Related Experiment Video
Updated: Dec 20, 2025

Chemical Triphosphorylation of Oligonucleotides
Published on: June 2, 2022
Role of the trigger loop in translesion RNA synthesis by bacterial RNA polymerase
Aleksei Agapov1, Artem Ignatov1, Matti Turtola2
1Institute of Molecular Genetics, Russian Academy of Sciences, Moscow, Russia.
Abstract:
DNA lesions can severely compromise transcription and block RNA synthesis by RNA polymerase (RNAP), leading to subsequent recruitment of DNA repair factors to the stalled transcription complex. Recent structural studies have uncovered molecular interactions of several DNA lesions within the transcription elongation complex. However, little is known about the role of key elements of the RNAP active site in translesion transcription. Here, using recombinantly expressed proteins, in vitro transcription, kinetic analyses, and in vivo cell viability assays, we report that point amino acid substitutions in the trigger loop, a flexible element of the active site involved in nucleotide addition, can stimulate translesion RNA synthesis by Escherichia coli RNAP without altering the fidelity of nucleotide incorporation. We show that these substitutions also decrease transcriptional pausing and strongly affect the nucleotide addition cycle of RNAP by increasing the rate of nucleotide addition but also decreasing the rate of translocation. The secondary channel factors DksA and GreA modulated translesion transcription by RNAP, depending on changes in the trigger loop structure. We observed that although the mutant RNAPs stimulate translesion synthesis, their expression is toxic in vivo, especially under stress conditions. We conclude that the efficiency of translesion transcription can be significantly modulated by mutations affecting the conformational dynamics of the active site of RNAP, with potential effects on cellular stress responses and survival.
Insights
Mutations in the RNA polymerase trigger loop enhance DNA lesion bypass during transcription. However, these mutations cause toxicity in cells, impacting stress responses.
Area of Science:
- Molecular Biology
- Biochemistry
- Genetics
Background:
- DNA lesions impede RNA polymerase (RNAP) transcription, halting RNA synthesis and recruiting DNA repair factors.
- Understanding RNAP active site roles in translesion transcription is crucial for DNA repair mechanisms.
Purpose of the Study:
- To investigate the role of the RNAP trigger loop in translesion RNA synthesis.
- To analyze the impact of trigger loop mutations on RNAP activity and cellular response.
Main Methods:
- Recombinant protein expression
- In vitro transcription assays
- Kinetic analyses
- In vivo cell viability assays
Main Results:
- Point mutations in the trigger loop of Escherichia coli RNAP stimulate translesion RNA synthesis without affecting nucleotide incorporation fidelity.
- Mutations decrease transcriptional pausing and alter the nucleotide addition cycle by increasing addition rate and decreasing translocation rate.
- Secondary channel factors DksA and GreA modulate translesion transcription based on trigger loop structure.
- Mutant RNAPs are toxic in vivo, particularly under stress conditions.
Conclusions:
- RNAP active site dynamics, specifically the trigger loop, significantly modulate translesion transcription efficiency.
- Trigger loop mutations impact cellular stress responses and survival, highlighting the interplay between transcription fidelity and cellular health.
Related Concept Videos
Bacterial RNA Polymerase
In most genes, the transcription site is a single base present upstream of the coding sequence. Though RNAP is a catalytically efficient enzyme, it does not recognize...
Bacterial RNA Polymerase
Translesion DNA Polymerases
TLS polymerases are found in all three domains of life - archaea, bacteria, and eukaryotes. Of the different classes of TLS polymerases, members of the Y family are fitted with specialized structures that...
Bacterial Transcription
Transcription can be divided into three main stages, each involving distinct DNA sequences to guide the polymerase. These are:
Coordination of Gene Expression Processes in Bacteria
Transcription Initiation
The promoters and enhancers and their accessory proteins allow tight regulation of...

