{"database":"biostudies-other","file_versions":[],"scores":null,"additional":{"omics_type":["Unknown"],"volume":["36"],"submitter":["Lucian Smith"],"journal":["The EMBO journal"],"pagination":["2161-2176"],"species":["Homo sapiens"],"full_dataset_link":["https://www.ebi.ac.uk/biostudies/studies/MODEL1704030000"],"repository":["biostudies-other"],"additional_accession":["28607002"],"pubmed_authors":["Lucian Smith","Karen Akopyan"]},"is_claimable":false,"name":"Jaiswal2017 - Cell cycle arrest","description":"<notes xmlns=\"http://www.sbml.org/sbml/level3/version1/core\">      <body xmlns=\"http://www.w3.org/1999/xhtml\">        <div class=\"dc:title\">Jaiswal2017 - Cell cycle arrest</div><div class=\"dc:bibliographicCitation\">  <p>This model is described in the article:</p>  <div class=\"bibo:title\">    <a href=\"http://identifiers.org/pubmed/28607002\" title=\"Access to this publication\">ATM/Wip1 activities at    chromatin control Plk1 re-activation to determine G2 checkpoint    duration.</a>  </div>  <div class=\"bibo:authorList\">Jaiswal H, Benada J, Müllers E,  Akopyan K, Burdova K, Koolmeister T, Helleday T, Medema RH,  Macurek L, Lindqvist A.</div>  <div class=\"bibo:Journal\">EMBO J. 2017 Jul; 36(14):  2161-2176</div>  <p>Abstract:</p>  <div class=\"bibo:abstract\">    <p>After DNA damage, the cell cycle is arrested to avoid    propagation of mutations. Arrest in G2 phase is initiated by    ATM-/ATR-dependent signaling that inhibits mitosis-promoting    kinases such as Plk1. At the same time, Plk1 can counteract    ATR-dependent signaling and is required for eventual resumption    of the cell cycle. However, what determines when Plk1 activity    can resume remains unclear. Here, we use FRET-based reporters    to show that a global spread of ATM activity on chromatin and    phosphorylation of ATM targets including KAP1 control Plk1    re-activation. These phosphorylations are rapidly counteracted    by the chromatin-bound phosphatase Wip1, allowing cell cycle    restart despite persistent ATM activity present at DNA lesions.    Combining experimental data and mathematical modeling, we    propose a model for how the minimal duration of cell cycle    arrest is controlled. Our model shows how cell cycle restart    can occur before completion of DNA repair and suggests a    mechanism for checkpoint adaptation in human cells.</p>  </div></div><div class=\"dc:publisher\">  <p>This model is hosted on   <a href=\"http://www.ebi.ac.uk/biomodels/\">BioModels Database</a>  and identified by:   <a href=\"http://identifiers.org/biomodels.db/BIOMD0000000641\">BIOMD0000000641</a>.</p>  <p>To cite BioModels Database, please use:   <a href=\"http://identifiers.org/pubmed/20587024\" title=\"Latest BioModels Database publication\">BioModels Database:  An enhanced, curated and annotated resource for published  quantitative kinetic models</a>.</p></div><div class=\"dc:license\">  <p>To the extent possible under law, all copyright and related or  neighbouring rights to this encoded model have been dedicated to  the public domain worldwide. Please refer to   <a href=\"http://creativecommons.org/publicdomain/zero/1.0/\" title=\"Access to: CC0 1.0 Universal (CC0 1.0), Public Domain Dedication\">CC0  Public Domain Dedication</a> for more information.</p></div></body>    </notes>","dates":{"release":"2017-04-03T00:00:00Z","modification":"2025-07-15T09:57:28.452Z","creation":"2025-03-29T18:18:09.702Z"},"accession":"MODEL1704030000","cross_references":{"biomodels___db":["BIOMD0000000641"],"pubmed":["28607002"],"mamo":["MAMO_0000046"],"pw":["PW:0001362"],"go":["GO:0007095","GO:0005634","GO:0042769","GO:0000724","GO:0006303"],"taxonomy":["9606"],"bto":["BTO:0004910"],"uniprot":["Q13315","P53350","Q13535"]}}