Search bioRxiv⌕ Search

Biology subjects

Nguyen, P.-K.

Publications and source records attributed to Nguyen, P.-K..

3 recordsLinked to original sources

Chinmo defines the region-specific oncogenic competence in the Drosophila central nervous system

While genetic mutations can promote hyperplastic growth, they do not always result in oncogenic outcomes. We and others have previously identified the transcription factors Nerfin-1 and Lola as inhibitors of dedifferentiation. Here, we investigate how the oncogenic potential of dedifferentiation varies across different neural lineages in the Drosophila central nervous system (CNS). We found that Nerfin-1 inactivation causes tumorigenic phenotypes in the central brain (CB) and the ventral nerve cord (VNC) but not the optic lobes (OLs). In contrast, Lola inactivation leads to tumour overgrowth specifically in the OLs. We identify Chinmo, a temporal transcription factor, and its regulation by ecdysone signalling as key determinants of the oncogenic competence in different regions of the brain, influencing the tumorigenic outcome of dedifferentiation. This work provides a fundamental framework to understand how oncogenic competence arises beyond genetic mutations. Significance statementIn the CNS, the same tumorigenic mutation has been shown cause differential oncogenic outcomes in different regions of the brain. The mechanism underlying this phenomenon remains largely unknown. We have previously demonstrated that malignant brain tumours can be induced via neuronal dedifferentiation in the Drosophila CNS. Here, we demonstrate that dedifferentiated neural stem cells drive tumorigenesis in a region-specific manner, accounted for by region-specific expression and regulation of temporal factors by cell-intrinsic and hormonal signals. Together, this work extends our understandings of how brain regionalisation can be a constraint to oncogenesis.

developmental biology↗

Neuroepithelial depletion schedules cessation of neurogenesis in the Drosophila optic lobes

The brain is consisted of diverse neurons arising from a limited number of neural stem cells. Drosophila neural stem cells called neuroblasts (NBs) produces specific neural lineages of various lineage sizes depending on their location in the brain. In the Drosophila visual processing centre - the optic lobes (OLs), medulla NBs derived from the neuroepithelium (NE) give rise to neurons and glia cells of the medulla cortex. The timing and the mechanisms responsible for the cessation of medulla NBs are so far not known. In this study, we show that the termination of medulla NBs during pupal development is determined by the exhaustion of the NE stem cell pool. Altering NE-NB transition during larval neurogenesis disrupts the timely termination of medulla NBs. Medulla NBs terminate neurogenesis via a combination of cell death, terminal symmetric division, and a switch to gliogenesis. We show that temporal progression is not required for the termination of medulla NBs. The timing of NB cessation can be altered through the acquisition of a glial cell fate via Glial cells missing, or through conversion to type II NB cell fate via Tailless, or by inhibition of differentiation via Prospero knockdown. As the Drosophila OL shares a similar mode of division with mammalian neurogenesis, determining how and when these progenitors cease proliferation during development can have important implications for mammalian brain size determination and regulation of its overall function.

developmental biology↗

Cell cycle and temporal transcription factors regulate proliferation and neuronal diversity of dedifferentiation-derived neural stem cells

Dedifferentiation is the reversion of differentiated cells to a stem cell like fate, whereby, the gene expression program of mature cells is altered and genes associated with multipotency are expressed. Appropriate terminal differentiation of NSCs is essential for restricting the overall number of neurons produced; in addition, faithful production of neuronal subtypes that populate the brain is important for NSC function. Both characteristics of NSCs are specified through temporal patterning of the NSCs driven by the successive expression of temporal transcription factors (tTFs). In this study, we found that ectopic NSCs induced via bHLH transcription factor Deadpan (Dpn) expression fail to undergo timely expression of temporal transcription factors (tTFs), where they express mid-tTF, Sloppy-paired 1 (Slp-1) and fail to express late-tTF Tailless (Tll); consequently generating an excess of Twin of eyeless (Toy) positive neurons at the expense of Reversed polarity (Repo) positive glial cells. In addition to disrupted production of neuronal/glial progeny, Dpn overexpression also resulted in stalled progression through the cell cycle, and a failure to undergo timely terminal differentiation. Mechanistically, DamID studies demonstrated that Dpn directly binds to both Dichaete (D), a Sox-box transcription factor known to repress Slp-1, as well as a number of cell cycle genes. Promoting cell cycle progression or overexpression of D were able to re-trigger the progression of the temporal series in dedifferentiated NBs, restoring both neuronal diversity and timely NB terminal differentiation.

developmental biology↗