Literature DB >> 34314299

A single mutation attenuates both the transcription termination and RNA-dependent RNA polymerase activity of T7 RNA polymerase.

Hui Wu1, Ting Wei2, Bingbing Yu1, Rui Cheng1, Fengtao Huang1, Xuelin Lu1, Yan Yan1, Xionglue Wang1, Chenli Liu2,3, Bin Zhu1.   

Abstract

Transcription termination is one of the least understood processes of gene expression. As the prototype model for transcription studies, the single-subunit T7 RNA polymerase (RNAP) is known to respond to two types of termination signals, but the mechanism underlying such termination, especially the specific elements of the polymerase involved, is still unclear, due to a lack of knowledge with respect to the structure of the termination complex. Here we applied phage-assisted continuous evolution to obtain variants of T7 RNAP that can bypass the typical class I T7 terminator with stem-loop structure. Through in vivo selection and in vitro characterization, we discovered a single mutation (S43Y) that significantly decreased the termination efficiency of T7 RNAP at all transcription terminators tested. Coincidently, the S43Y mutation almost eliminates the RNA-dependent RNAP (RdRp) activity of T7 RNAP without impeding the major DNA-dependent RNAP (DdRp) activity of the enzyme. S43 is located in a hinge region and regulates the transformation between transcription initiation and elongation of T7 RNAP. Steady-state kinetics analysis and an RNA binding assay indicate that the S43Y mutation increases the transcription efficiency while weakening RNA binding of the enzyme. As an enzymatic reagent for in vitro transcription, the T7 RNAP S43Y mutant reduces the undesired termination in run-off RNA synthesis and produces RNA with higher terminal homogeneity.

Entities:  

Keywords:  Phage-assisted continuous evolution; RNA synthesis; in vitro transcription; sgRNA; terminator

Mesh:

Substances:

Year:  2021        PMID: 34314299      PMCID: PMC8677023          DOI: 10.1080/15476286.2021.1954808

Source DB:  PubMed          Journal:  RNA Biol        ISSN: 1547-6286            Impact factor:   4.766


  55 in total

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3.  Cloning and expression of the bacteriophage T3 RNA polymerase gene.

Authors:  C E Morris; J F Klement; W T McAllister
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5.  Soluble expression of cloned phage K11 RNA polymerase gene in Escherichia coli at a low temperature.

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7.  Pausing and termination by bacteriophage T7 RNA polymerase.

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