; TK/Flt3L) with MIF inhibition significantly extended survival in models of wtIDH1 glioma. These findings highlight the therapeutic potential of targeting the MIF-CD74 pathway and underscore the importance of integrating immunomodulatory strategies for the treatment of glioma. HighlightsO_LIMutant IDH1 gliomas exhibit fewer Mo-TAMs and increased Mg-TAMs C_LIO_LIMutant IDH1 gliomas have less MIF expression via epigenetic reprogramming. C_LIO_LIMesenchymal wtIDH1 glioma cells are main source of MIF. C_LIO_LIMIF inhibition plus immune stimulatory gene therapy extends survival wtIDH1 glioma. C_LI

cancer biology↗

Gliomas organize as liquid crystals: three-dimensional nematic order, disclinations and quasi-long-range order

Active nematic liquid crystals are the main structural phase of gliomas, promoting collective migration and aggression. We establish the existence of nematic order and topological defect lines and loops in 3D in vivo mouse and human glioma brain tumors. As predicted by theory, sections through the disclination lines in 3D appear as {+/-}1/2 topological defects in 2D. In 3D, these defects either persist along disclination lines or twist as they interconvert from -1/2 to +1/2. Cell alignment exhibits quasi-long-range order, spreading throughout the tumor over distances between 300-3000 m. In vitro -1/2 and +1/2 defects display changes in apoptosis levels, suggesting topological defects regulate glioma cell density. The large scale order of gliomas correlates with tumors aggressive behavior. The organization of gliomas as active nematic liquid crystals provides a novel physical foundation of complex solid tumors; their deconstruction signposts potential treatments for deadly cancers.

biophysics↗