This work establishes a framework linking variant-specific defects in nucleosome binding to chromatin-targeting failure and transcriptional dysregulation in RTT.
Abstract
Methyl-CpG binding protein 2 (MeCP2) is a chromatin-associated regulator essential for neuronal gene regulation, and pathogenic mutations in MeCP2 cause Rett syndrome (RTT). However, the mechanisms governing MeCP2 engagement on chromatin and the effects of RTT mutations on nucleosome interactions remain poorly understood. We determined cryo-EM structures of MeCP2 bound to mono-nucleosomes with or without linker DNA methylation. In the absence of linker DNA methylation, the methyl-CpG binding domain (MBD) engages nucleosomal DNA near superhelical location ±7, whereas a methylated linker CpG redirects MBD to the linker methylation site. Quantitative EMSA, MNase footprinting, and fluorescence polarization show that both MBD and AT-hook regions cooperate to stabilize nucleosome binding, and that six common RTT variants (R133C, T158M, R306C, R168X, R255X, R270X) fall into four mechanistic classes. Loss-of-function truncations progressively weaken binding, whereas missense variants show near-WT DNA affinity. Among the variants, R133C shows near wild-type affinity for naked DNA but loses methylation-directed nucleosome engagement. Our analysis of human neuronal transcriptomic and chromatin occupancy datasets showed that RTT variants R133C and R168X lose CpG-island specificity and redistribute in the genome through distinct biochemical routes. Together, this work establishes a framework linking variant-specific defects in nucleosome binding to chromatin-targeting failure and transcriptional dysregulation in RTT.
Abstract Rett syndrome neurodevelopmental disorder is caused by mutations in the epigenetic regulator MeCP2. While the MeCP2 methyl-CpG binding domain (MBD) is well-characterized, the function of the adjacent intervening domain (ID) remains largely understudied. The ID has been described as a distinct RNA-binding regio...
J. Peter, T. Weiser, L. Niswander et al.· Nucleic Acids Research· 0 citations
Understanding of the molecular mechanisms by which DNMT3A PWWP-domain mutations are mechanistically heterogeneous is advanced, providing a biochemical framework that contributes to distinct disease phenotypes.
Eukaryotic sequence-specific transcription factors (TFs) must find their cognate DNA targets hidden in genomic chromatin amid an excess of nonspecific sequences and degenerate motifs. Although static TF interactions with nucleosomal targets have been elucidated, how TFs efficiently search for cognate sites within nativ...
Ze-Lin Wei, Oluwakemi E. Abiodun, Y. Ling et al.· Nature Structural & Molecula...· 0 citations
Transcription factors (TFs) bind to enhancers and recruit H3K4me1 methyltransferase KMT2D, chromatin remodeler cBAF, and H3K27 acetyltransferase p300 to activate transcription. However, the role of chromatin modifiers in regulating de novo binding of TFs on enhancers remains unclear. Using a robust nuclear transloc...
Hieu T. Van, Young-Kwon Park, D. Wan et al.· Nature Communications· 0 citations
DNA methylation is a key epigenetic mechanism that mediates gene expression and informs cellular identity. Methyl-CpG binding protein 2 (MeCP2) is a protein capable of recognizing and interpreting the methylated DNA code to bring about phenotypic outcomes through co-factor interactions. Altered DNA methylation patterns...
Grace C. Stroman, Clara Mellows, K. Pruitt· Frontiers in epigenetics and...· 0 citations
This study provides the first structural basis for pUG- fold RNA recognition by a protein and illustrates how cryo-EM and AI-based methods for protein and RNA structure prediction synergize to inform the mechanism of RNA-mediated regulation of DNMT1.
Jessica J. Song, T. Cech, V. Kasinath· bioRxiv· 0 citations
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