Riboswitches are genetic control elements located within the 5' untranslated regions of messenger RNAs (mRNAs) that undergo metabolite-dependent structural rearrangements to regulate mRNA transcription, splicing, translation, or stability in response to the presence and concentration of specific metabolites. The ubiquity of riboswitch-mediated transcriptional control in bacteria and the specificity with which riboswitches control bacterial gene expression are fueling efforts to develop next-generation antibiotics that target bacterial riboswitches. In addition, riboswitches are quickly becoming powerful tools in the field of synthetic biology, where they can be engineered to artificially control gene expression. Fully exploiting riboswitches for these applications, however, requires a detailed understanding of the mechanism of riboswitch-mediated transcriptional control. Although single-molecule (sm) biophysical methods, including sm fluorescence microscopy and sm force microscopy, have established themselves as powerful tools for studying metabolite- dependent structural rearrangements of riboswitches and transcription by RNA polymerases (RNAPs), the mechanistic information available from these sm methods remains limited by technical obstacles such as: (i) difficulties in fluorophore labeling of biomolecules; (ii) the application of invasive artificial forces; (iii) limited time resolution; and (iv) limited total observation time. The higly multi-disciplinary effort described here will expand upon recent development of a carbon nanotube-based sm field effect transistor (smFET) as a new, label-free, non-invasive, high-time-resolution, extended-observation-time, sm method for in vitro studies of biomolecular binding kinetics and structural dynamics. This smFET-based experimental system will be further developed to overcome many of the limitations of established sm methods, enabling the Bacillus subtilis pbuE adenine-responsive riboswitch and the corresponding B. subtilis RNAP to be used as a model system for studying the mechanisms of metabolite- dependent riboswitch structural rearrangement (Aim 1), transcription (Aim 2), and real-time riboswitch- mediated transcriptional control (Aim 3) at unprecedented time resolutions and throughputs. These studies will enable characterization of some of the most poorly defined aspects of the mechanism of riboswitch-mediated transcriptional regulation and will provide the tools and knowledge necessary to drive the development of new antibiotic drugs that target bacterial riboswitches and the design of new riboswitches that can be used to regulate synthetic gene networks.

Public Health Relevance

Development of the new technologies proposed here for single-molecule studies of biological systems will enable investigation of genetic control mechanisms at unprecedented time resolutions and throughputs. The proposed studies are expected to improve our ability to understand, prevent, diagnose, and treat both genetic and infectious diseases. Perhaps most importantly, these studies promise to provide a new and valuable tool that will enable high-throughput development of next-generation antibiotics that target genetic control mechanisms unique to bacterial pathogens.

Agency
National Institute of Health (NIH)
Institute
National Institute of General Medical Sciences (NIGMS)
Type
Research Project (R01)
Project #
5R01GM107417-02
Application #
8860202
Study Section
Nanotechnology Study Section (NANO)
Program Officer
Lewis, Catherine D
Project Start
2014-06-04
Project End
2018-02-28
Budget Start
2015-03-01
Budget End
2016-02-29
Support Year
2
Fiscal Year
2015
Total Cost
$376,230
Indirect Cost
$128,335
Name
Columbia University (N.Y.)
Department
Chemistry
Type
Other Domestic Higher Education
DUNS #
049179401
City
New York
State
NY
Country
United States
Zip Code
10027
Xu, Qizhi; Scuri, Giovanni; Mathewson, Carly et al. (2017) Single Electron Transistor with Single Aromatic Ring Molecule Covalently Connected to Graphene Nanogaps. Nano Lett 17:5335-5341
Amiri, Hasti; Shepard, Kenneth L; Nuckolls, Colin et al. (2017) Single-Walled Carbon Nanotubes: Mimics of Biological Ion Channels. Nano Lett 17:1204-1211
Vernick, Sefi; Trocchia, Scott M; Warren, Steven B et al. (2017) Electrostatic melting in a single-molecule field-effect transistor with applications in genomic identification. Nat Commun 8:15450
Bouilly, Delphine; Hon, Jason; Daly, Nathan S et al. (2016) Single-Molecule Reaction Chemistry in Patterned Nanowells. Nano Lett 16:4679-85
Shekar, Siddharth; Niedzwiecki, David J; Chien, Chen-Chi et al. (2016) Measurement of DNA Translocation Dynamics in a Solid-State Nanopore at 100 ns Temporal Resolution. Nano Lett 16:4483-9
Warren, Steven B; Vernick, Sefi; Romano, Ethan et al. (2016) Complementary Metal-Oxide-Semiconductor Integrated Carbon Nanotube Arrays: Toward Wide-Bandwidth Single-Molecule Sensing Systems. Nano Lett 16:2674-9
Rosenstein, Jacob K; Lemay, Serge G; Shepard, Kenneth L (2015) Single-molecule bioelectronics. Wiley Interdiscip Rev Nanomed Nanobiotechnol 7:475-93