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Mullarkey, A. A.

Publications and source records attributed to Mullarkey, A. A..

2 recordsLinked to original sources

A reevaluation of the relationship between EGL-43 (EVI1/MECOM) and LIN-12 (Notch) during C. elegans anchor cell invasion

Development of the C. elegans reproductive tract is orchestrated by the anchor cell (AC). Among other things, this occurs through a cell invasion event that connects the uterine and vulval tissue. Several key transcription factors regulate AC invasion, such as EGL-43, HLH-2, and NHR-67. Specifically, these transcription factors function together to maintain the post-mitotic state of the AC, a requirement for AC invasion. EGL-43 is the C. elegans homolog of the human EVI1/MECOM proto-oncogene, and recently, a mechanistic connection has been made between its loss and AC cell-cycle entry. The current model states that EGL-43 represses LIN-12 (Notch) expression to prevent AC proliferation, suggesting that Notch signaling is mitogenic in the absence of EGL-43. To reevaluate the relationship between EGL-43 and LIN-12, we designed and implemented a heterologous co-expression system called AIDHB that combines the auxin-inducible degron (AID) system of plants with a live cell-cycle sensor based on human DNA helicase B (DHB). After validating the AIDHB approach using AID-tagged GFP, we sought to test this approach using AID-tagged alleles of egl-43 and lin-12. Auxin-inducible degradation of either EGL-43 or LIN-12 resulted in the expected AC phenotypes. Lastly, we seized the opportunity to pair AIDHB with RNAi to co-deplete LIN-12 and EGL-43, respectively. This combined approach revealed that LIN-12 is not required for AC proliferation following loss of EGL-43, which contrasts with a double RNAi experiment directed against these same targets. The addition of AIDHB to the C. elegans transgenic toolkit should facilitate functional in vivo imaging of cell-cycle associated phenomena.

developmental biology↗

Transcriptional regulation and repressive condensates modulate a proliferative-invasive cellular switch in vivo

A growing body of evidence suggests that cell division and basement membrane invasion are mutually exclusive cellular behaviors. How cells switch between proliferative and invasive states is not well understood. Here, we investigated this dichotomy in vivo by examining two cell types in the developing Caenorhabditis elegans somatic gonad that derive from equipotent progenitors, but exhibit distinct cell behaviors: the post-mitotic, invasive anchor cell and the neighboring proliferative, non-invasive ventral uterine (VU) cells. We show that the fates of these cells post-specification are more plastic than previously appreciated and that levels of NHR-67 are important for discriminating between invasive and proliferative behavior. Transcription of nhr-67 is downregulated following post-translational degradation of its direct upstream regulator, HLH-2 (E/Daughterless) in VU cells. In the nuclei of VU cells, residual NHR-67 protein is compartmentalized into discrete punctae that are dynamic over the cell cycle and exhibit liquid-like properties. By screening for proteins that colocalize with NHR-67 punctae, we identified new regulators of uterine cell fate maintenance: homologs of the transcriptional co-repressor Groucho (UNC-37 and LSY-22), as well as the TCF/LEF homolog POP-1. We propose a model in which association of NHR-67 with the Groucho/TCF complex suppresses the default invasive state in non-invasive cells, which complements transcriptional regulation to add robustness to the proliferative-invasive cellular switch in vivo.

developmental biology↗