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TAF1-dependent transcriptional dysregulation underlies multiple sclerosis

Rodriguez-Lopez, C.; Hernandez, I. H.; Terron-Bautista, J.; Agirre, E.; Lozano-Munoz, D.; Pose-Utrilla, J.; Garcia-Ortiz, I.; Lucas-Santamaria, M.; Ruiz-Blas, I.; Gonzalez-Bermejo, M.; Ortega, M. C.; Chara, J. C.; Martinez, Z.; Perez-Cerda, F.; Fransen, N. L.; Martinez-Jimenez, M.; Sancho-Gonzalez, B.; Perez-Samartin, A.; Kabbe, M.; Zheng, C.; Casado-Barbero, M.; Santos-Galindo, M.; Borroto, A.; Alarcon, B.; Clemente, D.; Toma, C.; Matute, C.; Cortes-Ledesma, F.; Castelo-Branco, G.; Lucas, J. J.

2024-08-25 neuroscience
10.1101/2024.08.23.609325 bioRxiv
Show abstract

A major conceptual and clinical challenge in multiple sclerosis (MS) is understanding the mechanisms that drive the central nervous system (CNS)-resident neuroinflammation and neurodegeneration underneath disease progression. Genome-wide association studies (GWAS) have implicated RNA polymerase II (RNAPII) promoter-proximal pausing in oligodendrocyte pathology, but the causal mechanisms remain unclear. Here we find that the C-terminal region of TAF1, a core component of the general transcription factor TFIID, is underdetected in progressive MS brains, which can be explained by endoproteolysis due to extralysosomal cathepsin B (CTSB). Mice lacking the C-terminal TAF1 domain (Taf1d38) exhibit MS-like brain transcriptomic signature, alongside CNS-resident inflammation, progressive demyelination, and motor disability. Mechanistically, C-terminal TAF1 interacts with MS-linked factors that cooperate to regulate RNAPII pausing, particularly affecting oligodendroglial myelination genes. These findings uncover a previously unrecognized transcriptional mechanism underlying MS progression and establish a tractable in vivo model for therapeutic development.

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