RNA polymerase inhibitors reveal active-site motions essential for the nucleotide addition cycle

Y Yukti Dhingra R Robert Landick E Elizabeth A. Campbell (Laboratory of Molecular Pathogenesis, The Rockefeller University) S Seth A. Darst (Laboratory of Molecular Biophysics, The Rockefeller University)

Abstract

The nucleotide addition cycle (NAC) of multisubunit DNA-dependent RNA polymerases (RNAPs) involves coordinated conformational changes in conserved active-site structural elements, including the trigger loop (TL). The TL is open (unfolded) in most RNAP structures but can close (fold) in substrate-bound (post- or pretranslocated) states of the RNAP, promoting catalysis. TL closure has been associated with closure of another conserved structural element, the Rim-Helices/F-loop (RH-FL), but the role of the RH-FL in the NAC is unclear. Antibiotic leads CBR9379 and AAP-SO 2 inhibit the Escherichia coli and Mycobacterium tuberculosis RNAPs, respectively, by binding in a pocket formed by the bridge helix and RH-FL. The precise mechanism of action for these inhibitors is yet to be defined. We present cryoelectron microscopy structures showing that both compounds inhibit the RNAP NAC by preventing RH-FL closure, thereby allosterically destabilizing the closed TL. This work reveals a conserved mechanistic principle of RNAP catalysis across all domains of life and provides insight for antibiotic design.

Article Details

Volume / Issue Vol. 123, Issue 27
Published July 07, 2026
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (4)

Y

Yukti Dhingra

R

Robert Landick

E

Elizabeth A. Campbell

Laboratory of Molecular Pathogenesis, The Rockefeller University

S

Seth A. Darst

Laboratory of Molecular Biophysics, The Rockefeller University