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Updated: Sep 20, 2025

CD Spectroscopy to Study DNA-Protein Interactions
Published on: February 10, 2022
Regulatory helix plays a key role in genetic ON-OFF switching for the 2'-deoxyguanosine-sensing mRNA element
Susmit Narayan Chaudhury1, Nathan Edward Jespersen1, Scott P Hennelly2
1Theoretical Biology and Biophysics, Los Alamos National Laboratory, Los Alamos, New Mexico, USA.
Abstract:
Transcriptional riboswitches, noncoding mRNA elements that operate in cis to regulate gene expression, have promising potential in medicine, synthetic biology, and directed evolution. They bind to cellular metabolites or metal ions with high specificity, leading to conformational rearrangements that facilitate the activation or premature termination of transcription for downstream genes. This elegant mechanism for feedback regulation of metabolic pathways has been identified in prokaryotes and a few eukaryotes. Our chemical probing of the 2'-deoxyguanosine (2'-dG)-sensing riboswitch demonstrates that the overall conformational state of the full-length riboswitch (dGsw-fl) is unresponsive to the 2'-dG. Although binding proceeds as expected, dGsw-fl exclusively populates an OFF state of transcriptional inhibition. We chemically probed the structure of a known dGsw transcriptional intermediate (dGsw-int) to evaluate the possibility of a cotranscriptional regulatory role. Interestingly, apo dGsw-int adopts an alternative conformation in which a stable anti-terminator helix is formed, leading to an ON state where transcription can proceed. In the presence of 2'-dG, this anti-terminator helix is destabilized to produce a conformation reminiscent of the full-length, OFF-state dGsw. Using a fluorescence quenching assay, we demonstrate that binding 2'-dG to early transcriptional intermediates can inhibit the formation of the anti-terminator helix, locking dGsw in an OFF state. These data suggest that metabolite sensing occurs during a brief window of time between the synthesis of two transcriptional intermediates. Our studies indicate that dGsw does not function as a binary ON-OFF switch but instead fine-tunes the transcription of downstream genes during RNA synthesis using key intermediates.
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