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Abula, Y.

Publications and source records attributed to Abula, Y..

3 recordsLinked to original sources

Mitotic CDK4/6 activity sustains spindle checkpoint signalling to prevent mitotic slippage and genomic instability

The precise regulation of cell cycle entry and the maintenance of genome integrity are crucial for preventing tumorigenesis. Cyclin-dependent kinases 4 and 6 (CDK4/6) play pivotal roles in linking mitogenic signals to G1-S phase progression1-3, and their frequent deregulation in various cancers underscores their importance in driving cell proliferation and as therapeutic targets4,5. Despite this, the roles of CDK4/6 beyond the G1/S transition remain underexplored. Here, we uncover a previously unrecognised function of CDK4/6 in mitotic progression through regulation of the spindle assembly checkpoint (SAC)6. Using both cancer and non-transformed human cells, we show that acute CDK4/6 inhibition after G1/S transition leads to premature mitotic exit despite unattached kinetochores, resulting in chromosome missegregation and aneuploidy. Phosphoproteomic analyses and in vitro kinase assays reveal that CDK4 phosphorylates multiple sites on key SAC regulators, including the C-terminal tail of CENP-E, which is critical for BubR1 recruitment to kinetochores and SAC maintenance7,8. CDK4/6 inhibition reduces the phosphorylation of SAC components, attenuating checkpoint signalling and accelerating mitotic slippage. Notably, residual SAC activity persists, suggesting that CDK4/6 strengthens or stabilises SAC signalling rather than being essential for its activation. Thus, CDK4/6 functions extend beyond G1/S control to ensure mitotic fidelity, linking proliferating signals to genome stability and exposing potential vulnerabilities to anti-mitotic therapies in cancer.

cell biology↗

Krüppel Regulates Cell Cycle Exit and Limits Adult Neurogenesis of Mushroom Body Neural Progenitors in Drosophila

In many organisms, including Drosophila and humans, neural progenitors exit the cell cycle and are eliminated by the end of development, thereby restricting adult neurogenesis to specific brain regions. Here, we identify the evolutionarily conserved transcription factor Kruppel (Kr) as a lineage-specific regulator of cell cycle exit and elimination of mushroom body neuroblasts (MBNBs), which generate the learning and memory centre of the Drosophila brain, a structure functionally analogous to the mammalian hippocampus. Neuroblast-specific Kr RNAi and the Irregular facet (KrIf-1) mutation prolong MBNB lifespan, enabling continued neurogenesis in the adult brain. Although Kr is expressed only at low levels in postembryonic MBNBs, its pupal stage-specific depletion or misexpression is sufficient to cause MBNB retention, revealing a previously unrecognised postembryonic function distinct from its established role in embryonic neurogenesis. Mechanistically, persistent MBNBs maintain expression of the early temporal factor IGF2 mRNA-binding protein (Imp) and fail to fully induce the late temporal factors Syncrip (Syp) and Eip93F (E93). Co-depletion of Imp suppresses MBNB retention caused by Kr depletion, demonstrating that Imp is a key downstream effector of Kr. In parallel, Kruppel homolog 1 (Kr-h1), another Kr family transcription factor and a well-established mediator of hormone-responsive transcription, functionally antagonises Kr by suppressing E93 expression: Kr-h1 knockdown partially rescues the Kr depletion phenotype, whereas Kr-h1 overexpression drives tumour-like neuroblast overgrowth. Together, our findings establish Kr as an MBNB-specific coordinator that integrates intrinsic temporal programmes with extrinsic signalling pathways to coordinate neural stem cell termination and neuronal fate transitions, with potential parallels in other organisms.

developmental biology↗

The Conserved Transcription Factor Kruppel Regulates the Survival and Neurogenesis ofMushroom Body Neuroblasts in Drosophila Adult Brains

In various metazoans, including Drosophila and humans, neural progenitors exit the cell cycle and are eliminated by the end of development, limiting adult neurogenesis. We demonstrate that in Drosophila, the conserved transcription factor Kruppel (Kr) controls neurogenic capacity of a specific subset of neuroblasts that forms the mushroom body (MBNBs), analogous to the mammalian hippocampus. The Irregular facet mutation, which alters Kr expression, and neuroblast-specific Kr depletion allow MBNBs, but not other neuroblasts, to persist beyond development and generate neurons in adult brains. Persisting MBNBs express Imp, an RNA-binding protein that promotes neuroblast proliferation and survival. Our results underscore a critical role for Kr in the developmental control of a specific progenitor population, uncovering a novel mechanism controlling adult neurogenesis.

developmental biology↗