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DNA replication stress underlies renal phenotypes in CEP290-associated Joubert syndrome
Insights
Mutations in centrosomal protein CEP290 cause juvenile ciliopathy syndromes. Reducing CEP290 enhances DNA damage and replication stress, but CDK inhibitors can reverse these effects, offering a potential treatment for ciliopathies.
Area of Science:
- Cell Biology
- Genetics
- Molecular Biology
Background:
- Juvenile ciliopathy syndromes, linked to renal cysts and failure, often stem from CEP290 gene mutations.
- CEP290 is found in centrosomes, cilia, and the nucleus, but its nuclear role is unclear.
Purpose of the Study:
- Investigate the nuclear function of CEP290.
- Determine the impact of CEP290 deficiency on DNA damage and replication.
- Explore potential therapeutic strategies for CEP290-related ciliopathies.
Main Methods:
- Reduced CEP290 expression in human/mouse kidney cells and zebrafish embryos.
- Assessed DNA damage signaling and DNA breaks.
- Analyzed centriole number, replication fork velocity, and cyclin-dependent kinases (CDKs).
- Treated cells with CDK inhibitors.
Main Results:
- CEP290 reduction caused increased DNA damage, breaks, supernumerary centrioles, and altered replication fork dynamics.
- Elevated CDK levels were observed in CEP290-deficient cells.
- CDK inhibition restored DNA damage levels and centriole numbers.
- CDK inhibitors rescued primary cilia loss in 3D cell cultures.
Conclusions:
- CEP290 deficiency is linked to DNA replication stress.
- CDK inhibition shows promise for treating CEP290-related ciliopathies and associated renal dysfunction.
Abstract:
Juvenile ciliopathy syndromes that are associated with renal cysts and premature renal failure are commonly the result of mutations in the gene encoding centrosomal protein CEP290. In addition to centrosomes and the transition zone at the base of the primary cilium, CEP290 also localizes to the nucleus; however, the nuclear function of CEP290 is unknown. Here, we demonstrate that reduction of cellular CEP290 in primary human and mouse kidney cells as well as in zebrafish embryos leads to enhanced DNA damage signaling and accumulation of DNA breaks ex vivo and in vivo. Compared with those from WT mice, primary kidney cells from Cep290-deficient mice exhibited supernumerary centrioles, decreased replication fork velocity, fork asymmetry, and increased levels of cyclin-dependent kinases (CDKs). Treatment of Cep290-deficient cells with CDK inhibitors rescued DNA damage and centriole number. Moreover, the loss of primary cilia that results from CEP290 dysfunction was rescued in 3D cell culture spheroids of primary murine kidney cells after exposure to CDK inhibitors. Together, our results provide a link between CEP290 and DNA replication stress and suggest CDK inhibition as a potential treatment strategy for a wide range of ciliopathy syndromes.
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