Structural basis of long-range transcription–translation coupling

C Chengyuan Wang (State Key Laboratory of Deep Earth Processes and Resources, Guangzhou Institute of Geochemistry, Chinese Academy of Sciences) V Vadim Molodtsov (Waksman Institute and Department of Chemistry and Chemical Biology, Rutgers University) S Shashank Shandilya (Waksman Institute and Department of Chemistry and Chemical Biology, Rutgers University) L Linlin You (Waksman Institute and Department of Chemistry and Chemical Biology, Rutgers University) J Jing Zhang K Konstantin Kuznedelov (Waksman Institute and Department of Chemistry and Chemical Biology, Rutgers University) B Bryce E. Nickels (Waksman Institute and Department of Genetics, Rutgers University) J Jason T. Kaelber (Rutgers CryoEM and Nanoimaging Facility and Institute for Quantitative Biomedicine, Rutgers University) G Gregor Blaha R Richard H. Ebright (Department of Chemistry, Rutgers University)

Abstract

Structures recently have been reported of molecular assemblies that mediate transcription–translation coupling in Escherichia coli . In these molecular assemblies, termed “coupled transcription–translation complexes” or “TTC-B,” RNA polymerase (RNAP) directly interacts with the ribosome, the transcription elongation factor NusG or its paralog RfaH forms a bridge between RNAP and ribosome, and the transcription elongation factor NusA optionally forms a second bridge between RNAP and ribosome. Here, we report structures of coupled transcription–translation complexes having mRNA spacers between RNAP and ribosome longer than the maximum-length mRNA spacer compatible with formation of TTC-B. The results define a class of coupled transcription–translation complex, termed “TTC-LC,” where “LC” denotes “long-range coupling.” TTC-LC differs from TTC-B by a ~60° rotation and ~70 Å translation of RNAP relative to ribosome, resulting in loss of direct interactions between RNAP and ribosome and creation of a ~70 Å gap between RNAP and ribosome. TTC-LC accommodates long mRNA spacers by looping out mRNA from the gap between RNAP and ribosome. We present evidence that TTC-LC is a functional intermediate in assembling and disassembling TTC-B, mediating pre-TTC-B transcription–translation coupling before a ribosome catches up to RNAP, and mediating post-TTC-B transcription–translation coupling after a ribosome stops moving and RNAP continues moving. We show that TTC-B, but not TTC-LC, is severely defective in RNA-hairpin-dependent transcription termination, and that both TTC-B and TTC-LC are severely defective in Rho-dependent transcription termination.

Article Details

Volume / Issue Vol. 123, Issue 24
Published June 16, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (10)

C

Chengyuan Wang

State Key Laboratory of Deep Earth Processes and Resources, Guangzhou Institute of Geochemistry, Chinese Academy of Sciences

V

Vadim Molodtsov

Waksman Institute and Department of Chemistry and Chemical Biology, Rutgers University

S

Shashank Shandilya

Waksman Institute and Department of Chemistry and Chemical Biology, Rutgers University

L

Linlin You

Waksman Institute and Department of Chemistry and Chemical Biology, Rutgers University

J

Jing Zhang

K

Konstantin Kuznedelov

Waksman Institute and Department of Chemistry and Chemical Biology, Rutgers University

B

Bryce E. Nickels

Waksman Institute and Department of Genetics, Rutgers University

J

Jason T. Kaelber

Rutgers CryoEM and Nanoimaging Facility and Institute for Quantitative Biomedicine, Rutgers University

G

Gregor Blaha

R

Richard H. Ebright

Department of Chemistry, Rutgers University