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Arslanhan, M. D.

Publications and source records attributed to Arslanhan, M. D..

2 recordsLinked to original sources

CCDC15 localizes to the centriole inner scaffold and regulates centriole integrity and ciliogenesis

Centrioles are evolutionarily conserved microtubule-based organelles critical to form centrosomes and cilia, which act as microtubule-organizing, signaling and motility centers. Biogenesis and maintenance of centrioles with proper number, size and architecture are crucial for their functions during development and physiology. Consequently, their deregulation causes developmental disorders and cancer. Although centriole number control has been extensively studied, less is known about how centrioles are maintained as stable structures with conserved size and architecture over successive cell divisions and upon ciliary and flagellar motility. Here, we addressed this question by identifying and characterizing new components of the centriole inner scaffold, a recently discovered centriolar sub-compartment critical for centriole size control and integrity. To this end, we generated proximity interactomes of Centrin-2 and POC5 and used them to define CCDC15 as a new centriolar protein that co-localizes and interacts with known inner scaffold proteins. Ultrastructure expansion microscopy analysis of CCDC15-depleted cells revealed its functions in centriole length control and integrity, resulting in defective ciliogenesis and Hedgehog signaling. Loss-of-function experiments also defined CCDC15 as a dual regulator for the recruitment of the inner scaffold protein POC1B and the distal SFI1/Centrin complex to the centrioles. Together, our findings uncovered new players and mechanisms of centriole architectural integrity and thereby, provide insights into diseases linked to centriolar defects.

cell biology↗

Aurora Kinase A proximity interactome reveals centriolar satellites as regulators of its function during primary cilium biogenesis

Aurora kinase A (AURKA) is a conserved kinase that plays crucial roles in numerous cellular processes. Although AURKA overexpression is frequent in human cancers, its pleiotropic functions and complex spatiotemporal regulation have presented challenges in its therapeutic targeting. An essential step to overcome these challenges is the identification of the full range of AURKA regulators and substrates, which are often weak and transient. Previous proteomic studies were limited in monitoring dynamic and non-mitotic AURKA interactions. Here, we generated the first in vivo proximity interactome of AURKA, which consisted of over 100 proteins involving multiple biological processes and cellular compartments. Importantly, AURKA had extensive proximity interactions to centriolar satellites, key regulators of the primary cilium. Affinity pulldown and phosphoproteomics experiments confirmed this proximity relationship at the physical level. Loss-of-function experiments defined satellites as negative regulators of AURKA activity, abundance and localization in quiescent cells. Notably, loss of satellites increased AURKA activation at the basal body and resulted in defective cilium assembly and enhanced cilium disassembly. Collectively, our results provide a powerful resource for dissecting AURKA function and regulation and uncover proteostatic regulation of AURKA by centriolar satellites as a new regulatory mechanism for its non-mitotic functions.

cell biology↗