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Comenho, C.

Publications and source records attributed to Comenho, C..

2 recordsLinked to original sources

Neural plate pre-patterning enables specification of intermediate neural progenitors in the spinal cord

Spinal cord organization begins with the specification of a series of neural progenitor domains along the dorsal-ventral axis of the neural tube. Patterning at the dorsal and ventral ends is established by canonical morphogen gradients. Intermediate progenitor domains are located distally to morphogen sources yet display similar organization. How this is achieved is unclear and the relevant positional cues have not been identified. Here we show that intermediate progenitor domains are established through a distinct mechanism that operates in the preceding neural plate stage and leverages its multiple signaling inputs and morphogenesis. An integrated spatial atlas of transcription factor expression, signaling activity, and cell movement reveals that the neural plate comprises an array of cell states, defined by combinatorial signaling and morphogenesis-driven transitions between local signaling environments. Specifically, we find that p0 and p1 intermediate progenitors, located immediately outside the morphogen-patterned region, arise from specific precursor states that are established in the posterior neural plate by tailbud-derived Wnt signaling. Convergent-extension movements subsequently drive progenitor specification by displacing precursors out of Wnt/FGF signaling fields while shaping them into stripe-like domains. Thus, by controlling signaling exposure, tissue dynamics convert positional information encoded by signaling history into downstream fate specification. This mode of patterning may operate broadly across developmental contexts, with implications for tissue engineering and patterning-related disorders.

developmental biology↗

Expansion in situ genome sequencing links nuclear abnormalities to hotspots of aberrant euchromatin repression

Microscopy and genomics are both used to characterize cell function, but approaches to connect the two types of information are lacking, particularly at subnuclear resolution. While emerging multiplexed imaging methods can simultaneously localize genomic regions and nuclear proteins, their ability to accurately measure DNA-protein interactions is constrained by the diffraction limit of optical microscopy. Here, we describe expansion in situ genome sequencing (ExIGS), a technology that enables sequencing of genomic DNA and superresolution localization of nuclear proteins in single cells. We applied ExIGS to fibroblast cells derived from an individual with Hutchinson-Gilford progeria syndrome to characterize how variation in nuclear morphology affects spatial chromatin organization. Using this data, we discovered that lamin abnormalities are linked to hotspots of aberrant euchromatin repression that may erode cell identity. Further, we show that lamin abnormalities heterogeneously increase the repressive environment of the nucleus in tissues and aged cells. These results demonstrate that ExIGS may serve as a generalizable platform for connecting nuclear abnormalities to changes in gene regulation across disease contexts.

genomics↗