Literature DB >> 15879698

Drosophila melanogaster: a model for the study of DNA damage checkpoint response.

Young-Han Song1.   

Abstract

The cells of metazoans respond to DNA damage by either arresting their cell cycle in order to repair the DNA, or by undergoing apoptosis. This response is highly conserved across species, and many of the genes involved in this DNA damage response have been shown to be inactivated in human cancers. This suggests the importance of DNA damage response with regard to the prevention of cancer. The DNA damage checkpoint responses vary greatly depending on the developmental context, cell type, gene expression profile, and the degree and nature of the DNA lesions. More valuable information can be obtained from studies utilizing whole organisms in which the molecular basis of development has been well established, such as Drosophila. Since the discovery of the Drosophila p53 orthologue, various aspects of DNA damage responses have been studied in Drosophila. In this review, I will summarize the current knowledge on the DNA damage checkpoint response in Drosophila. With the ease of genetic, cellular, and cytological approaches, Drosophila will become an increasingly valuable model organism for the study of mechanisms inherent to cancer formation associated with defects in the DNA damage pathway.

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Mesh:

Year:  2005        PMID: 15879698

Source DB:  PubMed          Journal:  Mol Cells        ISSN: 1016-8478            Impact factor:   5.034


  29 in total

Review 1.  DNA Repair in Drosophila: Mutagens, Models, and Missing Genes.

Authors:  Jeff Sekelsky
Journal:  Genetics       Date:  2017-02       Impact factor: 4.562

2.  Effects of heat and UV radiation on the mobilization of transposon mariner-Mos1.

Authors:  Sinara Santos Jardim; André Passaglia Schuch; Camila Moura Pereira; Elgion Lucio Silva Loreto
Journal:  Cell Stress Chaperones       Date:  2015-06-20       Impact factor: 3.667

3.  Chk1 and Wee1 kinases coordinate DNA replication, chromosome condensation, and anaphase entry.

Authors:  Barbara Fasulo; Carol Koyama; Kristina R Yu; Ellen M Homola; Tao S Hsieh; Shelagh D Campbell; William Sullivan
Journal:  Mol Biol Cell       Date:  2012-01-19       Impact factor: 4.138

Review 4.  Modeling human mitochondrial diseases in flies.

Authors:  Alvaro Sánchez-Martínez; Ningguang Luo; Paula Clemente; Cristina Adán; Rosana Hernández-Sierra; Pilar Ochoa; Miguel Angel Fernández-Moreno; Laurie S Kaguni; Rafael Garesse
Journal:  Biochim Biophys Acta       Date:  2006-05-13

5.  Effects of ectopic expression of Drosophila DNA glycosylases dOgg1 and RpS3 in mitochondria.

Authors:  Svetlana N Radyuk; Katarzyna Michalak; Igor Rebrin; Rajindar S Sohal; William C Orr
Journal:  Free Radic Biol Med       Date:  2006-05-26       Impact factor: 7.376

Review 6.  Connecting cell-cycle activation to neurodegeneration in Drosophila.

Authors:  Vikram Khurana; Mel B Feany
Journal:  Biochim Biophys Acta       Date:  2006-10-18

7.  Baculovirus infection induces a DNA damage response that is required for efficient viral replication.

Authors:  Ning Huang; Wenbi Wu; Kai Yang; A Lorena Passarelli; George F Rohrmann; Rollie J Clem
Journal:  J Virol       Date:  2011-09-14       Impact factor: 5.103

8.  Mutations in String/CDC25 inhibit cell cycle re-entry and neurodegeneration in a Drosophila model of Ataxia telangiectasia.

Authors:  Stacey A Rimkus; Rebeccah J Katzenberger; Anthony T Trinh; Gerald E Dodson; Randal S Tibbetts; David A Wassarman
Journal:  Genes Dev       Date:  2008-04-11       Impact factor: 11.361

9.  Functional characterization of the Drosophila Hmt4-20/Suv4-20 histone methyltransferase.

Authors:  Ayako Sakaguchi; Dmitry Karachentsev; Mansha Seth-Pasricha; Marina Druzhinina; Ruth Steward
Journal:  Genetics       Date:  2008-05       Impact factor: 4.562

10.  Heterochromatic genome stability requires regulators of histone H3 K9 methylation.

Authors:  Jamy C Peng; Gary H Karpen
Journal:  PLoS Genet       Date:  2009-03-27       Impact factor: 5.917

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