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Updated: Jan 10, 2026

2D and 3D Human Induced Pluripotent Stem Cell-Based Models to Dissect Primary Cilium Involvement during Neocortical Development
Published on: March 25, 2022
CEP120 interacts with C2CD3 and Talpid3 and is required for centriole appendage assembly and ciliogenesis
Jhih-Jie Tsai1, Wen-Bin Hsu1, Jia-Hua Liu1
1Institute of Biomedical Sciences, Academia Sinica, Taipei, Taiwan.
Insights
Centrosomal protein 120 (CEP120) is crucial for building cilia. Loss of CEP120 impairs centriole appendage assembly and cilia formation, explaining how CEP120 mutations cause ciliopathies.
Area of Science:
- Cell Biology
- Genetics
- Molecular Biology
Background:
- Centrosomal protein 120 (CEP120) is known to be involved in centriole elongation.
- CEP120 gene mutations are linked to complex ciliopathies like Joubert syndrome.
- CEP120's role in ciliogenesis requires further investigation.
Purpose of the Study:
- To investigate the function of CEP120 in centriole elongation and cilia formation.
- To elucidate the molecular mechanisms underlying CEP120-associated ciliopathies.
Main Methods:
- CEP120 gene knockout in RPE1 cells using CRISPR/Cas9.
- Analysis of centriole structure, appendage assembly, and cilia formation.
- Investigation of CEP120 interactions with C2CD3 and Talpid3.
Main Results:
- CEP120 knockout resulted in short centrioles lacking distal and subdistal appendages.
- Loss of CEP120 impaired centriole elongation and the recruitment of C2CD3 and Talpid3.
- Wild-type CEP120 interacts with C2CD3 and Talpid3, while the I975S mutant shows reduced binding and disrupts cilia assembly.
Conclusions:
- CEP120 plays a novel role in ciliogenesis by interacting with C2CD3 and Talpid3 for centriole appendage assembly.
- The CEP120 (I975S) mutation disrupts cilia assembly, providing insight into the molecular basis of CEP120-related ciliopathies.
Abstract:
Centrosomal protein 120 (CEP120) was originally identified as a daughter centriole-enriched protein that participates in centriole elongation. Recent studies showed that CEP120 gene mutations cause complex ciliopathy phenotypes in humans, including Joubert syndrome and Jeune asphyxiating thoracic dystrophy, suggesting that CEP120 plays an additional role in ciliogenesis. To investigate the potential roles of CEP120 in centriole elongation and cilia formation, we knocked out the CEP120 gene in p53-deficient RPE1 cells using the CRISPR/Cas9 editing system, and performed various analyses. We herein report that loss of CEP120 produces short centrioles with no apparent distal and subdistal appendages. CEP120 knockout was also associated with defective centriole elongation, impaired recruitment of C2CD3 and Talpid3 to the distal ends of centrioles, and consequent defects in centriole appendage assembly and cilia formation. Interestingly, wild-type CEP120 interacts with C2CD3 and Talpid3, whereas a disease-associated CEP120 mutant (I975S) has a low affinity for C2CD3 binding and perturbs cilia assembly. Together, our findings reveal a novel role of CEP120 in ciliogenesis by showing that it interacts with C2CD3 and Talpid3 to assemble centriole appendages and by illuminating the molecular mechanism through which the CEP120 (I975S) mutation causes complex ciliopathies.
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