The migration of the QR neuroblast descendants is regulated by Wnt signaling. We have previously shown that the migration of the QR descendant QR.p is dependent on non-canonical Wnt signaling, and that once QR.pa reaches its final position, it switches to canonical, beta-catenin catenin-dependent Wnt signaling to stop migration. This switch in signaling response is dependent on the cell intrinsic, temporal regulation of the Frizzled gene
mig-1. The timing of
mig-1 expression shows little variability, indicating that this is a highly regulated process. We observed that
mig-1 is strongly upregulated after the division of QR.p. To investigate if timing is dependent on this division, we prevented QR.p mitosis by depleting CDK-1 from QR.p, and quantified
mig-1 expression using smFISH. We found that the expression of
mig-1 followed the same temporal dynamics as in wild type animals, indicating that QR.p division is not necessary for the upregulation of
mig-1 expression. Although we cannot rule out the possibility that the cell cycle remains active in the absence of mitosis, these results indicate that the temporal regulation of
mig-1 expression is not dependent on Q lineage progression. Mathematical modeling suggests that temporal regulation of
mig-1 can also be achieved through accumulation of a transcriptional activator or decay of a repressor. This model assumes that such a regulator is equally distributed during the division of QR.p. However, the division of QR.p is asymmetric, generating QR.pa and a smaller sister cell (QR.pp) that undergoes apoptosis. To examine whether this asymmetry influences
mig-1 regulation, we measured
mig-1 expression in
ced-3 mutants that block apoptosis, and
pig-1 mutants that partially disrupt the asymmetry of the division. We found that
mig-1 is not expressed in QR.pp, and that expression of
mig-1 in QR.pa was decreased when asymmetry was reduced. Taken together, these results support a model in which the time-dependent accumulation or decay of a transcriptional regulator, and modulation of these dynamics by the asymmetric division of QR.p, ensure robust temporal regulation of
mig-1 expression in QR.pa.