During the past 15 years, we have carried out several different systematic screens for small regulatory RNA genes in E. coli. These screens, which have included computational screens for conservation of intergenic regions and direct detection after size selection or co-immunoprecipitation with the RNA binding protein Hfq, are all applicable to other organisms. We are now examining small RNA expression using deep sequencing to further extend our identification of small RNAs, particularly antisense RNAs. A large focus of the group has been to elucidate the functions of the small RNAs we and others have identified. Early on we showed that the OxyS RNA, whose expression is induced in response to oxidative stress, acts to repress translation through limited base pairing with target mRNAs. We discovered that the OxyS action is dependent on the Sm-like Hfq protein, which functions as a chaperone to facilitate OxyS RNA base pairing with its target mRNAs. More recently we carried out an extensive mutational study of Hfq (2). This analysis revealed that amino acids on three different RNA interaction surfaces--the proximal face, the distal face and the rim of the doughnut-shaped protein--differentially impact Hfq association with small RNAs and their mRNA targets. It is now clear that Hfq-binding small RNAs, which act through limited base pairing, are integral to many different stress responses in E. coli. For example, we showed that the Spot 42 RNA, whose levels are highest when glucose is present, plays a broad role in catabolite repression by directly repressing genes involved in central and secondary metabolism, redox balancing, and the consumption of diverse nonpreferred carbon sources. It was previously reported that the transcription factor σ(E) maintains membrane homeostasis in part by inducing synthesis of proteins involved in membrane repair and two small regulatory RNAs (sRNAs) that down-regulate synthesis of abundant membrane porins. We recently discovered of a third σ(E)-dependent sRNA, MicL, transcribed from a promoter located within the coding sequence of the cutC gene (3). MicL possesses features typical of Hfq-binding sRNAs but surprisingly targets only a single mRNA, which encodes the outer membrane lipoprotein Lpp, the most abundant protein of the cell. Interestingly, we found that the copper sensitivity phenotype previously ascribed to inactivation of the cutC gene is actually derived from the loss of MicL and elevated Lpp levels. This observation raises the possibility that other phenotypes currently attributed to protein defects are due to deficiencies in unappreciated regulatory RNAs. In other recent work, we discovered that the McaS RNA, whose levels are elevated in stationary phase or when glucose is limiting, regulates mRNA targets involved in various aspects of biofilm formation. McaS represses csgD, the transcription regulator of curli biogenesis and activates flhD, the master transcription regulator of flagella synthesis leading to increased motility, a process not previously reported to be regulated by sRNAs. McaS also regulates pgaA, a porin required for the export of the polysaccharide poly-beta-1,6-N-acetyl-d-glucosamine. While we assumed that sRNAs act solely by one mechanism, to our surprise, we discovered that McaS acts by two different mechanisms: base-pairing and protein titration (1). McaS base pairs with the csgD and flhD mRNAs, respectively, resulting in down-regulation and up-regulation of the corresponding cell surface structures. In contrast, McaS activates pgaA by binding the global RNA-binding protein CsrA, a negative regulator of pgaA translation. The McaS RNA bears at least two CsrA-binding sequences, and inactivation of these sites compromises CsrA binding, PGA regulation, and biofilm formation. Moreover, ectopic McaS expression leads to induction of two additional CsrA-repressed genes encoding diguanylate cyclases. Thus McaS is a dual-function sRNA with roles in the two major post-transcriptional regulons controlled by the RNA-binding proteins Hfq and CsrA. In addition to small RNAs that act via limited base pairing, we have been interested in small antisense RNAs that have the potential to form extensive base pairing interactions with their mRNA targets encoded on the opposite strand. We showed that base pairing of GadY encoded antisense to the gadXW mRNA results in processing giving rise to two halves that accumulate to higher levels than the full length mRNA. We also reported that a large class of antisense RNAs acts to repress the synthesis of small toxic proteins. Finally, the lab made the important discovery that an abundant and broadly-conserved small RNA mimics the DNA structure of an open promoter and modulates RNA polymerase activity. Studies to further characterize other Hfq-binding RNAs, antisense RNAs and small RNAs that act in ways other than base pairing are ongoing.

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23
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2014
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U.S. National Inst/Child Hlth/Human Dev
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Altuvia, Shoshy; Storz, Gisela; Papenfort, Kai (2018) Cross-Regulation between Bacteria and Phages at a Posttranscriptional Level. Microbiol Spectr 6:
Olejniczak, Mikolaj; Storz, Gisela (2017) ProQ/FinO-domain proteins: another ubiquitous family of RNA matchmakers? Mol Microbiol 104:905-915
Raina, Medha; Storz, Gisela (2017) SgrT, a Small Protein That Packs a Sweet Punch. J Bacteriol 199:
Hao, Yue; Updegrove, Taylor B; Livingston, Natasha N et al. (2016) Protection against deleterious nitrogen compounds: role of ?S-dependent small RNAs encoded adjacent to sdiA. Nucleic Acids Res 44:6935-48
Storz, Gisela (2016) New perspectives: Insights into oxidative stress from bacterial studies. Arch Biochem Biophys 595:25-7
Updegrove, Taylor B; Zhang, Aixia; Storz, Gisela (2016) Hfq: the flexible RNA matchmaker. Curr Opin Microbiol 30:133-138
Machner, Matthias P; Storz, Gisela (2016) Infection biology: Small RNA with a large impact. Nature 529:472-3
Thomason, Maureen K; Bischler, Thorsten; Eisenbart, Sara K et al. (2015) Global transcriptional start site mapping using differential RNA sequencing reveals novel antisense RNAs in Escherichia coli. J Bacteriol 197:18-28
Gottesman, Susan; Storz, Gisela (2015) RNA reflections: converging on Hfq. RNA 21:511-2
Updegrove, Taylor B; Shabalina, Svetlana A; Storz, Gisela (2015) How do base-pairing small RNAs evolve? FEMS Microbiol Rev 39:379-91

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