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Hailstock, T.

Publications and source records attributed to Hailstock, T..

2 recordsLinked to original sources

The CPEB ortholog Orb2 regulates brain size through the TRIM-NHL RNA-binding protein, Brain tumor

Neurodevelopment requires precise translational control, the disruption of which is implicated in various neurological disorders, including developmental delays, intellectual disability, and microcephaly. We report a novel role for the Drosophila CPEB-family protein Orb2, a translational regulator, in controlling brain size in a dose dependent manner. Loss of orb2 results in larval brain hypotrophy, whereas orb2 overexpression causes brain overgrowth. We demonstrate that orb2 is required for neural stem cell development from embryonic stages through larval neurogenesis. Structure-function analysis reveals that Orb2 RNA-binding activity promotes brain growth, while its poly-Q and ZZ domains act to restrain overgrowth. Further genetic and biochemical evidence indicates that orb2 functions upstream of the translational repressor Brain tumor (Brat), modulating Brat protein levels and, consequently, influencing brain size. These findings support a model wherein the antagonistic activities of Orb2 and Brat are critical for balanced brain growth during Drosophila neurodevelopment.

developmental biology↗

Lgr5+ intestinal stem cells are required for organoid survival after genotoxic injury

Progenitors and mature cells can maintain the intestinal epithelium by dedifferentiation and facultative intestinal stem cell (fISC) function when active ISCs (aISCs) are lost to damage. Here, we sought to model fISC activation in intestinal organoids with doxorubicin (DXR), a chemotherapeutic known to ablate Lgr5+ aISCs in vivo. We identified low and high doses of DXR compatible with long-term organoid survival. Similar fISC gene activation was observed between organoids treated with low vs high DXR, despite significantly decreased survival at the higher dose. aISCs exhibit dose-dependent loss after DXR but survive at doses compatible with organoid survival. We ablated residual aISCs after DXR using a Lgr52A-DTR allele and observed that aISC survival of the initial genotoxic insult is required for organoid survival following DXR. These results suggest that while typical fISC genes are activated by DXR injury in organoids, functional stemness remains dependent on the aISC pool. Our data establish a reproducible model of DXR injury in intestinal organoids and reveal differences in in vitro responses to an established in vivo damage modality.

cell biology↗