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Arnold, K.

Publications and source records attributed to Arnold, K..

2 recordsLinked to original sources

The trypanosome Variant Surface Glycoprotein mRNA is stabilized by an essential unconventional RNA-binding protein

Salivarian trypanosomes cause human sleeping sickness and economically important livestock diseases. The "bloodstream forms", which replicate extracellularly in the blood and tissue fluids of mammals, are coated by a monolayer of Variant Surface Glycoprotein (VSG). Switching of the expressed VSG gene is central to parasite pathogenicity because it enables the parasites to evade adaptive immunity via antigenic variation. Adequate levels of VSG expression - 10% of total protein and 7% of mRNA - are attained through very active RNA polymerase I transcription, efficient mRNA processing (trans splicing of a capped leader and polyadenylation), and high mRNA stability. We here show how VSG mRNA stability is maintained. Purification of the VSG mRNA with associated proteins specifically selected CFB2, an F-box mRNA-binding protein that lacks known RNA-binding domains. CFB2 binds to a stabilizing complex (MKT1-PBP1-XAC1-LSM12) that recruits poly(A) binding protein and a specialized cap-binding translation initiation complex, EIF4E6-EIF4G5. The interaction of CFB2 with MKT1 is essential for CFB2s expression-promoting activity, while the F-box auto-regulates CFB2 abundance via interaction with SKP1, a component of the ubiquitination machinery. The results of reporter experiments indicate that CFB2 acts via conserved sequences in the VSG mRNA 3-untranslated region. Depletion of CFB2 leads to highly specific loss of VSG mRNA. VSG expression is essential not only for antigenic variation but also for trypanosome cell division. Correspondingly, depletion of CFB2 causes cell cycle arrest, dramatic morphological abnormalities and trypanosome death.

molecular biology

Beyond Plug and Pray: Context Sensitivity and in silico Design of Artificial Neomycin Riboswitches

Gene regulation in prokaryotes often depends on RNA elements such as riboswitches or RNA thermometers located in the 5’ untranslated region of mRNA. Rearrangements of the RNA structure in response, e. g., to the binding of small molecules or ions control translational initiation or premature termination of transcription and thus mRNA expression. Such structural responses are amenable to computational modeling, making it possible to rationally design synthetic riboswitches for a given aptamer. Starting from an artificial aptamer, we construct the first synthetic transcriptional riboswitches that respond to the antibiotic neomycin. We show that the switching behavior in vivo critically depends not only on the sequence of the riboswitch itself, but also on its sequence context. We therefore developed in silico methods to predict the impact of the context, making it possible to adapt the design and to rescue non-functional riboswitches. We furthermore analyze the influence of 5’ hairpins with varying stability on neomycin riboswitch activity. Our data highlight the limitations of a simple plug-and-play approach in the design of complex genetic circuits and demonstrate that detailed computational models significantly simplify, improve, and automate the design of transcriptional circuits. Our design software is available under a free license on Github.1Competing Interest StatementThe authors have declared no competing interest.List of Abbreviationsauarbitrary time unitsAURaptamer upstream regionbgaBβ-galactosidasebgaBthe β-galactosidase genedLdecoupling leaderE. coliEscherichia colieGFPthe enhanced green fluorescent proteinegfpthe enhanced green fluorescent protein geneGFPgreen fluorescent proteinLHleader hairpinLMmutated leaderMFEminimum free energymRNAmessenger RNAoLoriginal leaderPospositive controlRBSribosomal binding siteRFUrelative fluorescence unitRNAribonucleic acidRNAPRNA polymeraseRNase ERibonuclease ERppHRNA 5’ pyrophosphohydrolaserRNAribosomal RNASELEXsystematic evolution of ligands by exponential enrichmentSSCsaline sodium citrate bufferTBETris-borate-EDTATDRterminator downstream regionTSStranscription start siteUunstructured regionUTRuntranslated regionView Full Text

synthetic biology