1
Return

Autoinhibition is Not a Universal Feature of Transcription-Repair Coupling Factors

delete2026-06-22
delete0
delete
OA
AI
C
Christiane Brugger
M
Margaret M. Suhanovsky
J
Jonghyeon Son
A
Alexandra M. Deaconescu *
DOI:10.1016/j.jbc.2026.113280delete
deleteOriginal
deleteOriginal request for help
deleteShare
deleteSave
Abstract

Abstract

En 中文
Mfd, the canonical bacterial transcription-repair coupling factor, is a highly conserved ATP-dependent DNA translocase with a complex architecture undergoing major rearrangements during its functional cycle. These changes regulate its ATPase and motor activities and are tuned by Mfd interactions with DNA, RNA polymerase and the UvrA subunit of the nucleotide excision repair excinuclease, Uvr(A)BC. Due to its role in accelerating molecular evolution and the development of antibiotic resistance, Mfd is also rapidly emerging as a prime target for the development of anti-evolution drugs to be administered in combination with narrow-spectrum antibiotics to prevent the rise of resistance and combat infection over a wider time window. Here we present the crystal structure of Thermus thermophilus Mfd in its nucleotide-free state. We note the pronounced disorder of the N-terminal UvrB homology module, which was previously seen in Escherichia coli to be engaged in a “clamp” interaction with the C-terminal domain, resulting in autoinhibition of its ATP-dependent functions. Thus, we conclude that the autoinhibitory interdomain interactions, such as the clamp, are not a universal feature of transcription-repair coupling factors. Consistent with this, Thermus thermophilus Mfd, unlike E. coli Mfd, translocates robustly on DNA even in the absence of RNA polymerase and displays DNA binding that is largely nucleotide independent. Our work brings mechanistic insight into the species-specific differences in Mfd structure and function and provides a structural framework for the design of anti-evolution drugs to combat antimicrobial resistance.
Keywords:
DNA translocase
ATPase
DNA repair
hypermutation
antibiotic resistance
RNA polymerase
nucleotide excision repair
clamp

Journal

Journal of Biological Chemistry cover
Journal of Biological Chemistry
IF:
3.9
Papers:
11.2W
Citations:
28.3W

Organization

B
brown university
Scholars:
3.9K
Papers: 1.8K
Citations: 0
Cited Papers

Cited Papers

Citing Papers

Citing Papers