How to find small non-coding RNAs in bacteria

被引:153
作者
Vogel, J [1 ]
Sharma, CM [1 ]
机构
[1] Max Planck Inst Infect Biol, D-10117 Berlin, Germany
关键词
bacteria; gene expression regulation; Hfq; non-coding RNA; post-transcriptional regulation; riboregulation; RNA processing; RNomics; small RNA;
D O I
10.1515/BC.2005.140
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Small non-coding RNAs (sRNAs) have attracted considerable attention as an emerging class of gene expression regulators. In bacteria, a few regulatory RNA molecules have long been known, but the extent of their role in the cell was not fully appreciated until the recent discovery of hundreds of potential sRNA genes in the bacterium Escherichia coli. Orthologs of these E. coli sRNA genes, as well as unrelated sRNAs, were also found in other bacteria. Here we review the disparate experimental approaches used over the years to identify sRNA molecules and their genes in prokaryotes. These include genome-wide searches based on the biocomputational prediction of non-coding RNA genes, global detection of non-coding transcripts using microarrays, and shotgun cloning of small RNAs (RNomics). Other sRNAs were found by either co-purification with RNA-binding proteins, such as Hfq or CsrA/RsmA, or classical cloning of abundant small RNAs after size fractionation in polyacrylamide gels. In addition, bacterial genetics offers powerful tools that aid in the search for sRNAs that may play a critical role in the regulatory circuit of interest, for example, the response to stress or the adaptation to a change in nutrient availability. Many of the techniques discussed here have also been successfully applied to the discovery of eukaryotic and archaeal sRNAs.
引用
收藏
页码:1219 / 1238
页数:20
相关论文
共 126 条
[71]   GadY, a small-RNA regulator of acid response genes in Escherichia coli [J].
Opdyke, JA ;
Kang, JG ;
Storz, G .
JOURNAL OF BACTERIOLOGY, 2004, 186 (20) :6698-6705
[72]   The etiological agent of Lyme disease, Borrelia burgdorferi, appears to contain only a few small RNA molecules [J].
Östberg, Y ;
Bunikis, I ;
Bergström, S ;
Johansson, J .
JOURNAL OF BACTERIOLOGY, 2004, 186 (24) :8472-8477
[73]   Multiple hok genes on the chromosome of Escherichia coli [J].
Pedersen, K ;
Gerdes, K .
MOLECULAR MICROBIOLOGY, 1999, 32 (05) :1090-1102
[74]   Intergenic sequence inspector: searching and identifying bacterial RNAs [J].
Pichon, C ;
Felden, B .
BIOINFORMATICS, 2003, 19 (13) :1707-1709
[75]   AN ESCHERICHIA-COLI RIBONUCLEOPROTEIN CONTAINING 4.5S RNA RESEMBLES MAMMALIAN SIGNAL RECOGNITION PARTICLE [J].
PORITZ, MA ;
BERNSTEIN, HD ;
STRUB, K ;
ZOPF, D ;
WILHELM, H ;
WALTER, P .
SCIENCE, 1990, 250 (4984) :1111-1117
[76]   ESCHERICHIA-COLI 4.5S RNA IS PART OF A RIBONUCLEOPROTEIN PARTICLE THAT HAS PROPERTIES RELATED TO SIGNAL RECOGNITION PARTICLE [J].
RIBES, V ;
ROMISCH, K ;
GINER, A ;
DOBBERSTEIN, B ;
TOLLERVEY, D .
CELL, 1990, 63 (03) :591-600
[77]   Secondary structure alone is generally not statistically significant for the detection of noncoding RNAs [J].
Rivas, E ;
Eddy, SR .
BIOINFORMATICS, 2000, 16 (07) :583-605
[78]   Computational identification of noncoding RNAs in E-coli by comparative genomics [J].
Rivas, E ;
Klein, RJ ;
Jones, TA ;
Eddy, SR .
CURRENT BIOLOGY, 2001, 11 (17) :1369-1373
[79]   Comparative genomics of thiamin biosynthesis in procaryotes - New genes and regulatory mechanisms [J].
Rodionov, DA ;
Vitreschak, AG ;
Mironov, AA ;
Gelfand, MS .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2002, 277 (50) :48949-48959
[80]   A SIMPLE METHOD FOR CLONING GENES INVOLVED IN GLUCAN BIOSYNTHESIS - ISOLATION OF STRUCTURAL AND REGULATORY GENES FOR GLYCOGEN-SYNTHESIS IN ESCHERICHIA-COLI [J].
ROMEO, T ;
MOORE, J ;
SMITH, J .
GENE, 1991, 108 (01) :23-29