bioRxiv Science⌕ Search

Biology subjects

Touret, M.

Publications and source records attributed to Touret, M..

2 recordsLinked to original sources

The Joubert syndrome protein CSPP1 is a conserved regulator of vertebrate multiciliogenesis and motile cilia function

Cilia are conserved microtubule-based organelles required for signaling and fluid transport, and their dysfunction causes ciliopathies. Clinical overlap between sensory and motile ciliopathies suggests that primary and motile ciliogenesis depend on shared regulatory modules. Here, we identify Centrosome and Spindle Pole-associated Protein 1 (CSPP1), a microtubule-associated protein mutated in the neurodevelopmental ciliopathy Joubert syndrome, as a conserved regulator of vertebrate multiciliogenesis. Using mouse tracheal epithelial cultures and Xenopus embryonic epidermis, we show that CSPP1 localizes to fibrous granules and deuterosomes during centriole amplification, and to basal bodies and ciliary axonemes in differentiated multiciliated cells. Loss of CSPP1 impairs centriole amplification, basal body apical migration, spacing, and rotational polarity, and is accompanied by disorganization of the apical microtubule network. CSPP1 depletion also disrupts axoneme assembly, resulting in fewer and shorter cilia with ultrastructural defects, reduced ciliary beating, and impaired cilia driven fluid flow in vivo. Together, our findings identify CSPP1 as a conserved regulator of multiciliogenesis and motile cilia function and establish a basis for future work on how shared cytoskeletal pathways may underlie overlapping features of sensory and motile ciliopathies.

cell biology↗

Deciphering the dynamic proteome of multiciliated cells

Multiciliated cells (MCCs) are essential for generating directional fluid flow across specialized epithelia in various vertebrate organs. MCC differentiation involves a unique, tightly regulated program characterized by massive centriole amplification, independently of DNA replication. Although much is known about the transcriptional control of MCC development, insights into proteome dynamics have been limited due to the lack of suitable models. In this study, we report the generation of a stable inducible MCC line, derived from Xenopus laevis A6 kidney epithelial cells. Upon induction of the MCC master regulator Multicilin (MCI), most A6-MCI cells synchronously differentiate into mature MCCs in 48 hours. Using this novel resource, custom antibodies and super-resolution imaging, we characterized Xenopus deuterosomes, the platforms that allow massive centriole synthesis in vertebrate MCCs. We performed a detailed proteomic profiling throughout MCC differentiation, and uncovered previously uncharacterized regulators. Notably, we highlight a critical role for CDK7 in MCC differentiation in both Xenopus and human systems. Our work provides a valuable resource for mechanistic studies of MCC biology and opens avenues to identify novel therapeutic targets for motile ciliopathies.

cell biology↗