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DNA Damage Triggers Golgi Dispersal via DNA-PK and GOLPH3
Author(s) -
Suzette Farber-Katz,
Holly C. Dippold,
Matthew D. Buschman,
Marshall C. Peterman,
Mengke Xing,
Christopher Noakes,
John Tat,
Michelle M. Ng,
Juliati Rahajeng,
David M. Cowan,
Greg J. Fuchs,
Huilin Zhou,
Seth J. Field
Publication year - 2014
Publication title -
cell
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 26.304
H-Index - 776
eISSN - 1097-4172
pISSN - 0092-8674
DOI - 10.1016/j.cell.2013.12.023
Subject(s) - dna damage , biology , microbiology and biotechnology , dna , dna repair , golgi apparatus , checkpoint kinase 2 , protein kinase a , genetics , kinase , protein serine threonine kinases , endoplasmic reticulum
The response to DNA damage, which regulates nuclear processes such as DNA repair, transcription, and cell cycle, has been studied thoroughly. However, the cytoplasmic response to DNA damage is poorly understood. Here, we demonstrate that DNA damage triggers dramatic reorganization of the Golgi, resulting in its dispersal throughout the cytoplasm. We further show that DNA-damage-induced Golgi dispersal requires GOLPH3/MYO18A/F-actin and the DNA damage protein kinase, DNA-PK. In response to DNA damage, DNA-PK phosphorylates GOLPH3, resulting in increased interaction with MYO18A, which applies a tensile force to the Golgi. Interference with the Golgi DNA damage response by depletion of DNA-PK, GOLPH3, or MYO18A reduces survival after DNA damage, whereas overexpression of GOLPH3, as is observed frequently in human cancers, confers resistance to killing by DNA-damaging agents. Identification of the DNA-damage-induced Golgi response reveals an unexpected pathway through DNA-PK, GOLPH3, and MYO18A that regulates cell survival following DNA damage.

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