The Antisense Transcriptomes of Human Cells

被引:399
作者
He, Yiping [1 ,2 ]
Vogelstein, Bert [1 ,2 ]
Velculescu, Victor E. [1 ,2 ]
Papadopoulos, Nickolas [1 ,2 ]
Kinzler, Kenneth W. [1 ,2 ]
机构
[1] Johns Hopkins Kimmel Canc Ctr, Ludwig Ctr Canc Genet & Therapeut, Baltimore, MD 21231 USA
[2] Johns Hopkins Kimmel Canc Ctr, Howard Hughes Med Inst, Baltimore, MD 21231 USA
关键词
D O I
10.1126/science.1163853
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Transcription in mammalian cells can be assessed at a genome- wide level, but it has been difficult to reliably determine whether individual transcripts are derived from the plus or minus strands of chromosomes. This distinction can be critical for understanding the relationship between known transcripts ( sense) and the complementary antisense transcripts that may regulate them. Here, we describe a technique that can be used to (i) identify the DNA strand of origin for any particular RNA transcript, and (ii) quantify the number of sense and antisense transcripts from expressed genes at a global level. We examined five different human cell types and in each case found evidence for antisense transcripts in 2900 to 6400 human genes. The distribution of antisense transcripts was distinct from that of sense transcripts, was nonrandom across the genome, and differed among cell types. Antisense transcripts thus appear to be a pervasive feature of human cells, which suggests that they are a fundamental component of gene regulation.
引用
收藏
页码:1855 / 1857
页数:3
相关论文
共 25 条
[1]   Exploring the new world of the genome with DNA microarrays [J].
Brown, PO ;
Botstein, D .
NATURE GENETICS, 1999, 21 (Suppl 1) :33-37
[2]   Antisense starts making more sense [J].
Carmichael, GG .
NATURE BIOTECHNOLOGY, 2003, 21 (04) :371-372
[3]   Over 20% of human transcripts might form sense-antisense pairs [J].
Chen, JJ ;
Sun, M ;
Kent, WJ ;
Huang, XQ ;
Xie, HQ ;
Wang, WQ ;
Zhou, GL ;
Shi, RZ ;
Rowley, JD .
NUCLEIC ACIDS RESEARCH, 2004, 32 (16) :4812-4820
[4]   Overlapping antisense transcription in the human genome [J].
Fahey, ME ;
Moore, TF ;
Higgins, DG .
COMPARATIVE AND FUNCTIONAL GENOMICS, 2002, 3 (03) :244-253
[5]   Dark matter in the genome: evidence of widespread transcription detected by microarray tiling experiments [J].
Johnson, JM ;
Edwards, S ;
Shoemaker, D ;
Schadt, EE .
TRENDS IN GENETICS, 2005, 21 (02) :93-102
[6]   Novel RNAs identified from an in-depth analysis of the transcriptome of human chromosomes 21 and 22 [J].
Kampa, D ;
Cheng, J ;
Kapranov, P ;
Yamanaka, M ;
Brubaker, S ;
Cawley, S ;
Drenkow, J ;
Piccolboni, A ;
Bekiranov, S ;
Helt, G ;
Tammana, H ;
Gingeras, TR .
GENOME RESEARCH, 2004, 14 (03) :331-342
[7]   Genome-wide transcription and the implications for genomic organization [J].
Kapranov, Philipp ;
Willingham, Aarron T. ;
Gingeras, Thomas R. .
NATURE REVIEWS GENETICS, 2007, 8 (06) :413-423
[8]   Antisense transcription in the mammalian transcriptome [J].
Katayama, S ;
Tomaru, Y ;
Kasukawa, T ;
Waki, K ;
Nakanishi, M ;
Nakamura, M ;
Nishida, H ;
Yap, CC ;
Suzuki, M ;
Kawai, J ;
Suzuki, H ;
Carninci, P ;
Hayashizaki, Y ;
Wells, C ;
Frith, M ;
Ravasi, T ;
Pang, KC ;
Hallinan, J ;
Mattick, J ;
Hume, DA ;
Lipovich, L ;
Batalov, S ;
Engström, PG ;
Mizuno, Y ;
Faghihi, MA ;
Sandelin, A ;
Chalk, AM ;
Mottagui-Tabar, S ;
Liang, Z ;
Lenhard, B ;
Wahlestedt, C .
SCIENCE, 2005, 309 (5740) :1564-1566
[9]   Antisense transcripts with FANTOM2 clone set and their implications for gene regulation [J].
Kiyosawa, H ;
Yamanaka, I ;
Osato, N ;
Kondo, S ;
Hayashizaki, Y .
GENOME RESEARCH, 2003, 13 (6B) :1324-1334
[10]   Genome-wide natural antisense transcription: coupling its regulation to its different regulatory mechanisms [J].
Lapidot, Michal ;
Pilpel, Yitzhak .
EMBO REPORTS, 2006, 7 (12) :1216-1222