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NEK8 links the ATR-regulated replication stress response and S phase CDK activity to renal ciliopathies.


ABSTRACT: Renal ciliopathies are a leading cause of kidney failure, but their exact etiology is poorly understood. NEK8/NPHP9 is a ciliary kinase associated with two renal ciliopathies in humans and mice, nephronophthisis (NPHP) and polycystic kidney disease. Here, we identify NEK8 as a key effector of the ATR-mediated replication stress response. Cells lacking NEK8 form spontaneous DNA double-strand breaks (DSBs) that further accumulate when replication forks stall, and they exhibit reduced fork rates, unscheduled origin firing, and increased replication fork collapse. NEK8 suppresses DSB formation by limiting cyclin A-associated CDK activity. Strikingly, a mutation in NEK8 that is associated with renal ciliopathies affects its genome maintenance functions. Moreover, kidneys of NEK8 mutant mice accumulate DNA damage, and loss of NEK8 or replication stress similarly disrupts renal cell architecture in a 3D-culture system. Thus, NEK8 is a critical component of the DNA damage response that links replication stress with cystic kidney disorders.

SUBMITTER: Choi HJ 

PROVIDER: S-EPMC3790667 | biostudies-literature | 2013 Aug

REPOSITORIES: biostudies-literature

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NEK8 links the ATR-regulated replication stress response and S phase CDK activity to renal ciliopathies.

Choi Hyo Jei Claudia HJ   Lin Jia-Ren JR   Vannier Jean-Baptiste JB   Slaats Gisela G GG   Kile Andrew C AC   Paulsen Renee D RD   Manning Danielle K DK   Beier David R DR   Giles Rachel H RH   Boulton Simon J SJ   Cimprich Karlene A KA  

Molecular cell 20130801 4


Renal ciliopathies are a leading cause of kidney failure, but their exact etiology is poorly understood. NEK8/NPHP9 is a ciliary kinase associated with two renal ciliopathies in humans and mice, nephronophthisis (NPHP) and polycystic kidney disease. Here, we identify NEK8 as a key effector of the ATR-mediated replication stress response. Cells lacking NEK8 form spontaneous DNA double-strand breaks (DSBs) that further accumulate when replication forks stall, and they exhibit reduced fork rates, u  ...[more]

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