翻訳と辞書
Words near each other
・ Non-Gaussianity
・ Non-geographic telephone numbers in the United Kingdom
・ Non-gonococcal urethritis
・ Non-governmental federation
・ Non-governmental organisations in Nepal
・ Non-governmental organization
・ Non-governmental organizations in Ratanakiri Province
・ Non-Hausdorff manifold
・ Non-heart-beating donation
・ Non-helical models of DNA structure
・ Non-heterosexual
・ Non-high school district
・ Non-Hispanic whites
・ Non-histone protein
・ Non-Hodgkin lymphoma
Non-homologous end joining
・ Non-homologous end-joining factor 1
・ Non-homologous isofunctional enzymes
・ Non-human
・ Non-human electoral candidates
・ Non-importation Act
・ Non-inclined orbit
・ Non-inertial reference frame
・ Non-innocent ligand
・ Non-Inscrits
・ Non-Insured Health Benefits
・ Non-integer representation
・ Non-Intentional Lifeform
・ Non-interactive zero-knowledge proof
・ Non-Intercourse Act (1809)


Dictionary Lists
翻訳と辞書 辞書検索 [ 開発暫定版 ]
スポンサード リンク

Non-homologous end joining : ウィキペディア英語版
Non-homologous end joining
Non-homologous end joining (NHEJ) is a pathway that repairs double-strand breaks in DNA. NHEJ is referred to as "non-homologous" because the break ends are directly ligated without the need for a homologous template, in contrast to homology directed repair, which requires a homologous sequence to guide repair. The term "non-homologous end joining" was coined in 1996 by Moore and Haber.
NHEJ typically utilizes short homologous DNA sequences called microhomologies to guide repair. These microhomologies are often present in single-stranded overhangs on the ends of double-strand breaks. When the overhangs are perfectly compatible, NHEJ usually repairs the break accurately.〔〔Wilson, T. E., and Lieber, M. R. Efficient processing of DNA ends during yeast nonhomologous end joining. Evidence for a DNA polymerase beta (Pol4)-dependent pathway. (1999) J" ''Biol. Chem'' 274, 23599–23609. PMID 10438542〕〔Budman J, Chu G. Processing of DNA for nonhomologous end-joining by cell-free extract. EMBO J. 2005 Feb 23;24(4) 849-60. PMID 15692565〕 Imprecise repair leading to loss of nucleotides can also occur, but is much more common when the overhangs are not compatible. Inappropriate NHEJ can lead to translocations and telomere fusion, hallmarks of tumor cells.
NHEJ is evolutionarily conserved throughout all kingdoms of life and is the predominant double-strand break repair pathway in mammalian cells. In budding yeast (''Saccharomyces cerevisiae''), however, homologous recombination dominates when the organism is grown under common laboratory conditions.
When the NHEJ pathway is inactivated, double-strand breaks can be repaired by a more error-prone pathway called microhomology-mediated end joining (MMEJ). In this pathway, end resection reveals short microhomologies on either side of the break, which are then aligned to guide repair. This contrasts with classical NHEJ, which typically uses microhomologies already exposed in single-stranded overhangs on the DSB ends. Repair by MMEJ therefore leads to deletion of the DNA sequence between the microhomologies.
==In bacteria==
Many species of bacteria, including ''Escherichia coli'', lack an end joining pathway and thus rely completely on homologous recombination to repair double-strand breaks. NHEJ proteins have been identified in a number of bacteria, however, including ''Bacillus subtilis'', ''Mycobacterium tuberculosis'', and ''Mycobacterium smegmatis''. Bacteria utilize a remarkably compact version of NHEJ in which all of the required activities are contained in only two proteins: a Ku homodimer and the multifunctional ligase/polymerase/nuclease LigD. In mycobacteria, NHEJ is much more error prone than in yeast, with bases often added to and deleted from the ends of double-strand breaks during repair.〔 Many of the bacteria that possess NHEJ proteins spend a significant portion of their life cycle in a stationary haploid phase, in which a template for recombination is not available.〔 NHEJ may have evolved to help these organisms survive DSBs induced during desiccation. Corndog and Omega, two related mycobacteriophages of ''Mycobacterium smegmatis'', also encode Ku homologs and exploit the NHEJ pathway to recircularize their genomes during infection. Unlike homologous recombination, which has been studied extensively in bacteria, NHEJ was originally discovered in eukaryotes and was only identified in prokaryotes in the past decade.

抄文引用元・出典: フリー百科事典『 ウィキペディア(Wikipedia)
ウィキペディアで「Non-homologous end joining」の詳細全文を読む



スポンサード リンク
翻訳と辞書 : 翻訳のためのインターネットリソース

Copyright(C) kotoba.ne.jp 1997-2016. All Rights Reserved.