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Niswander, L. A.

Publications and source records attributed to Niswander, L. A..

2 recordsLinked to original sources

Faf2 is required for neural differentiation in embryonic neural progenitor cells

Neural progenitor cell differentiation is a complex process requiring the proper integration of instructive and permissive factors. Instructive cues including signaling molecules and transcription factor networks have been well studied in this context, but permissive factors such as cell homeostasis have not. Cell homeostasis is critical to support the health and stability of a cell and enable the cell to act on instructive differentiation cues. Our study investigates a homeostasis protein, FAF2, and its function in neural progenitor cells. FAF2 is an adaptor protein involved in endoplasmic reticulum (ER) associated degradation to remove misfolded proteins and restore ER homeostasis. Here we show that knocking out Faf2 in neural progenitor cells results in increased ER stress signature at the protein and transcription level, indicating a conserved functional role in neural progenitor cells. Induced neural differentiation of FAF2 deletion cells shows a failure of neurite development but RNA-seq indicates genes that support neural differentiation are induced. Reducing ER stress in FAF2 knockout cells with a small molecule inhibitor can rescue neural differentiation, providing evidence that excess ER stress contributes to the inhibited differentiation. Taken together, these results reveal that FAF2 is a critical protein in neural progenitor cells for the maintenance of ER homeostasis and execution of neural differentiation. Highlights- FAF2 is required to regulate ER homeostasis in neural progenitor cells - FAF2 knockout blocks differentiation of neural progenitor cells to neurons at the cell morphological level, but does not inhibit the mounting of transcriptional programs associated with neural differentiation. - Excess ER stress due to FAF2 knockout contributes to blocked neural differentiation.

developmental biology↗

MECP2 MBD-ID Module: A Unified DNA/RNA Binding Interface Disrupted in Rett Syndrome

Rett syndrome neurodevelopmental disorder is caused by mutations in the gene encoding 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 region, yet evidence also suggests RNA competitively displaces MECP2 from DNA. Here, we address these conflicting findings by demonstrating the MBD and ID do not function in isolation but as a synergistic functional unit, establishing a new model for MECP2 function. We show the ID significantly enhances affinity of the MBD for methylated DNA by [~]35-fold. Moreover, together these two subdomains form a high-affinity, promiscuous RNA-binding module, with affinity for structured RNAs increased over 1,000-fold compared to the MBD or ID alone. We find binding to RNA precludes binding to DNA, such that the integrated MBD-ID unit explains the competition phenomenon. Analysis of Rett syndrome-associated ID mutations (R167W, K174Q, and R190H) and a therapeutic MiniGene reveals they do not disrupt methyl-DNA binding but instead selectively weaken RNA and non-methylated DNA binding, thereby disrupting the competitive balance between nucleic acid ligands. Our work establishes the MBD-ID module as MECP2s central nucleic acid interaction hub, whose disruption provides a potential molecular etiology of Rett syndrome due to mutations in the intervening domain. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=180 SRC="FIGDIR/small/706016v1_ufig1.gif" ALT="Figure 1"> View larger version (19K): org.highwire.dtl.DTLVardef@1c60d7dorg.highwire.dtl.DTLVardef@19f94b5org.highwire.dtl.DTLVardef@1dc3781org.highwire.dtl.DTLVardef@c033a1_HPS_FORMAT_FIGEXP M_FIG C_FIG

molecular biology↗