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GartnerAnton

Gartner, Anton
DNA Damage Response and Genetic Toxicology
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Cell-Nonautonomous Regulation of C. elegans Germ Cell Death by kri-1

Author(s)
Ito, ShuGreiss, SebastianGartner, AntonDerry, W. Brent
Issued Date
2010-02
DOI
10.1016/j.cub.2009.12.032
URI
https://scholarworks.unist.ac.kr/handle/201301/31000
Fulltext
https://www.sciencedirect.com/science/article/pii/S0960982209021563?via%3Dihub
Citation
CURRENT BIOLOGY, v.20, no.4, pp.333 - 338
Abstract
Programmed cell death (or apoptosis) is an evolutionarily conserved, genetically controlled suicide mechanism for cells that, when deregulated, can lead to developmental defects, cancers, and degenerative diseases [1, 2]. In C. elegans, DNA damage induces germ cell death by signaling through cep-1/p53, ultimately leading to the activation of CED-3/caspase [3-13]. It has been hypothesized that the major regulatory events controlling cell death occur by cell-autonomous mechanisms, that is, within the dying cell. In support of this, genetic studies in C. elegans have shown that the core apoptosis pathway genes ced-4l APAF-1 and ced-3/caspase are required in cells fated to die [9]. However, it is not known whether the upstream signals that activate apoptosis function in a cell-autonomous manner. Here we show that kri-1, an ortholog of KRIT1/CCM1, which is mutated in the human neurovascular disease cerebral cavernous malformation [14, 15], is required to activate DNA damage-dependent cell death independently of cep-1/p53. Interestingly, we find that kri-1 regulates cell death in a cell-nonautonomous manner, revealing a novel regulatory role for nondying cells in eliciting cell death in response to DNA damage.
Publisher
CELL PRESS
ISSN
0960-9822
Keyword
GENECED-4P53DAMAGE-INDUCED APOPTOSISDNA-DAMAGECAENORHABDITIS-ELEGANSCHECKPOINT PROTEINLIFE-SPANTUMOR-SUPPRESSORENCODING KRIT1

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