ATM regulates ATR chromatin loading in response to DNA double-strand breaks

Myriam Cuadrado(Spanish National Cancer Research Centre), Bárbara Martínez-Pastor(Spanish National Cancer Research Centre), Matilde Murga(Spanish National Cancer Research Centre), Luis Toledo(Spanish National Cancer Research Centre), Paula Gutierrez‐Martinez(Spanish National Cancer Research Centre), Eva López(Spanish National Cancer Research Centre), Óscar Fernández-Capetillo(Spanish National Cancer Research Centre)
The Journal of Experimental Medicine
February 6, 2006
Cited by 226Open Access
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Abstract

DNA double-strand breaks (DSBs) are among the most deleterious lesions that can challenge genomic integrity. Concomitant to the repair of the breaks, a rapid signaling cascade must be coordinated at the lesion site that leads to the activation of cell cycle checkpoints and/or apoptosis. In this context, ataxia telangiectasia mutated (ATM) and ATM and Rad-3-related (ATR) protein kinases are the earliest signaling molecules that are known to initiate the transduction cascade at damage sites. The current model places ATM and ATR in separate molecular routes that orchestrate distinct pathways of the checkpoint responses. Whereas ATM signals DSBs arising from ionizing radiation (IR) through a Chk2-dependent pathway, ATR is activated in a variety of replication-linked DSBs and leads to activation of the checkpoints in a Chk1 kinase-dependent manner. However, activation of the G2/M checkpoint in response to IR escapes this accepted paradigm because it is dependent on both ATM and ATR but independent of Chk2. Our data provides an explanation for this observation and places ATM activity upstream of ATR recruitment to IR-damaged chromatin. These data provide experimental evidence of an active cross talk between ATM and ATR signaling pathways in response to DNA damage.


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