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Direct observation of abortive initiation and promoter escape within single immobilized transcription complexes

  • Emmanuel Margeat
  • , Achillefs N. Kapanidis
  • , Philip Tinnefeld
  • , You Wang
  • , Jayanta Mukhopadhyay
  • , Richard H. Ebright
  • , Shimon Weiss
  • University of California at Los Angeles
  • Centre de Biochimie Structurale
  • University of Oxford
  • Bielefeld University
  • Rutgers - The State University of New Jersey, New Brunswick

Research output: Contribution to journalArticlepeer-review

122 Scopus citations

Abstract

Using total-internal-reflection fluorescence microscopy equipped with alternating-laser excitation, we were able to detect abortive initiation and promoter escape within single immobilized transcription complexes. Our approach uses fluorescence resonance energy transfer to monitor distances between a fluorescent probe incorporated in RNA polymerase (RNAP) and a fluorescent probe incorporated in DNA. We observe small, but reproducible and abortive-product-length-dependent, decreases in distance between the RNAP leading edge and DNA downstream of RNAP upon abortive initiation, and we observe large decreases in distance upon promoter escape. Inspection of population distributions and single-molecule time traces for abortive initiation indicates that, at a consensus promoter, at saturating ribonucleoside triphosphate concentrations, abortive-product release is rate-limiting (i.e., abortive-product synthesis and RNAP-active-center forward translocation are fast, whereas abortive-product dissociation and RNAP-active-center reverse translocation are slow). The results obtained using this new methodology confirm and extend those obtained from diffusing single molecules, and pave the way for real-time, single-molecule observations of the transitions between various states of the transcription complex throughout transcription.

Original languageEnglish
Pages (from-to)1419-1431
Number of pages13
JournalBiophysical Journal
Volume90
Issue number4
DOIs
StatePublished - 15 Feb 2006
Externally publishedYes

Bibliographical note

Funding Information:
This work was funded by U.S. Department of Energy grants 02ER63339 and 04ER63938, National Institutes of Health grant GM069709-01A1 (S.W.), National Institutes of Health grant GM41376 (R.H.E.), and a Howard Hughes Medical Institute Investigatorship (R.H.E).

Funding

This work was funded by U.S. Department of Energy grants 02ER63339 and 04ER63938, National Institutes of Health grant GM069709-01A1 (S.W.), National Institutes of Health grant GM41376 (R.H.E.), and a Howard Hughes Medical Institute Investigatorship (R.H.E).

FundersFunder number
National Institutes of HealthGM069709-01A1
U.S. Department of Energy02ER63339, 04ER63938
National Institute of General Medical SciencesR01GM041376

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