CiliaTubulinCode: Deciphering the Role of the Tubulin Code in Cilia Biology.
The CiliaTubulinCode project investigates how tubulin post-translational modifications (PTMs) contribute to the self-organization, mechanics, and function of motile cilia—specialized organelles crucial for cellular motility and signaling. Cilia play an essential role in many physiological processes across eukaryotic organisms, including humans, where ciliary dysfunction leads to severe diseases such as primary ciliary dyskinesia, infertility, and neurodevelopmental disorders.
Understanding the role of tubulin PTMs in cilia presents significant challenges due to the complexity and nanoscale organization of the ciliary axoneme. To overcome these difficulties, CiliaTubulinCode integrates a cutting-edge combination of approaches, including:
- Advanced imaging techniques, such as correlative light and electron microscopy (CLEM), immuno-cryo-electron tomography (cryo-ET), and ultrastructural expansion microscopy.
- Molecular and biochemical methods, including CRISPR-Cas genome editing, quantitative mass spectrometry, and in vitro reconstitution of ciliary processes.
- Live-cell imaging and single-molecule tracking, enabling the study of dynamic ciliary processes at high spatiotemporal resolution.
Objectives of CiliaTubulinCode.
The project focuses on three major objectives:
1. Understanding the role of the tubulin code in the regulation of intraflagellar transport (IFT)—the bidirectional transport system essential for cilia assembly and maintenance.
2. Investigating how the tubulin code contributes to axoneme assembly and the regulation of axonemal components, such as dyneins, which generate the forces required for ciliary beating.
3. Creating a high-resolution spatiotemporal map of tubulin PTMs in motile cilia and eukaryotic flagella, shedding light on their role in structural integrity and function.
The results of this research are of broad interest, extending beyond cilia and microtubule biology to the larger fields of cell biology, molecular biology, and biophysics. Moreover, this work provides fundamental insights into human diseases linked to mutations in tubulin PTM enzymes, reinforcing its clinical relevance.