Javascript must be enabled to continue!
DNA supercoiling-mediated G4/R-loop formation tunes transcription by controlling the access of RNA polymerase
View through CrossRef
Abstract
RNA polymerase (RNAP) is a processive motor that modulates DNA supercoiling and reshapes DNA structures. The feedback loop between the DNA topology and transcription remains elusive. Here, we investigate the impact of potential G-quadruplex forming sequences (PQS) on transcription in response to DNA supercoiling. We find that supercoiled DNA increases transcription frequency 10-fold higher than relaxed DNA, which lead to an abrupt formation of G-quadruplex (G4) and R-loop structures. Moreover, the stable R-loop relieves topological strain, facilitated by G4 formation. The cooperative formation of G4/R-loop effectively alters the DNA topology around the promoter and suppresses transcriptional activity by impeding RNAP loading. These findings highlight negative supercoiling as a built-in spring that triggers a transcriptional burst followed by a rapid suppression upon G4/R-loop formation. This study sheds light on the intricate interplay between DNA topology and structural change in transcriptional regulation, with implications for understanding gene expression dynamics.
Springer Science and Business Media LLC
Title: DNA supercoiling-mediated G4/R-loop formation tunes transcription by controlling the access of RNA polymerase
Description:
Abstract
RNA polymerase (RNAP) is a processive motor that modulates DNA supercoiling and reshapes DNA structures.
The feedback loop between the DNA topology and transcription remains elusive.
Here, we investigate the impact of potential G-quadruplex forming sequences (PQS) on transcription in response to DNA supercoiling.
We find that supercoiled DNA increases transcription frequency 10-fold higher than relaxed DNA, which lead to an abrupt formation of G-quadruplex (G4) and R-loop structures.
Moreover, the stable R-loop relieves topological strain, facilitated by G4 formation.
The cooperative formation of G4/R-loop effectively alters the DNA topology around the promoter and suppresses transcriptional activity by impeding RNAP loading.
These findings highlight negative supercoiling as a built-in spring that triggers a transcriptional burst followed by a rapid suppression upon G4/R-loop formation.
This study sheds light on the intricate interplay between DNA topology and structural change in transcriptional regulation, with implications for understanding gene expression dynamics.
Related Results
Biophysical studies of RNA:DNA:DNA triplexes and characterization of riboswitches in cell-free transcription-translation systems
Biophysical studies of RNA:DNA:DNA triplexes and characterization of riboswitches in cell-free transcription-translation systems
RNA research is very important since RNA molecules are involved in various gene regulatory mechanisms as well as pathways of cell physiology and disease development.1 RNAs have evo...
Genome Architecture Shapes Transcriptional Responses to DNA Supercoiling in a Multicellular Organism
Genome Architecture Shapes Transcriptional Responses to DNA Supercoiling in a Multicellular Organism
Summary
DNA supercoiling is an intrinsic consequence of transcription that must be resolved to maintain proper gene expression. How DNA supercoil...
DNA Supercoiling is Required for Efficient Formation of R-loops
DNA Supercoiling is Required for Efficient Formation of R-loops
R-loops are branched nucleic acid structures formed during transcription. The nascent RNA reanneals with the template DNA and displaces the non-template DNA as single stranded. The...
The Hidden Genome
The Hidden Genome
Transcription is the process by which RNA is synthesized from a DNA template and forms the first step in gene expression. Its regulation depends on interactions between DNA, RNA po...
Collective polymerase dynamics emerge from DNA supercoiling during transcription
Collective polymerase dynamics emerge from DNA supercoiling during transcription
All biological processes ultimately come from physical interactions. The mechanical properties of DNA play a critical role in transcription. RNA polymerase can over or under twist ...
DNA supercoiling-mediated G4/R-loop formation tunes transcription by controlling the access of RNA polymerase
DNA supercoiling-mediated G4/R-loop formation tunes transcription by controlling the access of RNA polymerase
Abstract
RNA polymerase (RNAP) is a processive motor that modulates DNA supercoiling and reshapes DNA structures. The feedback loop between the DNA topology and t...
Genome-wide profiling reveals functional interplay of DNA sequence composition, transcriptional activity, and nucleosome positioning in driving DNA supercoiling and helix destabilization in C. elegans
Genome-wide profiling reveals functional interplay of DNA sequence composition, transcriptional activity, and nucleosome positioning in driving DNA supercoiling and helix destabilization in C. elegans
DNA topology and alternative DNA structures are implicated in regulating diverse biological processes. Although biomechanical properties of these structures have been studied exten...
Positive supercoiling favors transcription elongation through lac repressor-mediated DNA loops
Positive supercoiling favors transcription elongation through lac repressor-mediated DNA loops
Abstract
Some proteins, like the
lac
repressor (LacI), mediate long-range loops that alter DNA topology and c...

