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.

Related Concept Videos

The DNA Replication Fork01:02

The DNA Replication Fork

An organism’s genome needs to be duplicated in an efficient and error-free manner for its growth and survival. The replication fork is a Y-shaped active region where two strands of DNA are separated and replicated continuously. The coupling of DNA unzipping and complementary strand synthesis is a characteristic feature of a replication fork.   Organisms with small circular DNA, such as E. coli, often have a single origin of replication; therefore, they have only two replication...
43.3K
The DNA Replication Fork01:02

The DNA Replication Fork

21.4K
Restarting Stalled Replication Forks02:37

Restarting Stalled Replication Forks

DNA replication is initiated at sites containing predefined DNA sequences known as origins of replication. DNA is unwound at these sites by the minichromosome maintenance (MCM) helicase and other factors such as Cdc45 and the associated GINS complex.The unwound single strands are protected by replication protein A (RPA) until DNA polymerase starts synthesizing DNA at the 5’ end of the strand in the same direction as the replication fork. To prevent the replication fork from falling apart,...
6.6K
S-Cdk Initiates DNA Replication02:38

S-Cdk Initiates DNA Replication

3.6K
S-Cdk Initiates DNA Replication02:38

S-Cdk Initiates DNA Replication

The cell cycle is a series of events leading to DNA duplication followed by the division of cell content to form two daughter cells. The cell cycle progresses in four stages—the cell increases in size (gap 1 or G1-phase), duplicates its DNA (synthesis or S-phase), prepares to divide (gap 2 or G2-phase), and divides (mitosis or M-phase).
Two states at the origin of replication
In eukaryotes, the initiation of replication occurs at many sites on the chromosomes, called the origins of...
5.9K
DNA Replication02:40

DNA Replication

DNA replication involves the separation of the two strands of the double helix, with each strand serving as a template from which the new complementary strand is copied.  After replication, each double-stranded DNA includes one parental or “old” strand and one “new” strand. This is known as semiconservative replication. The resulting DNA molecules have the same sequence and are divided equally into the two daughter cells.
Replication in Prokaryotes
DNA replication...
64.9K