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Seyrek, E.

Publications and source records attributed to Seyrek, E..

2 recordsLinked to original sources

Centriolar satellites are dynamic membrane-less organelles that assemble via a hierarchical pathway

Centriolar satellites (CS) are ubiquitous, membrane-less organelles recognized for organelle crosstalk, plasticity, diverse functions and links to developmental and neuronal diseases. However, the molecular principles governing their assembly and regulation remain poorly understood. To address this, we developed cellular and in vitro biogenesis assays that allow spatiotemporal quantification of CS granule properties during assembly, remodeling and maintenance. Using these tools, we show that CS assemble via a hierarchical pathway initiated by PCM1 scaffold formation followed by regulated client recruitment. PCM1 intrinsically assembles into granules through multimerization, a process modulated by cytoskeleton. High-resolution imaging revealed that PCM1 and its clients occupy distinct subdomains with different compositions and dynamics, adding an additional layer of regulation. Perturbing PCM1 multimerization impaired ciliary signaling, underscoring its functional importance. Collectively, these findings define the molecular basis of CS biogenesis, establish new tools to probe their context-dependent functions, and provide a framework for understanding how CS deregulation contributes to disease. More broadly, the principles uncovered here may extend to other membrane-less organelles, explaining their specificity and plasticity.

cell biology↗

Ccdc66 regulates primary cilium stability, disassembly and signaling important for epithelial organization

The primary cilium is a conserved, microtubule-based organelle that transduces signaling pathways essential for development and homeostasis. It is a dynamic structure that assembles and disassembles in response to intrinsic and extrinsic stimuli while maintaining remarkable stability and tightly controlled length. Although cilium assembly is well-understood, less is known about the molecular players and pathways governing their stability, length and disassembly. Here, we elucidated the function of Ccdc66, a microtubule-associated protein linked to ciliopathies, in cilium maintenance and disassembly in mouse epithelial cells. We found that Ccdc66 depletion disrupts cilium disassembly, length and stability, but does not affect assembly in these cells. Live imaging of these processes revealed that cilia in Ccdc66-depleted cells frequently fluctuate in length and exhibit increased ectocytosis from the cilium tip. Phenotypic rescue experiments and in vitro microtubule stabilization assays showed that Ccdc66 mediates these functions via regulating the stability of microtubules. Temporal proximity mapping of CCDC66 identified potential new regulators and molecular pathways involved in cilium disassembly. Additionally, depletion of CCDC66 compromised Hedgehog and Wnt pathway activation and disrupted epithelial cell organization and polarity in two-dimensional and three-dimensional cultures. Collectively, our results define Ccdc66 as a new microtubule-stabilizing factor that regulates cilium stability and disassembly, providing insights into the mechanisms of cilium homeostasis and the pathologies associated with Ccdc66.

cell biology↗