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Sphingolipids regulate telomere clustering by affecting transcriptional levels of genes involved in telomere homeostasis
Author(s) -
Atsuko Ikeda,
Tetsuya Muneoka,
Suguru Murakami,
Ayaka Hirota,
Yukari Yabuki,
Takefumi Karashima,
Kota Nakazono,
Masahiro Tsuruno,
Harald Pichler,
Katsuhiko Shirahige,
Yukiko Kodama,
Toshi Shimamoto,
Keiko Mizuta,
Kouichi Funato
Publication year - 2015
Publication title -
journal of cell science
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.384
H-Index - 278
eISSN - 1477-9137
pISSN - 0021-9533
DOI - 10.1242/jcs.164160
Subject(s) - biology , telomere , sphingolipid , saccharomyces cerevisiae , gene , genetics , telomere binding protein , telomerase , genome , cluster analysis , microbiology and biotechnology , transcription factor , dna binding protein , machine learning , computer science
In eukaryotic organisms, including mammals, nematodes and yeasts, the ends of chromosomes, telomeres are clustered at the nuclear periphery. Telomere clustering is assumed to be functionally important because proper organization of chromosomes is necessary for proper genome function and stability. However, the mechanisms and physiological roles of telomere clustering remain poorly understood. In this study, we demonstrate a role for sphingolipids in telomere clustering in the budding yeast Saccharomyces cerevisiae. Because abnormal sphingolipid metabolism causes downregulation of expression levels of genes involved in telomere organization, sphingolipids appear to control telomere clustering at the transcriptional level. In addition, the data presented here provide evidence that telomere clustering is required to protect chromosome ends from DNA-damage checkpoint signaling. As sphingolipids are found in all eukaryotes, we speculate that sphingolipid-based regulation of telomere clustering and the protective role of telomere clusters in maintaining genome stability might be conserved in eukaryotes.

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